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2-Ethylanthraquinone(2-EAQ) Pharma Grade API for Tablet / Capsule / Granule / Injection, Oral & Injectable

    • Product Name: 2-Ethylanthraquinone(2-EAQ) Pharma Grade API for Tablet / Capsule / Granule / Injection, Oral & Injectable
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code 788852
    Productname 2-Ethylanthraquinone (2-EAQ)
    Casnumber 84-51-5
    Synonyms 2-Ethyl-9,10-anthracenedione; 2-Ethyl-9,10-anthraquinone; beta-Ethylanthraquinone
    Iupacname 2-Ethylanthracene-9,10-dione
    Molecularformula C16H12O2
    Molecularweight 236.27 g/mol
    Grade Pharma Grade / API Grade
    Appearance Light yellow to yellow crystalline powder or flakes
    Purity ≥98.0% (typically ≥99.0% for pharma grade)
    Dosageforms Tablet, Capsule, Granule, Injection
    Routeofadministration Oral, Injectable
    Solubility Insoluble in water; soluble in ethanol, benzene, and other organic solvents
    Meltingpoint 108-111 °C
    Boilingpoint 180-190 °C at 1 mmHg
    Storageconditions Store in a cool, dry, well-ventilated area away from light, heat, and oxidizing agents
    Packaging 25 kg fiber drum or as per customer requirement
    Hscode 29146990
    Einecs 201-535-4
    Usecategory Pharmaceutical intermediate / API
    Safetyhandling Use personal protective equipment; avoid inhalation, ingestion, and contact with skin and eyes

    As an accredited 2-Ethylanthraquinone(2-EAQ) Pharma Grade API for Tablet / Capsule / Granule / Injection, Oral & Injectable factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

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    Application of 2-Ethylanthraquinone(2-EAQ) Pharma Grade API for Tablet / Capsule / Granule / Injection, Oral & Injectable
    During the hydrogenation leg of the 2-ethylanthraquinone auto-oxidation cycle, a working solution containing 80–120 g/L 2-EAQ in a diisobutylcarbinol–xylene mixture at 1:3 v/v is contacted with a palladium-on-alumina catalyst (0.8–2.0 wt% Pd) in a fixed-bed reactor at 35–45 °C and hydrogen partial pressure 0.15–0.25 MPa. Residual 2-EAQ concentration after hydrogenation is maintained below 2% of the starting value; the resulting 2-ethylanthrahydroquinone is then transferred to a bubble column and sparged with compressed air at 40–60 L/min per 100 L working solution at 30–40 °C to regenerate the quinone and liberate hydrogen peroxide. The aqueous hydrogen peroxide is separated from the working solution using countercurrent extraction with deionized water, polished through anion-exchange columns to remove anionic degradation products, and concentrated to 35% w/w before evaporation into closed isolator systems. For injectable manufacturing facilities, the vapor generator delivers hydrogen peroxide at 250–400 ppm with a contact time of 30–60 min; cycle efficacy is validated against ISO 14644-7:2015 clause 5.2.3, EU GMP Annex 1 (2022) section 4.36, and FDA 21 CFR 211.42(b). Batch-to-batch variance in working-solution 2-EAQ concentration is controlled to ±3% through periodic fresh 2-EAQ addition and solvent recovery; deviation beyond this range reduces hydrogen peroxide yield and can abort isolator decontamination. The terminal product is a decontaminated aseptic filling environment for sterile injectable pharmaceuticals, including vials, pre-filled syringes, and cartridge systems.

    What Controls the Oxidation Route from 2-Ethylanthraquinone to Anthraquinone-2-Carboxylic Acid for Capsule-Grade Diacerein?

    The acid-mediated side-chain oxidation of 2-EAQ to anthraquinone-2-carboxylic acid is the key step in producing the anthraquinone core of the oral osteoarthritis API diacerein. In a glass-lined reactor, 1.0 mol of 2-EAQ pharma grade is charged against 3.0–3.5 mol of potassium permanganate in 15–20% w/w sulfuric acid at 60–70 °C; the reaction is exothermic, so jacket cooling is operated to keep the internal temperature below 75 °C. After the deep-purple reaction mixture turns to a brown manganese dioxide slurry, the batch is quenched with sodium bisulfite solution and filtered through a plate-and-frame filter press. Crude anthraquinone-2-carboxylic acid is washed with hot water and recrystallized from ethanol–water 7:3 v/v; residual manganese is then chelated with EDTA at 0.5–1.0% w/w and removed by filtration. The purified intermediate is acetylated with 2.2 equivalents of acetic anhydride in acetic acid at 110–120 °C to give diacerein, followed by recrystallization from acetone–water to control residual acetic acid below 500 ppm. Compliance is maintained under ICH Q11 section 5.2 for starting-material justification, ICH Q3C for residual solvents, and the relevant Ph.Eur. monograph for diacerein; published data for this exact 2-EAQ-to-diacerein route is limited, so pilot-scale yield confirmation is required before registration batches. The terminal product is 50 mg diacerein capsules for oral osteoarthritis therapy.As a C2-alkylated anthraquinone reference substance, 2-EAQ pharma grade is dissolved at 0.1 mg/mL in mobile phase for chromatographic system suitability and impurity spike studies. The HPLC method employs a C18 column 150 × 4.6 mm, 5 µm, operated at 1.0 mL/min with acetonitrile–0.1% phosphoric acid 70:30 v/v; detection is at 254 nm with a 10 µL injection volume. System suitability acceptance requires resolution between 2-EAQ and the nearest anthraquinone API peak of not less than 1.5, tailing factor 0.8–1.2, and column plate count ≥2000 per meter, as described in USP <621> and Ph.Eur. 2.2.46. Method validation follows ICH Q2(R1) and USP <1225>; spiked samples are prepared at 0.05–1.0% w/w relative to the main API peak area to bracket the quantitation limit and specification threshold. The downstream procedure is integrated into release and stability testing of anthraquinone-based oral solid dosage forms; each batch is tested against reference chromatograms generated from 2-EAQ pharma grade. Terminal output is a chromatographically certified batch of tablets or capsules containing an anthraquinone active pharmaceutical ingredient, with impurity levels reported against the 2-EAQ standard.

    Residual 2-EAQ Recovery from Ribbon Blenders and Compression Tooling

    After discharge from a high-shear granulator and compression of an anthraquinone-containing tablet batch, swab recovery of residual 2-EAQ is performed on product-contact surfaces to satisfy cross-contamination limits. The allowable residue limit is calculated from a 10 ppm carryover criterion, with swab spike levels of 0.01–0.05 mg/dm²; recoveries below 70% require revalidation. Sampling points include the inner faces of a 600 L ribbon blender, the turret and punch faces of a rotary tablet press, and the discharge chute of a high-shear granulator. Swabs are extracted in methanol and analyzed by HPLC with UV detection at 254 nm; detection limit is 0.005 mg/m². The method is conducted under FDA 21 CFR 211.67(a), ICH Q7 section 15.1, and USP <621>; recovery factors are established on stainless steel, polytetrafluoroethylene, and Electropolished 316L surfaces. When residual 2-EAQ exceeds the limit, the equipment undergoes a heated 1% w/w sodium hydroxide wash followed by a deionized water rinse and dried with HEPA-filtered air. Terminal product is cross-contamination-free tablets and granules from equipment released after validated cleaning.In direct compression of poorly water-soluble anthraquinone APIs, 2-EAQ pharma grade is jet-milled to a particle size D90 below 10 µm and blended with lactose monohydrate 62–85% w/w, crospovidone 2–5% w/w, povidone K30 2–4% w/w, and magnesium stearate 0.5–1.5% w/w; the 2-EAQ content is 5–30% w/w depending on target unit dose. Blend uniformity is tested per USP <1174>, tablet hardness is maintained at 60–100 N, friability is below 1.0% per USP <616>, and dissolution is run under USP <711> Apparatus II at 50 rpm in 900 mL of pH 6.8 phosphate buffer. At relative humidity above 60%, the jet-milled 2-EAQ must be pre-dried at 40–50 °C for 4–6 h before blending to prevent particle agglomeration and flow failure. Granulation trials for this anthraquinone class use a high-shear mixer with purified water 10–15% w/w and drying at 40–50 °C to residual moisture 1–2% w/w; dried granules are passed through an 0.8 mm screen before final compression. Published data specific to 2-EAQ direct compression are limited, so factorial design of experiments is required before process locking. Terminal product is immediate-release anthraquinone tablets.

    When Lyophilized Anthraquinone APIs Require Impurity-Limited Stability Tracking

    When a lyophilized anthraquinone product is placed on a stability program under ICH Q1A(R2), 2-EAQ pharma grade is spiked into the formulation at 0.05–0.5% w/w relative to the API to serve as a process-related degradation marker. The injectable formulation consists of anthraquinone API 10 mg/vial, mannitol 50 mg/vial, phosphate buffer 10 mM at pH 7.0, and water for injection to a final fill volume of 5 mL. The bulk solution is sterile-filtered through a 0.22 µm PVDF membrane and filled into depyrogenated Type I borosilicate vials under Grade A laminar airflow; lyophilization uses a primary drying step at -40 °C shelf temperature for 18–24 h and secondary drying at 25 °C for 4–6 h. Stability testing follows USP <1> for injections, ICH Q3B(R2) for impurities, and EU GMP Annex 1 for aseptic processing; each pulled time point is analyzed by UPLC with 2-EAQ as the impurity reference. Because anthraquinone cores are susceptible to nucleophilic attack, primary amine buffers such as tromethamine are avoided; phosphate buffer is selected to minimize adduct formation. Terminal product is a lyophilized powder for injection with batch release based on impurity levels of 2-EAQ and related anthraquinone markers.
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    Certification & Compliance
    More Introduction

    2-Ethylanthraquinone (2-EAQ, CAS 84-51-5) is supplied as a pharmaceutical-grade anthraquinone derivative for tablet, capsule, granule, and injection processing. The molecular formula is C16H12O2 with a relative molecular mass of 236.27 g/mol. The crystalline powder is pale yellow and has a typical melting point of 108–111 °C. Pharmaceutical-grade release specifications are not harmonized in a single pharmacopoeial monograph; therefore certificates of analysis vary by supplier and commonly include identification by infrared absorption, assay on the anhydrous basis of 98.0–101.0%, loss on drying not more than 0.5%, residue on ignition not more than 0.1%, residual solvent limits according to Ph. Eur. 5.4 or USP <467>, and elemental impurities assessed under ICH Q3D. Aqueous solubility is in the practically insoluble range; injectable presentations therefore require non-aqueous vehicles, cosolvent systems, or particle-size-reduced dispersions prepared under aseptic conditions.

    Specification attributeRepresentative pharmaceutical-grade acceptance rangeMethod or standard reference
    AppearancePale yellow crystalline powderVisual examination
    IdentificationInfrared spectrum conforms to referencePh. Eur. 2.2.24, USP <197>
    Assay on anhydrous basis98.0–101.0%HPLC-UV, external standard
    Melting point108–111 °CPh. Eur. 2.2.14
    Loss on drying0.5%Ph. Eur. 2.2.32
    Residue on ignition0.1%Ph. Eur. 2.4.14
    Particle size D9020 µm micronized; 75 µm standardLaser diffraction, ISO 13320
    Elemental impuritiesLimits according to ICH Q3D Option 1ICP-MS or ICP-OES
    Residual solventsClass-specific limits; total solvent disclosure requiredPh. Eur. 5.4, USP <467>

    How Does the 2-Ethyl Substituent Shift Compression Behaviour Compared with Anthraquinone and 2-Methylanthraquinone?

    The 2-ethyl substituent lowers the melting point substantially relative to anthraquinone (CAS 84-65-1, melting point 284–286 °C) and 2-methylanthraquinone (CAS 84-54-8, melting point 172–176 °C). The disruption of planar crystal packing reduces lattice energy and produces a softer crystalline solid with lower mechanical strength. This property is advantageous for dry milling and micronization but increases the tendency for sticking on rotary tablet presses at elevated compression forces. Tablets compressed from unmicronized 2-EAQ may exhibit capping or lamination when compaction pressure is increased because the platy particle habit and low melting point allow local plastic flow without sufficient particle interlocking. In capsule filling, flow function coefficient values for unmicronized material are generally low; forced-feed or vibration-assisted dosing is used when direct encapsulation is required.

    Property2-EthylanthraquinoneAnthraquinone2-Methylanthraquinone
    CAS number84-51-584-65-184-54-8
    Relative molecular mass236.27208.22222.24
    Typical melting range108–111 °C284–286 °C172–176 °C
    Aqueous solubilityPractically insolublePractically insolublePractically insoluble
    Direct compression of unmicronized 2-EAQ on rotary tablet presses with low-shear blending is generally limited by poor flow and segregation. The material is therefore more commonly processed by wet granulation in high-shear mixers using pregelatinized starch or povidone K30 as binder systems. Drying of 2-EAQ granules in fluid-bed equipment should avoid inlet air temperatures above 60 °C unless the melting point and particle-size stability of the specific lot are confirmed. At relative humidity above 60%, pre-drying and humidity-controlled dispensing are advisable for oral solid-dose manufacture because surface moisture can increase agglomeration and reduce die filling uniformity. Published production-scale compression data for 2-EAQ as a directly active pharmaceutical ingredient are limited; tableting parameters are therefore established on a lot-specific basis using compaction simulation or small-scale rotary press trials before scale-up.

    If Terminal Sterilisation Is Required for Injectable Presentations, What Process Boundaries Emerge?

    The crystalline melting range of 108–111 °C excludes terminal steam sterilisation at 121 °C for aqueous suspensions of crystalline 2-EAQ. Heating above the melting point would produce partial melting, phase separation, and irreversible agglomeration upon cooling. Sterile filtration of a non-aqueous solution or cosolvent system through a 0.22 µm membrane filter is therefore the preferred route when the vehicle and filter compatibility are confirmed. Aseptic processing of micronized powder followed by aseptic filling into pre-sterilized vials is an alternative for suspension products. Endotoxin limits must be derived from the maximum dose per kilogram and route of administration under USP <85> and Ph. Eur. 5.1.10; no fixed universal limit applies. Particulate matter testing follows USP <788> or USP <789> depending on container volume. Non-aqueous vehicles such as benzyl alcohol, dimethylacetamide, or medium-chain triglyceride-based systems can be used only after compatibility screening for oxidation and crystallisation of 2-EAQ. Published stability data for injectable 2-EAQ formulations are limited; vehicle-specific forced degradation studies under ICH Q1A(R2) photolytic, thermal, and oxidative stress conditions are required to define shelf life.

    For oral solids, the low melting point and platy particle morphology create a processing window that is narrower than that of many high-melting crystalline APIs. Granule D50 should be controlled within a defined range, typically 75–150 µm, to balance flow and compressibility. Screen sizes below 250 µm are preferred for capsule filling to prevent bridging in dosator nozzles. Blending with strong reducing agents, primary amines, or alkali metal hydroxides is avoided because the quinone moiety can undergo redox and Michael-type addition reactions during hot-melt granulation or prolonged high-shear mixing. These incompatibilities are more pronounced for 2-EAQ than for anthraquinone-derived dyes or pigments because the ethyl group increases solubility in molten binders and plasticizers.

    HPLC assay and related-substance methods for 2-EAQ typically use reversed-phase C18 columns with ultraviolet detection at 254 nm. Potential related substances include anthraquinone, 2-methylanthraquinone, and oxidation or reduction products of the ethylanthraquinone ring system. Reporting, identification, and qualification thresholds follow ICH Q3A; for a maximum daily dose not exceeding 2 g/day, the reporting threshold is 0.05%, the identification threshold is 0.10%, and the qualification threshold is 0.15%. Residual solvent control is critical because technical-grade 2-EAQ used in hydrogen peroxide manufacturing may contain aromatic hydrocarbons, aliphatic alcohols, or catalyst metals that are unacceptable in pharmaceutical applications. The pharma-grade material must therefore be produced under controlled crystallisation and purification conditions with full batch-to-batch traceability.

    Stability Limits in Non-Aqueous Vehicles and Aluminium-Alu Cold-Form Blister Packaging

    Anthraquinone derivatives are susceptible to photochemical reduction in the presence of hydrogen-donating solvents. 2-EAQ for oral solid-dose products is therefore packaged in aluminium/aluminium cold-form blisters or high-density polyethylene containers with desiccant when light and moisture protection are required. Clear polyvinyl chloride blisters are not recommended without a light-protective overwrap unless photostability data support their use. For injectable presentations, amber glass vials with chlorobutyl rubber stoppers and nitrogen headspace are used to limit oxygen ingress. Storage conditions should be justified under ICH Q1A(R2); long-term testing at 25 °C/60% RH for oral solids and accelerated testing at 40 °C/75% RH are typical reference conditions for regulatory filings.

    Technical-grade 2-EAQ, produced as an intermediate for hydrogen peroxide by the anthraquinone process, differs from the pharmaceutical-grade material in control of catalyst residues, insoluble particulates, elemental impurities, and residual solvents. The pharma-grade API for oral and injectable use must also exclude endotoxin contamination for parenteral lots and provide a defined particle-size distribution suitable for the target dosage form. When a supplier certificate of analysis simply reports a melting point and assay without particle-size, elemental impurity, residual solvent, and endotoxin data, the material should not be considered interchangeable with a controlled pharmaceutical-grade 2-EAQ. Published data for the specific application of 2-EAQ as a directly active pharmaceutical ingredient in injectable drug products are limited; formulation and process boundaries therefore require product-specific development and cannot be inferred from industrial chemical handling data alone.

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