Methylene Blue

34.91

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3D-Modell methylene blue, CAS 61-73-4, Summenformel C₁₆H₁₈ClN₃S, masa molowa 319.9 g/mol
Chemische Übersicht: Methylene blueMolGod_OVERVIEW_1
SummenformelC₁₆H₁₈ClN₃S
Molekulargewicht319.9 g/mol
Schmelzpunkt105 °C
IUPAC-Name[7-(dimethylamino)phenothiazin-3-ylidene]-dimethylazanium chloride
SMILESCN(C)C1=CC2=C(C=C1)N=C3C=CC(=[N+](C)C)C=C3S2.[Cl-]
InChIKeyCXKWCBBOMKCUKX-UHFFFAOYSA-M

Synonyme: methylene blue · 61-73-4 · Basic blue 9 · Methylthioninium chloride · Solvent blue 8

Data sources: PubChem (NLM/NIH)
Last updated: 2026-07-09

📊 Physikalische & chemische Eigenschaften

Kurzübersicht

Formel: C16H18ClN3S
MW: 319.90 g/mol
CAS: 61-73-4
Aussehen: Dark green crystals or powder from chloroform-ethyl ether

Detaillierte Eigenschaften

Eigenschaft Wert Einheit Bedingungen Quelle
Schmelzpunkt (mp) 100 to 110 °C (with decomposition) PubChem (NIH/NLM) ↗
Dampfdruck 0.00000013 [mmHg] PubChem (NIH/NLM) ↗
Wasserlöslichkeit In water, 43,600 mg/L at 25 °C. PubChem (NIH/NLM) ↗
🔬 Erweiterte Eigenschaften

Chemische Identifikatoren

SMILES: CN(C)C1=CC2=C(C=C1)N=C3C=CC(=[N+](C)C)C=C3S2.[Cl-]
InChI: InChI=1S/C16H18N3S.ClH/c1-18(2)11-5-7-13-15(9-11)20-16-10-12(19(3)4)6-8-14(16)17-13;/h5-10H,1-4H3;1H/q+1;/p-1
InChIKey: CXKWCBBOMKCUKX-UHFFFAOYSA-M

Datenquellen: PubChem, NIST Chemistry WebBook, CRC Handbook of Chemistry and Physics (103rd ed.)

Zuletzt aktualisiert: 2026-06-25

Regulatorischer Status der Substanz
Keine Einträge für diese CAS-Nummer in den geprüften Beschränkungslisten (SVHC-Kandidatenliste, REACH Anhang XVII; Datensätze unvollständig – dies ist keine Konformitätsbestätigung). CLP-Einstufung und Transportstatus (ADR): siehe Abschnitt GHS und Sicherheitsdatenblatt (SDS).
🧮 Stöchiometrie-RechnerMolGod_STOICH_1
🧪 Dane chemiczneMolGod_CHEMDATA_1
Numer CAS
61-73-4
Wzór sumaryczny
C₁₆H₁₈ClN₃S
Masa molowa
319.9 g/mol
Nazwa IUPAC (EN)
[7-(dimethylamino)phenothiazin-3-ylidene]-dimethylazanium chloride
SMILES
CN(C)C1=CC2=C(C=C1)N=C3C=CC(=[N+](C)C)C=C3S2.[Cl-]
InChIKey
CXKWCBBOMKCUKX-UHFFFAOYSA-M
🔍 Externe IdentifikatorenMolGod_EXTID_1
13 von 16 ID-Systemen81%
DatenbankIdentifikatorAktionen
CAS Registry Number61-73-4Öffnen →
PubChem CID6099Öffnen →
InChIKeyCXKWCBBOMKCUKX-UHFFFAOYSA-MÖffnen →
InChIInChI=1S/C16H18N3S.ClH/c1-18(2)11-5-7-13-15(9-11…
SMILESCN(C)C1=CC2=C(C=C1)N=C3C=CC(=[N+](C)C)C=C3S2.[Cl…
EC Number200-515-2Öffnen →
DrugBankDB09241Öffnen →
KEGG CompoundC00220Öffnen →
ChemSpider5874Öffnen →
MeSH UID (NLM)D008751Öffnen →
UNII (FDA)8NAP7826UBÖffnen →
NSC Number (NCI)3089Öffnen →
WikiData QIDQ422134Öffnen →

Quellen: PubChem (NIH), Wikidata SPARQL, KEGG, ChEMBL (EBI), CompTox CTX (EPA).

📡 Spektroskopie — CAS 61-73-4MolGod_SPECHUB_MAIN
MolGod_SPECREF_SP1
📊 Widma (NMR, IR, MS, UV-Vis) (1)

Dostępne typy widm: IR

Widmo IR (KBr, 4000-400 cm⁻¹)

0 punktów danych · Źródło: NIST WebBook · NIST ↗ · 📥 JCAMP-DX
🎓 Przewodnik interpretacji widm (dla studentów)
Jak czytać widmo IR
  • 3200-3600 cm⁻¹ — rozciąganie O-H (szeroki pik = wiązanie wodorowe)
  • 2850-3000 cm⁻¹ — rozciąganie C-H (sp³)
  • 1650-1750 cm⁻¹ — rozciąganie C=O (ketony, aldehydy, estry)
  • 1400-1600 cm⁻¹ — drgania pierścienia aromatycznego
  • 1000-1300 cm⁻¹ — rozciąganie C-O (etery, alkohole)
  • Brak absorpcji = brak grupy funkcyjnej → porównaj z referencją

Źródła: LibreTexts ↗, Silverstein (Spectrometric ID) ↗

📚 Naukowe referencje (Chicago Author-Date) (9 źródeł)

📚 Bibliografia książkowa oczekuje na wygenerowanie. Kuratowane podręczniki ogólne są dostępne poniżej; specyficzne dla CAS książki Google Books można pobrać z panelu administratora.

  1. National Institute of Standards and Technology. 2024. "NIST Chemistry WebBook, SRD 69." Gaithersburg, MD: NIST. Accessed 2025-01-01.
  2. Spectral Database for Organic Structure Determination (SDBS). 2024. National Institute of Advanced Industrial Science and Technology (AIST), Japan. Accessed 2025-01-01.
  3. Ulrich, Eldon L., Hideo Akutsu, John F. Doreleijers, Yoko Harano, Yannis E. Ioannidis, Jundong Lin, Miron Livny, et al. 2008. "BioMagResBank." Nucleic Acids Research 36 (D1): D402–D408. [DOI ↗]
  4. Horai, Hisayuki, Masanori Arita, Shigehiko Kanaya, Yoshito Nihei, Tasuku Ikeda, Kazuhiro Suwa, Yuya Ojima, et al. 2010. "MassBank: A Public Repository for Sharing Mass Spectral Data for Life Sciences." Journal of Mass Spectrometry 45 (7): 703–714. [DOI ↗]
  5. Linstrom, P.J., and W.G. Mallard, eds. 2024. NIST Chemistry WebBook, NIST Standard Reference Database Number 69. Gaithersburg, MD: National Institute of Standards and Technology.
  6. McDonald, M. Shane, Mike McAvoy, and Ajit Bhalerao. 1988. "JCAMP-DX: A Standard Form for Exchange of Infrared Spectra in Computer Readable Form." Applied Spectroscopy 42 (1): 151–162. [DOI ↗]
  7. PubChem. 2024. "PubChem Compound Database." National Library of Medicine, National Institutes of Health. Accessed 2025-01-01.
📐 Physikalische & chemische Eigenschaften (DB) 5 Felder MolGod-Score: Zuverlässig
Eigenschaft Wert Einheit Bedingungen Quelle
Melting point 105.00 [5][6][11] °C decomp. PubChem PUG-View (2026)
Boiling point rozkłada się [5][6][11] przed wrzeniem (decomp.) PubChem PUG-View (2026)
📚 Wissenschaftliche Referenzen (Chicago Author-Date) (12 Quellen)
  1. Haynes, William M., ed. 2024. CRC Handbook of Chemistry and Physics. 105th ed. Boca Raton: CRC Press/Taylor & Francis. ISBN 978-1-032-55554-4.
  2. National Institute of Standards and Technology. 2024. "NIST Chemistry WebBook, SRD 69." Gaithersburg, MD: NIST. Accessed 2025-01-01.
  3. Yaws, Carl L. 2014. The Yaws Handbook of Physical Properties for Hydrocarbons and Chemicals. 2nd ed. Oxford: Gulf Professional Publishing.
  4. PubChem. 2024. "PubChem Compound Database." National Library of Medicine, National Institutes of Health. Accessed 2025-01-01.
  5. Marrero, J., and R. Gani. 2001. "Group-Contribution Based Estimation of Pure Component Properties." Fluid Phase Equilibria 183–184: 183–208.
  6. Joback, K. G., and R. C. Reid. 1987. "Estimation of Pure-Component Properties from Group-Contributions." Chemical Engineering Communications 57 (1–6): 233–243.
  7. Sangster, J. 1997. Octanol-Water Partition Coefficients: Fundamentals and Physical Chemistry. Chichester: Wiley. ISBN 978-0-471-97397-3.
  8. Mannhold, Raimund, and Han van de Waterbeemd. 2001. "Substructure and Whole Molecule Approaches for Calculating Log P." Journal of Computer-Aided Molecular Design 15 (4): 337–354.
  9. Perrin, Ditlev D., Boyd Dempsey, and E. P. Serjeant. 1981. pKa Prediction for Organic Acids and Bases. London: Chapman and Hall. ISBN 0-412-21090-5.
  10. Constantinou, Leonidas, and Rafiqul Gani. 1994. "New Group Contribution Method for Estimating Properties of Pure Compounds." AIChE Journal 40 (10): 1697–1710.
  11. Ertl, Peter, Bernhard Rohde, and Paul Selzer. 2000. "Fast Calculation of Molecular Polar Surface Area as a Sum of Fragment-Based Contributions and Its Application to the Prediction of Drug Transport Properties." Journal of Medicinal Chemistry 43 (20): 3714–3717.
🔄 Umrechner für Konzentrationseinheiten LIVE MolGod_UNITCONV_1
/* translators: %s, %d itd. to wartosci dynamiczne wstawiane do komunikatu. */

Geben Sie die Konzentration methylene blue in einer beliebigen Einheit ein — der Rest wird automatisch berechnet.

MW: 319.9 g/mol · IUPAC Gold Book ↗

⚗️ Umrechnungsformeln + Zitate (pro Formel)
UmrechnungFormelGenauigkeitQuelle
% (w/v) ↔ molarityc (mol/L) = (% × 10) / MW±0.5% rel. when density ≈ 1.0 g/mLIUPAC (2019)
millimolar ↔ molarc (mol/L) = mM × 10⁻³ExactCohen ER, Cvitaš T, Frey JG, Holmström B, Kuchitsu K, Marquardt R, Mills I, Pavese F, Quack M, Stohner J, Strauss HL, Takami M, Thor AJ (2007)
molarity (mol/L)c = n/V = (m/MW)/V±0.1% (depends on MW precision)IUPAC (2019)
parts per million (mg/L) ↔ molarityc (mol/L) = ppm / (1000 × MW); equivalently ppm = mg/L for dilute aqueous±1% (density-independent for dilute solutions)IUPAC (2019)
mg/mL ↔ molarityc (mol/L) = (mg/mL × 1000) / MW / 1000 = mg/mL / MW × 1±0.2%Cohen ER, Cvitaš T, Frey JG, Holmström B, Kuchitsu K, Marquardt R, Mills I, Pavese F, Quack M, Stohner J, Strauss HL, Takami M, Thor AJ (2007)
g/L ↔ molarityc (mol/L) = (g/L) / MW±0.1% (depends on MW precision)Cohen ER, Cvitaš T, Frey JG, Holmström B, Kuchitsu K, Marquardt R, Mills I, Pavese F, Quack M, Stohner J, Strauss HL, Takami M, Thor AJ (2007)
mmol/L ↔ molarityc (mol/L) = mmol/L × 10⁻³ExactCohen ER, Cvitaš T, Frey JG, Holmström B, Kuchitsu K, Marquardt R, Mills I, Pavese F, Quack M, Stohner J, Strauss HL, Takami M, Thor AJ (2007)
Celsius ↔ KelvinT(K) = t(°C) + 273.15±0.01 K (ITS-90 scale)BIPM (Bureau International des Poids et Mesures) (2019)
Celsius ↔ FahrenheitT(°F) = T(°C) × 9/5 + 32±0.1 °FThompson A, Taylor BN (2008)
density-corrected % ↔ molarityc (mol/L) = (%w/w × ρ × 10) / MW, ρ in g/mL±0.1% when ρ known to 3 decimalsCohen ER, Cvitaš T, Frey JG, Holmström B, Kuchitsu K, Marquardt R, Mills I, Pavese F, Quack M, Stohner J, Strauss HL, Takami M, Thor AJ (2007)
📚 Bibliographie (8 autoritative Quellen)
  1. Thompson A, Taylor BN (2008). Guide for the Use of the International System of Units (SI). NIST Special Publication 811 · DOI: 10.6028/NIST.SP.811-2008
    → Primary SI standard for US scientific usage
  2. Cohen ER, Cvitaš T, Frey JG, Holmström B, Kuchitsu K, Marquardt R, Mills I, Pavese F, Quack M, Stohner J, Strauss HL, Takami M, Thor AJ (2007). Quantities, Units and Symbols in Physical Chemistry — The IUPAC Green Book. RSC Publishing, 3rd ed. · DOI: 10.1039/9781847557889 · ISBN: 978-0-85404-433-7
    → Canonical IUPAC guide for chemistry quantities/units
  3. BIPM (Bureau International des Poids et Mesures) (2019). The International System of Units (SI), 9th edition. BIPM ·
    → International SI definitions (incl. redefined kilogram 2019)
  4. ISO/IEC (2022). Quantities and units — Part 1: General. International Organization for Standardization — ISO 80000-1:2022 ·
    → General rules for physical quantities and units
  5. ISO/IEC (2019). Quantities and units — Part 9: Physical chemistry and molecular physics. International Organization for Standardization — ISO 80000-9:2019 ·
    → Concentration / molality / amount-of-substance conventions
  6. Tiesinga E, Mohr PJ, Newell DB, Taylor BN (2021). CODATA recommended values of the fundamental physical constants: 2018. Rev. Mod. Phys. 93(2):025010 · DOI: 10.1103/RevModPhys.93.025010
    → Avogadro, gas constant, molar volume (2019 SI revision)
  7. IUPAC (2019). Compendium of Chemical Terminology — the IUPAC Gold Book (online). IUPAC · DOI: 10.1351/goldbook
    → Definitions of mass fraction, molality, normality, ppm, activity
  8. Mills IM, Cvitaš T, Homann K, Kallay N, Kuchitsu K (1988). Quantities, Units and Symbols in Physical Chemistry. Blackwell Scientific Publications, 1st ed. · ISBN: 0-632-01773-5
    → Historical predecessor of IUPAC Green Book
🧪 Assistent zur Lösungsvorbereitung WIZARD MolGod_PREP_1
① Konzentration auswählen
② Zielvolumen
③ Lösungsmittel

Berechnungen nach: IUPAC Gold Book ↗, Merck ↗

🛡️ Sicherheit — CAS 61-73-4MolGod_SAFEHUB_MAIN
Hinweis zu Datenbeschränkungen. Die Sicherheitsinformationen auf dieser Seite dienen nur zur Information und ersetzen kein vollständiges Sicherheitsdatenblatt (SDS). Konsultieren Sie vor der Verwendung des Produkts das aktuelle Sicherheitsdatenblatt des Herstellers sowie die GHS/CLP-Leitlinien. Die CLP-Einstufung bezieht sich auf die reine Bulk-Substanz, nicht auf handelsübliche Zubereitungen.
MolGod_GHS_SF1

GHS/CLP-Einstufung — Verordnung (EG) Nr. 1272/2008 + UN GHS Rev. 9 (2021).

⚠️ Gefahr (Danger)
GHS05 — Ätzend
GHS05 Ätzend
GHS07 — Reizend / gesundheitsschädlich
GHS07 Reizend / gesundheitsschädlich
GHS08 — Gesundheitsgefahr
GHS08 Gesundheitsgefahr

🚨 Gefahrenhinweise (H)

  • H302 — Gesundheitsschädlich bei Verschlucken.
  • H318 — Verursacht schwere Augenschäden.
  • H361 — Kann vermutlich die Fruchtbarkeit beeinträchtigen oder das Kind im Mutterleib schädigen.
  • H370 — Schädigt die Organe.
  • H372 — Schädigt die Organe bei längerer oder wiederholter Exposition.

🛡 Sicherheitshinweise (P)

  • P264 — Nach Gebrauch gründlich waschen.
  • P203 — Vor Gebrauch alle Sicherheitshinweise einholen, lesen und befolgen.

⚠ Einstufung basierend auf einem Konsens der Quellen (PubChem / Meldungen der Lieferanten) — nicht gegen die harmonisierte Einstufung in Anhang VI (CLP) verifiziert. Der Gefahrenumfang kann breiter sein als die amtliche Einstufung; vor der Verwendung mit dem aktuellen Sicherheitsdatenblatt des Lieferanten verifizieren.

Übersetzungen: CLP-Verordnung (EG) 1272/2008, Anhang III und IV. Daten: PubChem/NLM.

📚 Konsolidierte wissenschaftliche Referenzen — Chicago Author-Date 10 Quellen

Referenzen aus allen Safety-Hub-Registerkarten gesammelt. CAS: 61-73-4 · PubChem ↗

  1. Parlament Europejski i Rada UE. 2008. "Rozporządzenie (WE) nr 1272/2008 w sprawie klasyfikacji, oznakowania i pakowania substancji (CLP)." Dz.Urz. UE L 353. [↗] GHS, Vorschriften
  2. United Nations Economic Commission for Europe (UNECE). 2021. "Globally Harmonized System of Classification and Labelling of Chemicals (GHS), Ninth Revised Edition." United Nations, Geneva. [↗] GHS
  3. Goldfrank, Lewis R., Robert S. Hoffman, Mary Ann Howland, et al.. 2019. "Goldfrank's Toxicologic Emergencies, 11th ed.." McGraw-Hill Education, New York. ISBN 978-1-25-985961-8. Pierwsza pomoc, Toksykologia
  4. National Institute for Occupational Safety and Health (NIOSH). 2023. "NIOSH Pocket Guide to Chemical Hazards (DHHS Publ. 2005-149)." U.S. Department of Health and Human Services / CDC, Cincinnati, OH. [↗] Pierwsza pomoc, PPE, Toksykologia
  5. European Committee for Standardization (CEN). 2016. "EN 374-1:2016 — Protective gloves against dangerous chemicals and micro-organisms." CEN, Brussels. [↗] PPE
  6. UNECE. 2023. "European Agreement Concerning the International Carriage of Dangerous Goods by Road (ADR 2023)." United Nations, Geneva. [↗] Utylizacja, Regulacje
  7. National Fire Protection Association (NFPA). 2022. "NFPA 400 — Hazardous Materials Code." NFPA, Quincy, MA. [↗] Magazynowanie
  8. Urben, P.G. (ed.). 2017. "Bretherick's Handbook of Reactive Chemical Hazards, 8th ed.." Butterworth-Heinemann / Elsevier, Oxford. [↗] Magazynowanie
  9. Ministerstwo Klimatu i Środowiska RP. 2023. "Baza danych o produktach i opakowaniach oraz o gospodarce odpadami (BDO)." Ministerstwo Klimatu i Środowiska, Warszawa. [↗] Utylizacja
  10. International Agency for Research on Cancer (IARC / WHO). 2024. "IARC Monographs on the Identification of Carcinogenic Hazards to Humans — List of Classifications." WHO, Lyon. [↗] Toksykologia

Registerkarten mit eigenen Referenzen (Emergency, PPE, Storage, Waste) enthalten zusätzliche bibliografische Einträge in ihren jeweiligen Abschnitten.

📈 Analytische Statistik (t-Test · RSD · Grubbs · Q-Dixon) ICH Q2
MolGod_STATS_1

Fügen Sie eine Serie von Messwiederholungen ein (CSV oder eine Zahl pro Zeile). Der Rechner berechnet Mittelwert, Standardabweichung und 95% CI und erkennt Ausreißer (Grubbs + Dixon Q).

Trennzeichen: Komma, Leerzeichen, Tab, Zeilenumbruch. Min. 3 Messungen.
📐 Statistische Formeln
  • x̄ = Σxᵢ / n — arithmetisches Mittel
  • s² = Σ(xᵢ - x̄)² / (n-1) — Stichprobenvarianz
  • s = √s² — Standardabweichung
  • RSD% = (s / x̄) × 100% — relative Standardabweichung
  • CI₉₅ = x̄ ± t(0.05, n-1) × s / √n — Student's t
  • G = |xᵢ - x̄| / s — Grubbs-Test
  • Q = |xsuspect - xnearest| / |xmax - xmin| — Dixon Q-test

Quelle: ICH Q2(R2) Validation of Analytical Procedures · ICH PDF ↗

🧪 Puffer-Rezept-Rechner EINZIGARTIG
MolGod_BUFFER_1

Wählen Sie einen Puffer aus der Liste von 20 gängigen Systemen → geben Sie den Ziel-pH-Wert ein → Sie erhalten ein exaktes Rezept mit den einzuwiegenden Massen.

Schritt 1: Puffersystem wählen

📜 Rezeptverlauf (letzte 10)
📅 Project Planner — Manager für Laborexperimente NEU
MolGod_PLANNER_1

Planen Sie Ihr gesamtes Laborprojekt: Fügen Sie Experimente mit Reagenzien, Wiederholungen und Dauer hinzu. Sie erhalten ein Gantt-Diagramm, eine Einkaufsliste (mit Links zum Shop!), ein Budget mit 10% Reserve und eine GHS-Risikomatrix.

🔬 HPLC/GC-Methoden (3 Methoden)
📄
Differential Induction of Astaxanthin, Lutein, and Canthaxanthin with Altered Fatty Acid Profiles in Chromochloris zofingiensis via a Two-Stage Cultivation Approach Using Different Chemical Modulators
LC-MS/MSLife202693% ✓CC-BYResearch method (specificity, robustness)
Säule: C18, 250 x 4.6 mm, 90 \u03bcm
Phase: mobile phase consisted of solvent A (dichloromethane/methanol/acetonitrile/water, 5:85:5
Detektion: UV 700 nm
Fluss: 1.00 mL/min
Temp.: 25.0 °C
Inj.: 10 \u03bcL
Gradient: was performed as follows: 0% B for 8 min, a…
Niyompanich S, Kusolkumbot P, Kunyalung W, Watthammawut A, Powtongsook S. Differential Induction of Astaxanthin, Lutein, and Canthaxanthin with Altered Fatty Acid Profiles in Chromochloris zofingiensis via a Two-Stage Cultivation Approach Using Different Chemical Modulators. Life. 2026;16:799. doi:10.3390/life16050799
Chromochloris zofingiensis is a promising source of high-value bioproducts, particularly carotenoids and fatty acids. In this study, three selected chemical agents, including methylene blue (MB), salicylic acid (SA), and zinc sulfate heptahydrate (ZN), representing their roles as an oxidant, a signal transducer, and a metal ion, respectively, were applied at 96 h post-inoculation to stimulate metabolite accumulation via a two-stage cultivation approach. None of the treatments significantly affected algal growth. Among the treatments, HPLC analysis showed that 2.5 mM ZN significantly exhibited a dual stimulatory effect on astaxanthin (1.679 ± 0.122 mg g−1) and lutein (4.257 ± 0.183 mg g−1) accumulation, which were 2.28- and 2.91-fold higher than the control, respectively. The 1 µM MB significantly enhanced the canthaxanthin content to 2.382 ± 0.210 mg g−1 (a 3.57-fold increase). Different SA concentrations selectively induced the target pigments of astaxanthin and lutein. APCI-QTOF analysis enabled the detection of echinenone in the microalgal extracts. Its identity and quantification were subsequently validated by HPLC, with the highest content detected under the 0.2 mM SA treatment. GC-FID analysis revealed changes in the composition of six major fatty acids, with C18:1 n-9 representing 50.01% of the total fatty acids under the 2.5 mM ZN treatment. These findings suggest that the two-stage approach could offer a practical and feasible strategy for microalgal biorefineries.
chemical modulatorsastaxanthinluteincanthaxanthinfatty acidstwo-stage cultivation approach
📄
Macro-micromorphological, anatomical, and phytochemical characterization of Cucumis melo var. agrestis Naudin: a potential source of natural antioxidants
HPLCScientific Reports202690% ✓CC-BYResearch method (specificity, robustness)
Säule: C8, 15 \u03bcm
Phase: mobile phase was composed of water (A) and 0
Detektion: UV 750 nm
Fluss: 0.90 mL/min
Temp.: 25.0 °C
Inj.: 200 \u03bcL
Gradient: , as follows: 0 min (82% A); 0–1 min (82% A); 1–11 min…
Shehata F, Hamdy R, Garf I, Megahed E. Macro-micromorphological, anatomical, and phytochemical characterization of Cucumis melo var. agrestis Naudin: a potential source of natural antioxidants. Scientific Reports. 2026;16:12711. doi:10.1038/s41598-026-47246-7
A comprehensive study of macro-micro-morphological and anatomical seed and pollen characteristics of Cucumis melo var. agrestis (Cucurbitaceae) using plant materials gathered during field visits, the results showed that the plant is annual, pubescent, prostrate with a single hairy unbranched tendril, andro-monoecious; yellow perfect flowers and large male flowers on separate branches. Fruit yellowish green to yellow, fleshy, globular to ellipsoid, berry-like, indehiscent, pubescent when young, turns glabrous at maturity, many-seeded. Pollen grains are monads, sub-triangular, polar-shaped with tri-zonoporate aperture, reticulate texture, and foveolate ornamentation. Seed pale cream, obovoid with apical hilum, reticulate sculpture with hexagonal cells. The stem is circular with ridges; vascular bundles are arranged in two alternate rings.  The petiole has an oval outline with a groove along its the narrow side. The leaf has a U-shaped midrib region, and the mesophyll is differentiated into palisade and spongy. The leaf and fruit phenolic profiles, antioxidant actavity, and free radical scavenging activity were studied. A qualitative phytochemical screening procedure was performed on the 70% ethanolic extract. The Phytochemical study revealed the presence of tannins, flavonoids, alkaloids, saponins, steroids, fatty acids, coumarins, terpenoids, and glycosides. Total phenolic and flavonoid content in the leaves and fruit was determined. The data showed that the ethanolic extract of leaves records the highest concentration of 55.71 mg GAE/g and 9.013 mg QE/g. Antioxidant activity was evaluated using different assays, including KMnO₄, methylene blue, DCPIP, and DPPH. In vitro methods using leaf and fruit extracts, the leaf extract showed significant action towards free radicals in all methods. The ethanolic extract was analyzed by using high-performance liquid chromatography (HPLC) to identify its phenolic constituents. HPLC analysis of the ethanolic extract of Cucumis me...
AnatomyAntioxidantvar.DCPIPHPLCPollenSeedBiochemistry
📄
Determination of Methylene Blue and Its Metabolite Residues in Aquatic Products by High-Performance Liquid Chromatography–Tandem Mass Spectrometry
HPLCMolecules202190% ✓CC-BYResearch method (specificity, robustness)
Säule: C18, 0.22 \u03bcm
Phase: Mobile phase A was ammonium acetate buffer (0
Detektion: MS/MS
Fluss: 0.30 mL/min
Temp.: 30.0 °C
Inj.: 25 \u03bcL
Gradient: program is listed in Table 5
Zhang X, Hui Y, Fang C, Wang Y, Han F, Lou X, et al. Determination of Methylene Blue and Its Metabolite Residues in Aquatic Products by High-Performance Liquid Chromatography–Tandem Mass Spectrometry. Molecules. 2021;26:4975. doi:10.3390/molecules26164975
A sensitive and reliable method was developed to determine methylene blue (MB) and its metabolite residues, including azure A (AZA), azure B (AZB), and azure C (AZC) in aquatic products by HPLC–MS/MS. The samples were extracted by acetonitrile and cleaned up by alumina-neutral (ALN) cartridges. The analytes were separated on a Sunfire C18 column (150 mm × 2.1 mm, 5 µm). The method was validated according to the European criteria of Commission Decision 2002/657/CE. Good linearity between 1–500 µg/L was obtained with correlation coefficients (R2) greater than 0.99. The limit of quantification (LOQ) was 1.0 µg/kg. The average recoveries at three levels of each compound (1, 5, and 10 µg/kg) were demonstrated to be in the range of 71.8–97.5%, with relative standard deviations (RSDs) from 1.05% to 8.63%. This method was suitable for the detection of methylene blue and its metabolite residues in aquatic products.
high-performance liquid chromatography–tandem mass spectrometrymethylene bluedisinfectantaquatic products
📈 Methodenvalidierung (ICH Q2)

Keine Validierungsdaten. Kontaktieren Sie den Methodenautor.

Parameter nach: ICH Q2(R2) ↗

📋 Methodenvergleich
Technik Säule Analysenzeit Detektion Mobile Phase Quelle
LC-MS/MS C18 UV 700 nm mobile phase consisted of solvent A (dichloromethane/methanol/acetonitrile/water, 5:85:5 DOI ↗
HPLC C8 UV 750 nm mobile phase was composed of water (A) and… DOI ↗
HPLC C18 MS/MS Mobile phase A was ammonium acetate buffer (0 DOI ↗
🔧 Fehlerbehebung HPLC/GC
Szerokie piki / tailing
Ursachen: Zużyta kolumna, złe pH fazy, przeciążenie kolumny, dead volume
Lösung: Wymień kolumnę, sprawdź pH buforu (±0.2), zmniejsz objętość nastrzyku, sprawdź połączenia
Dryft linii bazowej
Ursachen: Zanieczyszczona faza ruchoma, gradient, temperatura niestabilna
Lösung: Odgazuj fazę, filtruj 0.22 µm, stabilizuj temperaturę kolumny, przemyj system
Brak piku
Ursachen: Zła długość fali, substancja nie eluuje, rozkład termiczny, zła faza
Lösung: Sprawdź λmax, wydłuż gradient, obniż temperaturę, zmień fazę ruchomą
Piki duchów (ghost peaks)
Ursachen: Zanieczyszczenie systemu, carry-over, zanieczyszczone fiolki
Lösung: Wyczyść system (MeOH/H₂O), użyj nowych fiolek, wstrzyknij blank
Niski odzysk
Ursachen: Adsorpcja na ściankach, niedostateczna ekstrakcja, rozkład
Lösung: Dodaj IS, silanizuj szkło, zoptymalizuj ekstrakcję, sprawdź stabilność

Quellen: Snyder, Kirkland & Dolan ↗, Waters ↗

🧪 Löslichkeit und Lösungsmittelkompatibilität MolGod_SOLUB_1
Molekül
methylene blue
Formel
C₁₆H₁₈ClN₃S
logP
Masse (g/mol)
319.9
Polarität
Mäßig

⚠️ GC-Schätzung (Hoftyzer–Van Krevelen). Keine HSP-Literaturdaten für diese CAS — Genauigkeit ±2 MPa½. Experimentell verifizieren.

Lösungsmittel Compat. Ra Visuell GC-MS HPLC Anwendungen Referenzen
Water (H₂O)− Słaba36.9
✗ NieA (aqueous) (RP)
buffercell-cultureanalyticalextraction (hydrofilne)
Ethanol (EtOH)− Słaba14.5
✗ NieA/B modifier (RP/NP)
extractionspectroscopy (UV-Vis)synthesisHPLC modifier
Methanol (MeOH)− Słaba17.7
✗ NieA/B (RP) (RP)
HPLC (eluent)LC-MSKarl FischerUV-transparent do 205 nm
Acetone~ Śr.10.0
✗ NieB modifier (NP)
GC headspacecrystallizationdegreasingsynthesis
Acetonitrile (ACN)− Słaba16.2
✗ NieB (RP) (RP)
HPLC eluent (gold standard)LC-MS (wolny cut-off UV 190 nm)peptide analysis
DMSO− Słaba18.3
✗ NieN/A (N/A)
NMR (d6-DMSO)cell biology (cryopreservation)drug deliverysynthesis
THF~ Śr.9.9
✗ NieB (NP) (NP)
GPC/SEC (polymer analysis)Grignard synthesisorganometallic
DCM (CH₂Cl₂)− Słaba12.9
✓ TakB (NP) (NP)
extractionNP-HPLCGC-MScrystallization (anti-solvent)
Chloroform (CHCl₃)~ Śr.11.9
✓ TakN/A (toxic) (N/A)
NMR (CDCl3)lipid extraction (Folch method)NP-TLC
Hexane~ Śr.10.7
✓ TakA (NP) (NP)
NP-HPLCoil extraction (lipids)GC-MSTLC (NP)
Toluene− Słaba13.7
✓ TakB (NP) (NP)
NMR (d8-toluene)synthesisDean-Stark azeotropic drying
📚 Wissenschaftliche Referenzen für Lösungsmittel (Chicago Author-Date) — zum Aufklappen klicken

11 Lösungsmittel × 5 unabhängige wissenschaftliche Quellen (NIST/CRC/IARC/Hansen/Reichardt/Smallwood/Wypych/Armarego/Snyder/GESTIS). 55+ vollständige Zitate unten.

Water (H₂O)
  1. NIST — NIST Chemistry WebBook — Water (CAS 7732-18-5)
  2. CRC — CRC Handbook of Chemistry and Physics, 104th ed., Sec. 8 (Properties of Water)
  3. IAPWS — IAPWS Release on Static Dielectric Constant of Water
  4. Reichardt 2011 — Solvents and Solvent Effects in Organic Chemistry
  5. GESTIS — GESTIS Substance Database — Water
Ethanol (EtOH)
  1. NIST — NIST Chemistry WebBook — Ethanol (CAS 64-17-5)
  2. CRC — CRC Handbook — Ethanol physical constants
  3. Snyder & Kirkland — Modern Liquid Chromatography — Ethanol eluotropic
  4. Smallwood — Handbook of Organic Solvent Properties — Ethanol
  5. GESTIS — GESTIS Substance Database — Ethanol
Methanol (MeOH)
  1. NIST — NIST Chemistry WebBook — Methanol (CAS 67-56-1)
  2. CRC — CRC Handbook — Methanol physical constants
  3. Snyder & Kirkland — Modern Liquid Chromatography — MeOH eluotropic, eo=0.95
  4. GESTIS — GESTIS Substance Database — Methanol
Acetone
  1. NIST — NIST Chemistry WebBook — Acetone (CAS 67-64-1)
  2. CRC — CRC Handbook — Acetone physical & thermodynamic constants
  3. Hansen 2007 — Hansen Solubility Parameters — Acetone (dD=15.5, dP=10.4, dH=7.0)
  4. Smallwood — Handbook of Organic Solvent Properties — Acetone
  5. GESTIS — GESTIS Substance Database — Acetone
Acetonitrile (ACN)
  1. NIST — NIST Chemistry WebBook — Acetonitrile (CAS 75-05-8)
  2. CRC — CRC Handbook — Acetonitrile constants
  3. Snyder & Kirkland — Modern Liquid Chromatography — ACN gold-standard HPLC eluent
  4. Reichardt 2011 — Solvents and Solvent Effects — ACN dipolar aprotic
  5. GESTIS — GESTIS Substance Database — Acetonitrile
DMSO
  1. NIST — NIST Chemistry WebBook — DMSO (CAS 67-68-5)
  2. Wypych 2019 — Handbook of Solvents Vol. 1 — DMSO comprehensive properties
  3. Hansen 2007 — HSP — DMSO (dD=18.4, dP=16.4, dH=10.2)
  4. Reichardt 2011 — Solvents and Solvent Effects — DMSO E_T(30)=45.1, dipolar aprotic
  5. GESTIS — GESTIS Substance Database — DMSO
THF
  1. NIST — NIST Chemistry WebBook — THF (CAS 109-99-9)
  2. Armarego 2009 — Purification of Laboratory Chemicals — THF drying & peroxide test
  3. Hansen 2007 — Hansen Solubility Parameters — THF (dD=16.8, dP=5.7, dH=8.0)
  4. Smallwood — Handbook of Organic Solvent Properties — THF
  5. GESTIS — GESTIS Substance Database — Tetrahydrofuran
DCM (CH₂Cl₂)
  1. NIST — NIST Chemistry WebBook — Dichloromethane (CAS 75-09-2)
  2. IARC 71 — IARC Monograph 71 — DCM (Group 2A carcinogen)
  3. Hansen 2007 — Hansen Solubility Parameters — DCM (dD=18.2, dP=6.3, dH=6.1)
  4. Reichardt 2011 — Solvents and Solvent Effects — DCM polarity index
  5. GESTIS — GESTIS Substance Database — Dichloromethane
Chloroform (CHCl₃)
  1. NIST — NIST Chemistry WebBook — Chloroform (CAS 67-66-3)
  2. IARC 73 — IARC Monograph 73 — Chloroform (Group 2B carcinogen)
  3. Hansen 2007 — Hansen Solubility Parameters — CHCl3 (dD=17.8, dP=3.1, dH=5.7)
  4. Reichardt 2011 — Solvents and Solvent Effects — CHCl3 H-bond donor strength
  5. GESTIS — GESTIS Substance Database — Chloroform
n-Hexane
  1. NIST — NIST Chemistry WebBook — n-Hexane (CAS 110-54-3)
  2. ATSDR n-Hexane — ATSDR Toxicological Profile for n-Hexane — neuropatia obwodowa (n-Heksan NIE jest kancerogenem IARC)
  3. Hansen 2007 — Hansen Solubility Parameters — n-Hexane (dD=14.9, dP=0, dH=0)
  4. Snyder & Kirkland — Modern Liquid Chromatography — n-Hexane NP standard, eo=0.00
  5. GESTIS — GESTIS Substance Database — n-Hexane
Toluene
  1. NIST — NIST Chemistry WebBook — Toluene (CAS 108-88-3)
  2. IARC 71 — IARC Monograph 71 — Toluene
  3. Hansen 2007 — Hansen Solubility Parameters — Toluene (dD=18.0, dP=1.4, dH=2.0)
  4. Smallwood — Handbook of Organic Solvent Properties — Toluene
  5. GESTIS — GESTIS Substance Database — Toluene
Löslichkeitstheorie (angewendet in der Verträglichkeitsvorhersage):
  1. Yalkowsky, Samuel H., and Shri C. Valvani. 1980. "Solubility and Partitioning I: Solubility of Nonelectrolytes in Water." Journal of Pharmaceutical Sciences 69 (8): 912–922. https://doi.org/10.1002/jps.2600690814 — General Solubility Equation (GSE): logS = 0.5 − logP − 0.01(MP−25).
  2. Hansen, Charles M. 2007. Hansen Solubility Parameters: A User's Handbook. 2nd ed. CRC Press. https://doi.org/10.1201/9781420006834 — HSP triplet (dD, dP, dH) + wzór Ra.
  3. Stefanis, E., and C. Panayiotou. 2008. "Prediction of Hansen Solubility Parameters with a New Group-Contribution Method." Int J Thermophys 29: 568–585. https://doi.org/10.1007/s10765-008-0415-z
  4. Reichardt, Christian, and Thomas Welton. 2011. Solvents and Solvent Effects in Organic Chemistry. 4th ed. Wiley-VCH. https://doi.org/10.1002/9783527632220 — E_T(30) polarity scale, solwatochromia.
  5. Snyder, Lloyd R., Joseph J. Kirkland, and John W. Dolan. 2010. Introduction to Modern Liquid Chromatography. 3rd ed. Wiley. https://doi.org/10.1002/9780470508183 — Eluotropic series, polarity index.
  6. Van Krevelen, D. W., and K. Te Nijenhuis. 2009. Properties of Polymers. 4th ed. Elsevier. https://doi.org/10.1016/B978-0-08-054819-7.X0001-5 — Hoftyzer–Van Krevelen group contribution dla dD/dP/dH z SMILES.
  7. Marcus, Yizhak. 1998. The Properties of Solvents. Wiley Series in Solution Chemistry, Vol. 4. ISBN 9780471983699 — Vollständige tabellarische Sammlung von 250+ Lösungsmitteln (ε, μ, Donizität, Akzeptorzahlen).
  8. PubChem Compound Database — CAS 61-73-4 lookup ↗ — logP (XLogP3), water solubility experimental + predicted.

Vollständige Bibliografie im Akkordeon REFERENZEN (am Ende der Seite) — Chicago Manual of Style 17th ed., Author-Date.

📚 Technische FAQ — methylene blue (5) MolGod_TECHFAQ_1
❓ Jak przygotować roztwór standardowy Methylene Blue o stężeniu 10^-4 mol/L?
MolGod_TECHFAQ_1_Q0
Aby przygotować roztwór standardowy Methylene Blue (C₁₆H₁₈ClN₃S, m.cz. 319.9 g/mol) o stężeniu 10^-4 mol/L: 1. Oblicz masę potrzebną na 1 L roztworu: n = C × V = 10^-4 mol/L × 1 L = 10^-4 mol. Masa = n × m.cz. = 10^-4 mol × 319.9 g/mol = 0.03199 g. 2. Odważ 0.03199 g Methylene Blue i rozpuść w minimalnej objętości wody destylowanej. 3. Uzupełnij do 1 L wodą destylowaną.
Hilfreich?
❓ W jakich warunkach należy przechowywać Methylene Blue, aby zachować jego stabilność?
MolGod_TECHFAQ_1_Q1
Methylene Blue należy przechowywać: 1. W temperaturze pokojowej (15-25°C). 2. W ciemności (chronić przed światłem, szczególnie UV), gdyż jest wrażliwy na fotodegradację. 3. W suchym miejscu, z dala od wilgoci i substancji utleniających. Zaleca się przechowywanie w ciemnych butelkach szklanych.
Hilfreich?
❓ Jaka metoda analityczna jest najbardziej odpowiednia do oznaczania Methylene Blue, biorąc pod uwagę jego logP i masę molową?
MolGod_TECHFAQ_1_Q2
Dla Methylene Blue (logP ≈ -1.5, m.cz. 319.9 g/mol) zalecana jest: 1. HPLC (High-Performance Liquid Chromatography) z detektorem UV (λ = 610 nm), ponieważ substancja ma umiarkowaną polarność i wysoką masę molową, co czyni ją odpowiednią dla tej techniki. GC (Gas Chromatography) nie jest zalecane ze względu na niskie logP i wysoką masę molową.
Hilfreich?
❓ Jakie są główne reaktywności i niezgodności chemiczne Methylene Blue?
MolGod_TECHFAQ_1_Q3
Methylene Blue: 1. Reaguje z silnymi utleniaczami (np. KMnO₄, H₂O₂), tworząc kompleksy lub ulegając degradacji. 2. Jest wrażliwy na kwasy i zasady - może ulegać hydrolizie. 3. Niezgodności: unikać kontaktu z substancjami silnie kwasowymi/zasadowymi oraz utleniającymi. Zaleca się stosowanie buforów o pH ~7.
Hilfreich?
❓ W jakich praktycznych zastosowaniach laboratoryjnych wykorzystuje się Methylene Blue?
MolGod_TECHFAQ_1_Q4
Methylene Blue jest używany m.in.: 1. Jako wskaźnik pH (zakres: kwaśny do lekko zasadowego, zmiana koloru od żółtego do niebieskiego). 2. W analizie biochemicznej do oznaczania zawartości białek lub lipidów (np. w testach jakościowych). 3. Jako barwnik w mikroskopii komórkowej do barwienia mitochondriów.
Hilfreich?
🧮 Laborrechner (8) MolGod_LABCALC_1
Verdünnung (C₁V₁=C₂V₂)
Molarität (M=n/V)
pH-Puffer (Henderson-Hasselbalch)
Beer-Lambert (A=εcl)
Masse → Mol
Konzentration % → M
ppm → mg/L
Temperatur C↔F↔K

Verifizierte Formeln: IUPAC Gold Book ↗, DOI ↗

📊 Spektroskopische Spektrendatenbanken MolGod_SPECDB_3
📋 Laborprotokoll-Generator MolGod_PROTOCOL_1

Protokoll erstellt auf Grundlage von: GHS SDS, Aldrich Lab Guide ↗

🏷️ Etiketten-Generator (QR) MolGod_LABEL_1
Methylene Blue• methylene blue• CAS: 61-73-4• Formula: C16H18ClN3S• Mass: 319.90 g/molGEFAHRGHS-GEFAHRENHINWEISE:H302: Gesundheitsschädlich bei Verschlucken.H318: Verursacht schwere Augenschäden.P264: Nach Gebrauch gründlich waschen.P203: Vor Gebrauch alle Sicherheitshinweise einholen, lesen und befolgen.SOLUTIONSul. Juliana Przybosia 8, 21-400 Łuków+48 794 171 794[email protected]www.marmakchemicals.euWYŁĄCZNIE DO CELÓW LABORATORYJNYCH!Batch No.: Netto Mass: MFG: Init: • IUPAC: [7-(dimethylamino)phenothiazin-3-ylidene]-dimethylazanium chloride
ADMET — Pharmakologisches Profil
MolGod_ADMET_1
ADMET-Vorhersagen werden geladen…
🧪 Assistent zur Lösungsherstellung (Smart Prep) MolGod_PREP_2

Geben Sie ein, was Sie zubereiten möchten — ich erstelle eine SOP

Beispiele unten — zum Einfügen anklicken:
Fertige Rezepte:
📚 Überblick über die wissenschaftliche Literatur — CAS 61-73-4MolGod_LITHUB_MAIN
MolGod_RHIGHL_LT1
⭐ Wichtigste Erkenntnisse (wissenschaftliche Literatur) 6 Publikationen
🏆 CAS 61-73-4 — multi-criteria ranking (W12): 30% Zitierungen · 20% Aktualität · 20% Thema · 15% historisch · 15% Open Access.
  1. #1
    Heba M. Hashem, Mahmoud El‐Maghrabey, Rania El‐Shaheny (2024) · Scientific Reports
    Warum es wichtig ist: Aktuell (2024) · open access
    SCORE 11.49 Mechanismus Zitierungen: 55 Open Access DOI ↗
  2. #2
    Wenfang Zhou, Kristen Carlson, Qingfeng Wu et al. (2023) · Crystals
    Warum es wichtig ist: Aktuell (2023) · open access
    SCORE 9.68 Mechanismus Zitierungen: 14 Open Access DOI ↗
  3. #3
    Canossa, Stefano, Giovanni Predieri, Claudia Graiff et al. (2018) · Acta Crystallographica Section E Crystallographic Communications
    Warum es wichtig ist: Open access
    SCORE 8.57 Mechanismus Zitierungen: 10 Open Access DOI ↗
  4. #4
    Zhu YJ, Shi YT, Shi SY et al. (2025) · Annals of medicine
    Warum es wichtig ist: Aktuell (2025) · Übersichtsarbeit · open access
    SCORE 6.25 Übersicht Open Access DOI ↗ PubMed ↗
  5. #5
    Smith BA, Robinson R, Most AK (2026) · Journal of pharmacy practice
    Warum es wichtig ist: Aktuell (2026) · Übersichtsarbeit
    SCORE 4 Übersicht DOI ↗ PubMed ↗
  6. #6
    [Methylene blue test].
    HINSELMANN H (1950) · Anais brasileiros de ginecologia
    Warum es wichtig ist: Pflichtzitat (Kanon) · historische Arbeit (1950)
    SCORE 2.25 Historisch MUST-CITE

Description



Methylene Blue – Opis Produktu Chemicznego

Charakterystyka

  • Nazwa chemiczna: Methylene Blue
  • Wzór chemiczny: C10H8N2O2
  • Masa molowa (w g/mol): 172,19
  • Gęstość (kg/m3): 2,02
  • Temperatura topnienia (°C): 345
  • Temperatura wrzenia (°C): brak danych
  • Barwa: Niebieska (-) / Czerwonofioletowa (+)
  • Rozpuszczalność w wodzie (g/100ml): 4,5 – 4,7

Zastosowanie

  • Przemysłowe zastosowania: Barwnik w przemyśle tekstylnym, farbiarstwo, produkcja lakierów, tworzyw sztucznych
  • Akwarystyka: Służy do regulacji pH i absorpcji azotanów w akwariach słodkowodnych
  • Laboratoryjne zastosowania: Wskaźnik redoks, reakcje chemiczne w laboratorium

Bezpieczeństwo

Methylene Blue jest stosunkowo bezpiecznym związkiem chemicznym, ale pewne środki ostrożności powinny być przestrzegane. Unikaj kontaktu z oczami i skórą. W przypadku kontaktu, natychmiast spłucz dużą ilością wody. Methylene Blue może reagować z kwasami i zasadami, tworząc niebezpieczne opary. Pracuj w dobrze wentylowanym pomieszczeniu, używaj odpowiednich środków ochrony osobistej, takich jak rękawice i okulary ochronne. Skonsultuj się z lokalnym centrum kontroli zatruć w przypadku podejrzenia zatrucia.

Przechowywanie

Methylene Blue należy przechowywać w szczelnie zamkniętym pojemniku, w suchym i chłodnym miejscu. Unikaj ekspozycji na bezpośrednie światło słoneczne. Trzy

Additional information

Gramatura

1 g — zł34.91

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📈 HPLC-Gradient — Optimierer (LSS) VORLAGE

logP unbekannt — PubChem hat keinen XLogP-Wert geliefert. Der folgende Gradient ist eine allgemeine Vorlage 5–95% MeCN/H2O in 15 min; überprüfen Sie die Parameter vor der Verwendung.

⚠ logP nicht verfügbar. PubChem hat keine XLogP3-Eigenschaft für diese CAS-Nummer geliefert. Die untenstehenden Gradientenwerte sind eine allgemeine Vorlage — keine an die Verbindung angepasste LSS-Anpassung.
  • Säule: C18
  • Puffer: phosphate
  • Fluss: 1 mL/min
  • logP: logP nicht verfügbar
  • Rampe: 21% → 95% B, 15 min
  • Gesamtanalysenzeit: 28 min
t (min) %A %B flow (mL/min) Kommentar
0 79 21 1 Start (Gleichgewicht)
2 79 21 1 Ende der Anfangshaltezeit
17 5 95 1 Ende der LSS-Rampe
22 5 95 1 Säulenspülung
23 79 21 1 Rückkehr zu init
28 79 21 1 Reäquilibrierung
📚 Wissenschaftliche Referenzen (Chicago Author-Date)
  1. Snyder, Lloyd R., John W. Dolan, and Joseph J. Kirkland. 2010. Introduction to Modern Liquid Chromatography. Wiley. — Chapter 9 — gradient elution, LSS theory (cited as Snyder et al. 2010 in tool description).
  2. Schoenmakers, Peter J. 1986. Optimization of Chromatographic Selectivity: A Guide to Method Development. Elsevier. — Numerical optimization of gradient programs.
  3. Snyder, L. R., and J. W. Dolan. 2007. High-Performance Gradient Elution: The Practical Application of the Linear-Solvent-Strength Model. Wiley. — Foundational LSS reference for the %B_init = 5 + 8·logP heuristic implemented here.
  4. Nikitas, Pavlos, and Adrian Pappa-Louisi. 2009. "Retention models for isocratic and gradient elution in reversed-phase liquid chromatography." Journal of Chromatography A 1216: 1737-1755. [DOI ↗] — Modern review of gradient retention models — basis for non-LSS extensions.
  5. Carr, Peter W.. 2009. "The new physical chemistry of HPLC." Journal of Chromatography A 1216: 1764-1772. [DOI ↗]
  6. Dong, Michael W. 2019. HPLC and UHPLC for Practicing Scientists. Wiley. https://doi.org/10.1002/9781119313793. — Modern UHPLC gradient programming, sub-2 µm scaling rules.
  7. Wu, Naijun, and Anton M. Clausen. 2007. "Fundamental and practical aspects of ultrahigh pressure liquid chromatography for fast separations." Journal of Separation Science 30: 1167-1182. [DOI ↗]
  8. Stoll, Dwight R., and Peter W. Carr. 2017. "Two-Dimensional Liquid Chromatography: A State of the Art Tutorial." Analytical Chemistry 89: 519-531. [DOI ↗] — Reference for orthogonal gradient design (2D-LC second dimension).
  9. Dolan, John W.. 2013. "When to Modify Method Conditions." LCGC North America 31: 192-199.
  10. Meyer, Veronika R. 2010. Practical High-Performance Liquid Chromatography. Wiley. — Chapter 7 — practical gradient design with isokratyczny scouting.
  11. Stoll, Dwight R., and Peter W. Carr. 2017. "Two-Dimensional Liquid Chromatography: A State of the Art Tutorial." Analytical Chemistry 89: 519-531. [DOI ↗]
  12. Carr, Peter W.. 2009. "The new physical chemistry of HPLC." Journal of Chromatography A 1216: 1764-1772. [DOI ↗]
  13. Wu, Naijun, and Anton M. Clausen. 2007. "Fundamental and practical aspects of ultrahigh pressure liquid chromatography for fast separations." Journal of Separation Science 30: 1167-1182. [DOI ↗]
  14. Engelhardt, Heinz. 2014. 100 Years of Chromatography. Wiley-VCH.
  15. Vivó-Truyols, Gabriel, and Hans-Gerd Janssen. 2010. "Probabilistic approach to peak deconvolution in chromatography." Analytical Chemistry 82: 8525-8531. [DOI ↗]

REST: /wp-json/molgod/v1/hplc/gradient/61-73-4

📐 HPLC-Peaksymmetrie-Rechner (USP Tf / As) FEATURE J

Berechnen Sie den USP-Tailing-Faktor (T) und die Asymmetrie (As) aus den Peak-Halbwertsbreiten. Geben Sie a (linke Halbbreite) und b (rechte Halbbreite) an, gemessen bei 5% oder 10% der Peakhöhe.

📚 References (Chicago Author-Date)
  1. USP General Chapter <621>. 2024. "Chromatography." United States Pharmacopeial Convention. [link ↗] — Defines USP Tailing Factor T = (a+b)/(2a) measured at 5% peak height.
  2. International Council for Harmonisation (ICH). 2023. "Validation of Analytical Procedures Q2(R2)." ICH Expert Working Group. [link ↗] — Tailing factor is a system suitability parameter (Section 6).
  3. Foley, Joe P., and John G. Dorsey. 1983. "Equations for calculation of chromatographic figures of merit for ideal and skewed peaks." Analytical Chemistry 55: 730-737 https://doi.org/10.1021/ac00255a033 [link ↗] — Original asymmetry factor As = b/a at 10% height (Foley & Dorsey 1983).
  4. Snyder, Lloyd R., Joseph J. Kirkland, and John W. Dolan. 2010. "Introduction to Modern Liquid Chromatography." Wiley. https://doi.org/10.1002/9780470508183 [link ↗] — Chapter 2.4 — peak shape diagnostics and remedies.
  5. Dolan, John W.. 2003. "Peak tailing and resolution." LCGC North America 21: 610-614 [link ↗] — How tailing factor degrades effective resolution.
  6. Vivó-Truyols, Gabriel, and Hans-Gerd Janssen. 2010. "Probabilistic approach to peak deconvolution in chromatography." Analytical Chemistry 82: 8525-8531 https://doi.org/10.1021/ac101742z [link ↗] — Modern numerical deconvolution for asymmetric peaks.
  7. Kromidas, Stavros. 2017. "HPLC Made to Measure: A Practical Handbook for Optimization." Wiley-VCH. — Practical Tf and As thresholds for routine QC.
  8. Dong, Michael W.. 2019. "HPLC and UHPLC for Practicing Scientists." Wiley. https://doi.org/10.1002/9781119313793 [link ↗]
  9. Meyer, Veronika R.. 2010. "Practical High-Performance Liquid Chromatography." Wiley.
  10. Heyden, Yvan Vander, et al.. 2009. "Robustness of pharmaceutical liquid chromatographic methods." Journal of Chromatography B 877: 2120-2129 https://doi.org/10.1016/j.jchromb.2008.10.052 [link ↗]
  11. Stoll, Dwight R., and Peter W. Carr. 2017. "Two-Dimensional Liquid Chromatography: A State of the Art Tutorial." Analytical Chemistry 89: 519-531 https://doi.org/10.1021/acs.analchem.6b03506 [link ↗]
  12. Carr, Peter W.. 2009. "The new physical chemistry of HPLC." Journal of Chromatography A 1216: 1764-1772 https://doi.org/10.1016/j.chroma.2008.11.094 [link ↗]
  13. Wu, Naijun, and Anton M. Clausen. 2007. "Fundamental and practical aspects of ultrahigh pressure liquid chromatography for fast separations." Journal of Separation Science 30: 1167-1182 https://doi.org/10.1002/jssc.200700026 [link ↗]
  14. Engelhardt, Heinz. 2014. "100 Years of Chromatography." Wiley-VCH.
  15. Vivó-Truyols, Gabriel, and Hans-Gerd Janssen. 2010. "Probabilistic approach to peak deconvolution in chromatography." Analytical Chemistry 82: 8525-8531 https://doi.org/10.1021/ac101742z [link ↗]
📊 Rechner für Auflösung und Bodenzahl (Rs, N, H) FEATURE K

Berechnen Sie die Auflösung Rs, die theoretische Bodenzahl N und HETP (H) für ein Paar von HPLC-Peaks. Geben Sie die Retentionszeiten, Peakbreiten (bei 50% oder an der Basis) und die Säulenlänge an.

📚 References (Chicago Author-Date)
  1. Snyder, Lloyd R., Joseph J. Kirkland, and John W. Dolan. 2010. "Introduction to Modern Liquid Chromatography." 3rd ed. John Wiley & Sons. ISBN 978-0-470-16754-0. https://doi.org/10.1002/9780470508183 [link ↗] — Chapter 2 covers resolution, plate count and HETP fundamentals (Snyder et al. 2010).
  2. USP General Chapter <621>. 2024. "Chromatography." USP-NF 2024 ed. United States Pharmacopeial Convention. [link ↗] — Defines Rs >= 1.5 acceptance criterion and N calculation methods.
  3. Dolan, John W.. 2003. "How much resolution is enough?." LCGC North America 21: 350-353 [link ↗] — Practical guidance on Rs targets for routine method development.
  4. Van Deemter, J. J., F. J. Zuiderweg, and A. Klinkenberg. 1956. "Longitudinal diffusion and resistance to mass transfer as causes of nonideality in chromatography." Chemical Engineering Science 5: 271-289 https://doi.org/10.1016/0009-2509(56)80003-1 [link ↗] — Origin of N = 5.54·(tr/w0.5)² half-height plate count formulation.
  5. Giddings, J. Calvin. 1965. "Dynamics of Chromatography, Part I: Principles and Theory." Marcel Dekker. ISBN 978-0-8247-1357-7. — Resolution equation Rs = (1/4)·√N·(α-1)/α·k/(1+k) (master equation).
  6. Foley, Joe P., and John G. Dorsey. 1983. "Equations for calculation of chromatographic figures of merit for ideal and skewed peaks." Analytical Chemistry 55: 730-737 https://doi.org/10.1021/ac00255a033 [link ↗] — Skewed-peak corrections to apparent N.
  7. Knox, John H.. 1977. "Practical aspects of LC theory." Journal of Chromatographic Science 15: 352-364 https://doi.org/10.1093/chromsci/15.9.352 [link ↗]
  8. Carr, Peter W.. 2009. "The new physical chemistry of HPLC." Journal of Chromatography A 1216: 1764-1772 https://doi.org/10.1016/j.chroma.2008.11.094 [link ↗]
  9. Dong, Michael W.. 2019. "HPLC and UHPLC for Practicing Scientists." 2nd ed. Wiley. ISBN 978-1-119-31378-3. https://doi.org/10.1002/9781119313793 [link ↗]
  10. Meyer, Veronika R.. 2010. "Practical High-Performance Liquid Chromatography." 5th ed. Wiley. ISBN 978-0-470-68218-0.
  11. Stoll, Dwight R., and Peter W. Carr. 2017. "Two-Dimensional Liquid Chromatography: A State of the Art Tutorial." Analytical Chemistry 89: 519-531 https://doi.org/10.1021/acs.analchem.6b03506 [link ↗]
  12. Carr, Peter W.. 2009. "The new physical chemistry of HPLC." Journal of Chromatography A 1216: 1764-1772 https://doi.org/10.1016/j.chroma.2008.11.094 [link ↗]
  13. Wu, Naijun, and Anton M. Clausen. 2007. "Fundamental and practical aspects of ultrahigh pressure liquid chromatography for fast separations." Journal of Separation Science 30: 1167-1182 https://doi.org/10.1002/jssc.200700026 [link ↗]
  14. Engelhardt, Heinz. 2014. "100 Years of Chromatography." 2nd ed. Wiley-VCH. ISBN 978-3-527-33473-5.
  15. Vivó-Truyols, Gabriel, and Hans-Gerd Janssen. 2010. "Probabilistic approach to peak deconvolution in chromatography." Analytical Chemistry 82: 8525-8531 https://doi.org/10.1021/ac101742z [link ↗]
🧪 Systemeignung — Live-Rechner (USP <621>) FEATURE L

Geben Sie Daten aus 5-6 Injektionen ein (Flächen, tR, Tailing, Böden) — der Rechner berechnet %RSD, Mittelwerte und prüft die Konformität mit USP <621>. Sie können CSV (kommagetrennt) einfügen oder einzelne Werte bearbeiten.

📚 References (Chicago Author-Date)
  1. USP General Chapter <621>. 2024. "Chromatography (System Suitability section)." USP-NF 2024 ed. United States Pharmacopeial Convention. [link ↗] — Defines RSD area < 2%, tailing < 2.0, N > 2000 acceptance criteria.
  2. International Council for Harmonisation (ICH). 2023. "Validation of Analytical Procedures Q2(R2)." ICH Expert Working Group. [link ↗] — Section 5.4 — system suitability is part of method validation.
  3. US Food and Drug Administration (FDA). 2018. "Reviewer Guidance: Validation of Chromatographic Methods." US Food and Drug Administration. [link ↗] — CDER reviewer perspective on chromatographic validation expectations.
  4. Snyder, Lloyd R., Joseph J. Kirkland, and John W. Dolan. 2010. "Introduction to Modern Liquid Chromatography." 3rd ed. Wiley. — Chapter 2 — system suitability fundamentals (RSD, Tf, N).
  5. Heyden, Yvan Vander, et al.. 2009. "Robustness of pharmaceutical liquid chromatographic methods." — Robustness vs. system suitability — design-of-experiments framework.
  6. Rozet, Eric, et al.. 2013. "Analysis of recent pharmaceutical regulatory documents on analytical method validation."
  7. European Medicines Agency (EMA). 2011. "Guideline on bioanalytical method validation EMEA/CHMP/EWP/192217/2009." EMA. [link ↗] — EMA companion guideline with bioanalytical SS criteria.
  8. Dong, Michael W.. 2019. "HPLC and UHPLC for Practicing Scientists." 2nd ed. Wiley. — UHPLC-specific suitability adjustments (n=5 vs. n=6).
  9. Kazakevich, Yuri V., and Rosario LoBrutto, eds.. 2007. "HPLC for Pharmaceutical Scientists." Wiley-Interscience.
  10. AOAC International. 2016. "Appendix F: Guidelines for Standard Method Performance Requirements." AOAC INTERNATIONAL. [link ↗] — Alternative SS thresholds for food/dietary samples.
  11. Stoll, Dwight R., and Peter W. Carr. 2017. "Two-Dimensional Liquid Chromatography: A State of the Art Tutorial."
  12. Carr, Peter W.. 2009. "The new physical chemistry of HPLC."
  13. Wu, Naijun, and Anton M. Clausen. 2007. "Fundamental and practical aspects of ultrahigh pressure liquid chromatography for fast separations."
  14. Engelhardt, Heinz. 2014. "100 Years of Chromatography." 2nd ed. Wiley-VCH.
  15. Vivó-Truyols, Gabriel, and Hans-Gerd Janssen. 2010. "Probabilistic approach to peak deconvolution in chromatography."
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📚 REFERENZEN (Gesammelte Bibliografie, Chicago Author-Date) 104 Einträge
MolGod_REFS_1

Alle wissenschaftlichen Quellen, die in den Akkordeons oben für CAS 61-73-4 zitiert werden. Format: Chicago Manual of Style, 17. Aufl., Autor-Datum-System.

🗄️ Wissenschaftliche Datenbanken

  1. PubChem. 2026. PubChem Compound Summary: CAS 61-73-4. Bethesda, MD: National Center for Biotechnology Information (NCBI), National Library of Medicine. (Accessed 2026-08-01.)
  2. NIST. 2026. NIST Chemistry WebBook: CAS 61-73-4. Gaithersburg, MD: National Institute of Standards and Technology. https://webbook.nist.gov/cgi/cbook.cgi?ID=61-73-4. (Accessed 2026-08-01.)
  3. AIST. 2026. Spectral Database for Organic Compounds (SDBS): CAS 61-73-4. Tsukuba, Japan: National Institute of Advanced Industrial Science and Technology. https://sdbs.db.aist.go.jp/. (Accessed 2026-08-01.)

📐 Standards / Richtlinien

  1. ICH. 2026. "ICH Harmonised Guideline: CAS 61-73-4." Geneva: International Council for Harmonisation. https://database.ich.org/sites/default/files/Q1A%28R2%29%20Guideline.pdf. (Accessed 2026-08-01.)
  2. National Fire Protection Association (NFPA). 2024. "NFPA 30: Flammable and Combustible Liquids Code." NFPA, Quincy, MA. https://www.nfpa.org/codes-and-standards/all-codes-and-standards/list-of-codes-and-standards/detail?code=30.
  3. Occupational Safety and Health Administration (OSHA). 2023. "29 CFR 1910.106 — Flammable Liquids." U.S. Department of Labor, Federal Register. https://www.osha.gov/laws-regs/regulations/standardnumber/1910/1910.106.
  4. European Chemicals Agency (ECHA). 2024. "Annex VI to Regulation (EC) No 1272/2008 (CLP) — Harmonised Classification and Labelling." ECHA, Helsinki / Official Journal of the European Union. https://echa.europa.eu/regulations/clp/clp-classification.
  5. European Committee for Standardization (CEN). 2016. "EN 374-1:2016 — Protective gloves against dangerous chemicals and micro-organisms — Part 1: Terminology and performance requirements for chemical risks." CEN, Brussels. https://standards.cencenelec.eu/dyn/www/f?p=205:110:::::FSP_PROJECT,FSP_ORG_ID:38536,6080&cs=1B0DAA8B85DF42E4A2C70E5D71F0BFA32.
  6. European Committee for Standardization (CEN). 2001. "EN 166:2001 — Personal eye-protection — Specifications." CEN, Brussels. https://standards.cencenelec.eu/dyn/www/f?p=CEN:110:0::::FSP_PROJECT:6541&cs=1F1A4E0A78C4DB6A28DBE2E8C29D89DCF.
  7. European Committee for Standardization (CEN). 2009. "EN 14605:2005+A1:2009 — Protective clothing against liquid chemicals — Performance requirements for clothing with liquid-tight (Type 3) or spray-tight (Type 4) connections." CEN, Brussels. https://standards.cencenelec.eu/dyn/www/f?p=CEN:110:0::::FSP_PROJECT:21581&cs=1A04A2D3C7CC58E9E6CB58D55F7EBFB7E.
  8. National Institute for Occupational Safety and Health (NIOSH). 2017. "Recommendations for Chemical Protective Clothing: A Companion to the NIOSH Pocket Guide." U.S. Department of Health & Human Services / CDC. https://www.cdc.gov/niosh/ncpc/default.html.
  9. Occupational Safety and Health Administration (OSHA). 2011. "Personal Protective Equipment — General requirements." U.S. Department of Labor — 29 CFR 1910.132. https://www.osha.gov/laws-regs/regulations/standardnumber/1910/1910.132.

📖 Bücher

  1. Hansen, Charles M. 2007. Hansen Solubility Parameters: A User's Handbook, 2nd ed.. Boca Raton, FL: CRC Press. https://www.routledge.com/Hansen-Solubility-Parameters-A-Users-Handbook/Hansen/p/book/9780849372483.
  2. Barton, Allan F. M. 1991. CRC Handbook of Solubility Parameters and Other Cohesion Parameters: 2nd ed.. Boca Raton, FL: CRC Press. https://www.routledge.com/CRC-Handbook-of-Solubility-Parameters-and-Other-Cohesion-Parameters/Barton/p/book/9780849301766.
  3. Connors, Kenneth A., Gordon L. Amidon, and Valentino J. Stella. 1986. Chemical Stability of Pharmaceuticals: A Handbook for Pharmacists, 2nd ed.. New York: Wiley. https://doi.org/10.1002/0471734683.
  4. Rumble, John R., ed. 2019. CRC Handbook of Chemistry and Physics: 100th Edition. Boca Raton, FL: CRC Press. https://hbcp.chemnetbase.com/.
  5. Urben, Peter G. 2017. Bretherick's Handbook of Reactive Chemical Hazards, 8th Edition. Academic Press / Elsevier, Oxford. https://www.sciencedirect.com/book/9780081010594.

📘 Monografien

  1. IARC. 2026. IARC Monographs on the Identification of Carcinogenic Hazards to Humans: CAS 61-73-4. Lyon, France: International Agency for Research on Cancer, World Health Organization. (Accessed 2026-08-01.)

📄 Wissenschaftliche Artikel (peer-reviewed)

  1. Stefanis, Emmanuel, and Costas Panayiotou. 2008. "Prediction of Hansen Solubility Parameters with a New Group-Contribution Method." International Journal of Thermophysics 29: 568-585. https://doi.org/10.1007/s10765-008-0415-z.
  2. Stoll, Vincent S., and John S. Blanchard. 1990. "Buffers: Principles and Practice: In Methods in Enzymology, vol. 182." San Diego: Academic Press. https://doi.org/10.1016/0076-6879(90)82008-P.

🌐 Websites

  1. ECHA. 2023. "Guidance on the Application of the CLP Criteria." European Chemicals Agency. https://echa.europa.eu/guidance-documents/guidance-on-clp.
  2. European Parliament. 2006. "Regulation (EC) No 1907/2006 (REACH)." Official Journal of the European Union L 396: 1–849.
  3. ECHA. 2023. "Candidate List of Substances of Very High Concern for Authorisation." European Chemicals Agency. https://echa.europa.eu/candidate-list-table.
  4. European Parliament. 2008. "Regulation (EC) No 1272/2008 on Classification, Labelling and Packaging of Substances and Mixtures (CLP)." Official Journal of the European Union L 353: 1–1355.
  5. ECHA. 2017. "Guidance on the Compilation of Safety Data Sheets." Version 3.1. European Chemicals Agency. ECHA-17-G-01-EN. https://echa.europa.eu/documents/10162/23047722/sds_en.pdf.
  6. ECHA. 2022. "Restrictions Under REACH — Annex XVII." European Chemicals Agency. https://echa.europa.eu/substances-restricted-under-reach.
  7. United Nations. 2021. Globally Harmonized System of Classification and Labelling of Chemicals (GHS). 9th revised ed. ST/SG/AC.10/30/Rev.9. New York and Geneva: United Nations. https://unece.org/ghs-rev9-2021.
  8. ECHA. 2020. "Understanding REACH." European Chemicals Agency. https://echa.europa.eu/regulations/reach/understanding-reach.
  9. Snyder, Lloyd R., John W. Dolan, and Joseph J. Kirkland. 2010. Introduction to Modern Liquid Chromatography. Wiley.
  10. Schoenmakers, Peter J.. 1986. Optimization of Chromatographic Selectivity: A Guide to Method Development. Elsevier.
  11. Snyder, L. R., and J. W. Dolan. 2007. High-Performance Gradient Elution: The Practical Application of the Linear-Solvent-Strength Model. Wiley.
  12. Nikitas, Pavlos, and Adrian Pappa-Louisi. 2009. "Retention models for isocratic and gradient elution in reversed-phase liquid chromatography." Journal of Chromatography A 1216: 1737-1755. https://doi.org/10.1016/j.chroma.2008.10.005.
  13. Carr, Peter W.. 2009. "The new physical chemistry of HPLC." Journal of Chromatography A 1216: 1764-1772. https://doi.org/10.1016/j.chroma.2008.11.094.
  14. Dong, Michael W.. 2019. HPLC and UHPLC for Practicing Scientists. Wiley. https://doi.org/10.1002/9781119313793.
  15. Wu, Naijun, and Anton M. Clausen. 2007. "Fundamental and practical aspects of ultrahigh pressure liquid chromatography for fast separations." Journal of Separation Science 30: 1167-1182. https://doi.org/10.1002/jssc.200700026.
  16. Dolan, John W.. 2013. "When to Modify Method Conditions." LCGC North America 31: 192-199. https://www.chromatographyonline.com/view/when-modify-method-conditions.
  17. Meyer, Veronika R.. 2010. Practical High-Performance Liquid Chromatography. Wiley.
  18. Engelhardt, Heinz. 2014. 100 Years of Chromatography. Wiley-VCH.
  19. Vivó-Truyols, Gabriel, and Hans-Gerd Janssen. 2010. "Probabilistic approach to peak deconvolution in chromatography." Analytical Chemistry 82: 8525-8531. https://doi.org/10.1021/ac101742z.
  20. Van Deemter, J. J., F. J. Zuiderweg, and A. Klinkenberg. 1956. "Longitudinal diffusion and resistance to mass transfer as causes of nonideality in chromatography." https://doi.org/10.1016/0009-2509(56)80003-1.
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  22. Poppe, Hans. 1997. "Some reflections on speed and efficiency of modern chromatographic methods." https://doi.org/10.1016/S0021-9673(97)00376-2.
  23. Wu, Naijun, and Anton M. Clausen. 2007. "Fundamental and practical aspects of ultrahigh pressure liquid chromatography for fast separations." https://doi.org/10.1002/jssc.200700026.
  24. Carr, Peter W.. 2009. "The new physical chemistry of HPLC." https://doi.org/10.1016/j.chroma.2008.11.094.
  25. Knox, John H.. 1977. "Practical aspects of LC theory." https://doi.org/10.1093/chromsci/15.9.352.
  26. Snyder, L. R., J. J. Kirkland, and J. L. Glajch. 1997. "Practical HPLC Method Development." Wiley.
  27. Vivó-Truyols, Gabriel, and Hans-Gerd Janssen. 2010. "Probabilistic approach to peak deconvolution in chromatography." https://doi.org/10.1021/ac101742z.
  28. Sadek, Paul C.. 2002. "The HPLC Solvent Guide." Wiley-Interscience.
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  31. Vailaya, Anant, and Csaba Horváth. 1998. "Retention thermodynamics in hydrophobic interaction chromatography." https://doi.org/10.1021/ie980212h.
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  33. Boysen, Reinhard I., and Milton T. W. Hearn. 2009. "Multi-modal HPLC of proteins." https://doi.org/10.1093/chromsci/47.8.645.
  34. USP General Chapter <621>. 2024. "Chromatography." United States Pharmacopeial Convention. https://www.usp.org/harmonization-standards/pdg/general-chapters/chromatography.
  35. Foley, Joe P., and John G. Dorsey. 1983. "Equations for calculation of chromatographic figures of merit for ideal and skewed peaks." https://doi.org/10.1021/ac00255a033.
  36. Snyder, Lloyd R., Joseph J. Kirkland, and John W. Dolan. 2010. "Introduction to Modern Liquid Chromatography." Wiley. https://doi.org/10.1002/9780470508183.
  37. Dolan, John W.. 2003. "Peak tailing and resolution." https://www.chromatographyonline.com/view/peak-tailing-and-resolution.
  38. Kromidas, Stavros. 2017. "HPLC Made to Measure: A Practical Handbook for Optimization." Wiley-VCH.
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