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Diethyl Carbonate

    • Product Name: Diethyl Carbonate
    • 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
    Productname Diethyl Carbonate
    Synonyms Carbonic acid diethyl ester; DEC; Ethyl carbonate; Diethyl ester of carbonic acid
    Casnumber 105-58-8
    Ecnumber 203-311-1
    Chemicalformula C5H10O3
    Molecularweight 118.13 g/mol
    Appearance Colorless liquid
    Odor Mild ester-like, ethereal odor
    Boilingpoint 126-128 °C
    Meltingpoint -43 °C
    Density 0.975 g/mL at 25 °C
    Refractiveindex 1.384 (n20/D)
    Flashpoint 25 °C (closed cup)
    Autoignitiontemperature 445 °C
    Vaporpressure 10 mmHg at 20 °C
    Vapordensity 4.1 (air = 1)
    Solubility Slightly soluble in water; miscible with ethanol, ether, acetone, and benzene
    Logp 1.21
    Purity ≥99% (typical product grade)

    As an accredited Diethyl Carbonate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Diethyl Carbonate packaging: 200 L UN-certified steel drums, securely sealed, clearly labeled flammable liquid, with appropriate hazard warnings.
    Container Loading (20′ FCL) Diethyl Carbonate loaded in 20′ FCL container using UN-approved drums, secured, labeled, and documented for flammable liquid transport.
    Shipping Diethyl carbonate is shipped as a Class 3 flammable liquid under UN 2366, Packing Group III, in approved UN-spec containers. Packages require flammable-liquid labels, proper shipping name, UN number, orientation arrows, and emergency response information. Keep away from oxidizers, acids, heat, sparks, and open flames during transport.
    Storage Store diethyl carbonate in a cool, dry, well-ventilated, fire-resistant area away from heat, sparks, flames, and direct sunlight. Keep containers tightly closed, properly labeled, and upright. Use grounded, explosion-proof equipment and avoid static discharge. Separate from strong oxidizers, acids, bases, and moisture. Provide spill containment and adequate ventilation. Avoid inhalation, skin contact, and eye contact. Store below 30°C.
    Shelf Life Stable under recommended storage; typical shelf life 24 months in a sealed container away from heat, moisture, and ignition sources.
    Application of Diethyl Carbonate

    In lithium-ion cell electrolyte compounding, diethyl carbonate is introduced as a linear carbonate co-solvent in LiPF6–carbonate systems. The solvent mixture is prepared in jacketed stainless-steel vessels under a dry nitrogen atmosphere, then dehydrated over molecular sieves before lithium hexafluorophosphate is added. Electrolyte patent disclosures and cell manufacturer datasheets place the diethyl carbonate mass fraction between 8% and 25% of the total carbonate solvent blend, with the LiPF6 concentration held at 1.0 mol/L to 1.2 mol/L. Within this range, the co-solvent lowers bulk electrolyte viscosity and extends low-temperature discharge by suppressing freezing of the linear carbonate fraction. When the diethyl carbonate fraction exceeds approximately 30%, the closed-cup flash point of the blend approaches the pure-material value of 25 °C, and additional viscosity reduction no longer compensates for the increased handling risk. Incoming battery-grade solvent specifications generally require purity above 99.9%, water below 20 ppm, and acidity below 50 ppm expressed as hydrogen fluoride. The applicable standards are UN 38.3, IEC 62660-1, and IEC 62660-2; stationary module qualification may also reference UL 9540A.

    Electrolyte filling is performed in dry rooms with dew points below −40 °C, where transfer piping is monitored for moisture ingress because LiPF6 hydrolysis accelerates when water is absorbed. Cylindrical 18650 and 21700 cells, prismatic cells, and pouch cells are filled by volumetric dosing equipment, then moved to formation charging at low current to build the solid electrolyte interphase. Degassing equipment removes gases generated during formation, followed by ageing and end-of-line leakage testing. Finished cell types include traction batteries for electric vehicles, stationary storage modules for grid and commercial backup, and high-power packs for cordless tools and portable medical equipment. The recurring production bottleneck is centred on transfer-line moisture retention after maintenance: flange faces and flexible hose assemblies that are not purged to the target dew point elevate water uptake and shift acidity beyond the acceptance window before the filling station.

    Why Does Diethyl Carbonate Replace Glycol Ethers in High-Solids Industrial Coatings?

    The shift from glycol ethers to diethyl carbonate in high-solids two-component polyurethane and epoxy systems occurs mainly at letdown and final viscosity adjustment. In a ready-to-spray formulation, diethyl carbonate is present at 3% to 12% by total weight; below 3%, viscosity reduction is insufficient for air-atomized application, while additions above 15% extend tack-free time and can promote sag on vertical substrates. After pigment dispersion, the solvent is blended in a low-shear mixer and the formulation is adjusted to 20 s to 40 s on a DIN 4 flow cup at 20 °C to 25 °C. Application uses air-atomized or HVLP spray equipment at approximately 23 °C booth temperature, followed by a 5-minute to 10-minute flash-off and forced drying at 60 °C to 80 °C for 20 minutes to 30 minutes. Volatile content is determined by ASTM D2369-20, non-volatile matter by ISO 3251:2019, and VOC ceiling compliance follows EU Directive 2004/42/EC. Finishing lines produce appliance topcoats, machinery enamels, and two-pack automotive refinish clears. A documented process limitation is solvent popping when wet-film build exceeds 80 μm; reducing initial oven temperature below 60 °C lowers the evaporation gradient and decreases the defect rate.

    Agrochemical Emulsifiable Concentrate Solvent and Tank-Mix Stability Limits

    Emulsifiable concentrate producers use diethyl carbonate as an oxygenated alternative to xylene or Aromatic 150 in selected pyrethroid and organophosphate formulations. A typical concentrate contains 2% to 25% active ingredient, 5% to 15% emulsifier package, and 10% to 40% diethyl carbonate, with the balance composed of co-solvents or diluents. Mixing is carried out in a jacketed stainless-steel vessel equipped with a rotor-stator high-shear mixer at 5,000 rpm to 12,000 rpm; after dissolution, the batch is filtered through 10 μm to 25 μm cartridge media. Emulsion stability is tested according to CIPAC MT 36.3 using CIPAC standard water D at 342 ppm total hardness as calcium carbonate, and the emulsifier system is adjusted to meet re-emulsification after 30 minutes. Finished products are foliar insecticides and herbicides for agricultural use. The primary chemical boundary is alkaline hydrolysis: tank-mix pH above 8 held for several hours degrades diethyl carbonate and reduces emulsion stability, particularly when spray solutions are left standing overnight.

    Because polycarbonate diol synthesis requires a phosgene-free carbonyl source, diethyl carbonate is charged to polycondensation reactors as the transesterification agent with aliphatic diols. A representative charge uses a diethyl carbonate-to-diol molar ratio of 1.05:1 to 1.20:1 and a tin-based catalyst loading of 50 ppm to 200 ppm on total charge. The reaction proceeds under staged vacuum from 100 mbar to 10 mbar at 130 °C to 180 °C; ethanol liberated during transesterification is stripped through a packed column and condensed, while carbon dioxide formation is limited by controlling oxygen ingress. Molecular weight is monitored by hydroxyl value, with prepolymer-grade products typically held at 50 mg KOH/g to 60 mg KOH/g, and acid value is maintained below 0.1 mg KOH/g. Test methods include ISO 4629-1:2016 for hydroxyl value, ISO 3219:1993 for viscosity, and ASTM D4274-21 for polyol hydroxyl number verification. The resulting polycarbonate diols are chain-extended into thermoplastic polyurethanes, cast polyurethane elastomers, and high-durability coatings and adhesives. A production boundary observed in higher-molecular-weight products is ethanol removal from viscous oligomer stages: if vacuum cannot be held below 10 mbar, residual alkoxy groups remain and reduce hydroxyl functionality for subsequent urethane extension. Published data for this specific configuration is limited outside equipment vendor technical bulletins.

    When Diethyl Carbonate Enters Closed-Loop Electronics Assembly Cleaning

    For high-reliability printed circuit assemblies, closed-loop cleaning systems use diethyl carbonate in bench-top and automated under-stencil cleaning equipment. Formulations contain 20% to 60% diethyl carbonate blended with a higher-boiling ester or alcohol so that the closed-cup flash point remains above the process temperature; pure solvent is permitted only in nitrogen-inerted manual wipe enclosures. The cleaning sequence operates at 35 °C to 45 °C in ultrasonic immersion baths at 40 kHz, followed by hot-air drying and a deionized-water rinse where flux chemistry allows. Cleanliness acceptance is evaluated by IPC-TM-650 2.3.25 for ionic contamination and IPC J-STD-001G for assembled electronic hardware. Finished component categories include power modules, sensor assemblies, and hermetically sealed connectors. The main operational constraint is the pure-solvent flash point of approximately 25 °C, which prohibits open heated baths; residual alkaline saponifier on board surfaces must also be rinsed completely because alkaline residues accelerate hydrolytic degradation of the solvent to ethanol and carbon dioxide.

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    Certification & Compliance
    More Introduction

    Diethyl carbonate (DEC), CAS 105-58-8, molecular formula C5H10O3, molar mass 118.13 g/mol, is a symmetrical carbonate ester used as an electrolyte co-solvent, extraction medium, ethylating reagent, and high-boiling polar aprotic solvent. Commercial supply is differentiated by purity class: technical-grade, battery-grade, and pharmaceutical intermediate-grade material. Product codes are supplier-specific and may include suffixes for battery or pharmaceutical grade; no single international model-numbering system applies. The liquid is clear and colourless, with density 0.975 g/cm³ at 20 °C, boiling point 126–128 °C at 101.3 kPa, flash point 25 °C closed cup, melting point -43 °C, viscosity 0.75 mPa·s at 25 °C, refractive index nD20 1.3843, dielectric constant 2.82 at 25 °C, vapour pressure approximately 1.3 kPa at 20 °C, and autoignition temperature 445 °C. Solubility in water is approximately 1.9 g/100 mL at 20 °C, and water solubility in DEC is similarly limited, creating phase-split behaviour in aqueous extraction.

    Industrial production routes include phosgenation of ethanol, oxidative carbonylation of ethanol, and transesterification of dimethyl carbonate. Non-phosgene routes reduce chlorinated impurities but may retain trace methanol or ethyl methyl carbonate; the impurity profile therefore depends on the production route and is a key purchasing criterion. Technical-grade material is used for coatings and chemical synthesis; battery-grade material is pre-dried and filtered to remove ionic residues; pharmaceutical intermediate-grade material is supplied with residual solvent statements and lower carbonyl impurity limits. Because no universal model-numbering system exists, buyers specify the supplier product code, production route, and impurity limits on the certificate of analysis.

    In lithium-ion electrolyte manufacturing, DEC is blended with ethylene carbonate (EC) as a low-viscosity cosolvent. The binary formulation 1 M LiPF6 in EC:DEC 1:1 by volume is a common baseline for graphite/NMC cells. DEC lowers electrolyte viscosity compared with EC-only systems and improves low-temperature discharge behaviour; however, its low dielectric constant of 2.82 limits salt dissociation when used without EC or another high-permittivity component such as propylene carbonate. Ethylene carbonate has a dielectric constant near 89.6 at 40 °C, so the EC:DEC mixture balances salt dissociation and viscosity. The low melting point of DEC, -43 °C, helps maintain ionic mobility at temperatures below -20 °C, although EC-rich formulations may still freeze. In graphite cells, DEC alone would intercalate into graphite and exfoliate the anode; the EC component is required to form a stable solid electrolyte interphase. The solvent must be pre-dried over 4A molecular sieves to a moisture content below 20 mg/kg before electrolyte compounding, because residual water reacts with LiPF6 to form HF and PF5, accelerating cathode transition-metal dissolution and anode solid-electrolyte interphase degradation.

    What Controls Moisture Tolerance During Electrolyte Blending?

    Final moisture in DEC-containing electrolyte is verified by Karl Fischer titration per ASTM E203. Pilot-scale blending vessels constructed from 316L stainless steel are used; carbon steel is avoided because trace iron can catalyse oxidative decomposition of the carbonate solvent. DEC is added after EC has been melted and mixed, avoiding local viscosity spikes. Residual ethanol in technical-grade DEC, if above 1000 mg/kg, can transesterify with EC and alter the LiPF6 solvation shell; battery-grade specifications therefore require ethanol below 100 mg/kg and total glycols below 50 mg/kg, though published data for specific supplier configurations is limited. In high-humidity production environments above 60% RH, dry nitrogen blanketing and closed-loop transfer are mandated because the solvent absorbs moisture from air within minutes of open transfer. Inline near-infrared moisture analysers are used in some blending plants to reject lots exceeding 20 mg/kg before electrolyte batching.

    For coil coatings and industrial cleaning, DEC has been evaluated as a replacement for methyl ethyl ketone and ethyl acetate. Published solubility data for specific resin classes in DEC is limited; formulators commonly use cloud-point titration with a defined resin solution rather than relying on Hansen solubility parameter predictions alone. Equipment trials on high-shear dispersers with Cowles blades indicate that DEC can reduce viscosity in nitrocellulose and acrylic lacquers, but the evaporation rate is lower than ethyl acetate and methyl ethyl ketone, which extends open time and may require forced-air ovens at 60–80 °C for solvent release. The flash point of 25 °C places DEC in flammable liquid category 3 under CLP, so coating lines must use explosion-proof mixing and ventilation designed for flammable solvents. Immersion cleaning of precision metal parts with DEC requires the same explosion-proof equipment and spill containment expected under ATEX directive 2014/34/EU; vapour degreasing is not a primary application because the boiling point and evaporation rate are less favourable than chlorinated solvents.

    When Diethyl Carbonate Substitutes Dimethyl Carbonate in Distillation-Limited Solvent Recovery

    Diethyl carbonate differs from dimethyl carbonate (DMC) in boiling point, flash point, and hydrolysis behaviour. DMC boils at 90 °C, whereas DEC boils at 126–128 °C; this higher boiling point reduces vapour emissions during ambient processing but increases reboiler duty during solvent recovery. The flash point of DEC is 25 °C closed cup, compared with 17 °C for DMC, which reduces ignition probability but does not remove flammable-liquid handling requirements. Published hydrolysis rate constants under neutral aqueous conditions show DEC is more stable than DMC; this property is relevant in waterborne coating formulations where premature hydrolysis of DMC can generate methanol and carbon dioxide. Compared with ethyl methyl carbonate (EMC), DEC has a higher boiling point and a symmetrical structure, giving lower vapour pressure at equivalent temperature and a different solvent-shell geometry in lithium-ion electrolytes. Unlike propylene carbonate, DEC does not co-intercalate into graphite; propylene carbonate-based electrolytes require film-forming additives such as vinylene carbonate or fluoroethylene carbonate, while DEC-containing electrolytes still use vinylene carbonate at 1–3 wt% for SEI stabilisation.

    Representative physical property comparisons for carbonate solvents used in similar applications are presented in Table 1.

    PropertyDiethyl carbonateDimethyl carbonateEthyl methyl carbonatePropylene carbonate
    Boiling point, °C126–12890107242
    Flash point, closed cup, °C251723132
    Viscosity at 25°C, mPa·s0.750.590.652.5
    Dielectric constant at 25°C2.823.123.064.9

    In pharmaceutical intermediate synthesis, DEC is used as an ethylating and carbonylating reagent for active pharmaceutical ingredients. The reaction pathway can replace diethyl sulfate or ethyl iodide in selected alkylations, reducing regulated genotoxic impurity carryover because the by-product is ethanol and carbon dioxide rather than sulfate or iodide salts. Batch reactors with glass-lined steel are preferred; DEC is stable under neutral conditions but hydrolyses in strong aqueous acid or base, so pH is maintained above 2 and below 10 during prolonged heating. Residual water is controlled below 0.05 wt% for anhydrous reactions because water consumes the reagent and increases side-product formation. Published data for specific API syntheses is limited to patent examples and supplier technical bulletins; process-scale yield data must be generated on a case-by-case basis. Reactor off-gas is routed through chilled condensers to recover unreacted DEC because the boiling point of 126–128 °C permits atmospheric reflux without excessive vaporisation.

    Non-phosgene polycarbonate routes have examined DEC as a carbonyl source for diphenyl carbonate. The transesterification of DEC with phenol is equilibrium-limited and produces ethanol; reactive distillation with a titanium alkoxide or organotin catalyst is used to shift the equilibrium. Patent literature describes distillation columns operated at reduced pressure below 50 kPa to remove ethanol and drive conversion, but published data for specific column configurations is limited. The corrosivity of the reaction mass is low, allowing 316L stainless steel or glass-lined equipment, but trace water ingress above 0.05 wt% reduces catalyst activity and increases by-product formation.

    Battery-grade DEC is typically purified by fractional distillation followed by molecular sieve drying. Distillation columns operate with bottom temperatures not exceeding 130 °C to avoid thermal decomposition; reflux ratios between 2:1 and 5:1 are used depending on feed ethanol and ethyl methyl carbonate content. Molecular sieve drying with 4A or 3A media reduces water to 20 mg/kg but can introduce sieve dust; downstream filtration with 0.2 µm cartridges is used before filling. The filtration step also reduces particulate matter, which is monitored by optical particle counters in battery-grade release testing.

    Specification and Compliance Verification Methods

    Supplier certificates for battery-grade DEC typically report purity by gas chromatography, water by Karl Fischer titration per ASTM E203, acidity as CO2, density by ASTM D4052, and colour by ASTM D1209. Typical specification values are shown in Table 2; exact limits vary by producer and grade. Gas chromatography with flame ionisation detection is used for purity and ethanol quantification, with a limit of quantification for ethanol near 50 mg/kg. Inductively coupled plasma mass spectrometry is used for metal ions; battery-grade material often requires sodium, potassium, calcium, iron, and zinc each below 1 mg/kg.

    ParameterTest methodTypical specification
    Purity, wt%Gas chromatography, area normalization≥99.5
    Water, mg/kgASTM E203≤20
    Acidity as CO2, wt%Acid-base titration≤0.005
    Density at 20°C, g/cm³ASTM D40520.973–0.977
    Colour, Pt-CoASTM D1209≤10
    Ethanol, mg/kgGas chromatography≤100

    Diethyl carbonate is listed on the US TSCA inventory and under REACH regulation (EC) 1907/2006. Classification under CLP (EC) 1272/2008 includes flammable liquid category 3, H226; eye irritation category 2, H319 may also apply and should be confirmed with the supplier SDS. For closed storage, the dominant degradation pathway is moisture ingress followed by hydrolysis to ethanol and carbon dioxide. Containers are maintained under nitrogen at 10–30 °C; bulk tanks are equipped with desiccant breathers. Avoid exposure to strong bases, strong acids, and amine-based additives, because base-catalysed hydrolysis can form ethanol and CO2, while primary amines can react to form carbamates and alter the product profile. In electrolyte operations, DEC must not be blended with LiPF6 before moisture removal; residual water above 20 mg/kg generates HF and accelerates decomposition of the fluorophosphate salt. Partially emptied drums are blanketed with dry nitrogen and resealed to prevent ambient moisture uptake.

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