| Код ТН ВЭД | |
| Название продукта | Этил метил карбонат |
| синонимы | ЭМК; Этил-метил-эстер углеродной кислоты; метил этил карбонат |
| Номер регистрации Cas | 623-53-0 |
| Номер ЕС | 210-791-3 |
| Молекулярная формула | C4H8O3 |
| молекулярный вес | 104,10 г/моль |
| Химическая семья | Органический карбонатный эстер |
| внешность | Бесцветная жидкость |
| запах | Эфирный, эстероподобный |
| плотность | 1,00 г/см3 при 25 °C |
| точка кипения | 107 °С |
| точка плавления | -55 °С |
| точка вспышки | 23 °С |
| показатель преломления | 1,378 (n20 /D) |
| растворимость | Слегка растворимый в воде; смешивается с обычными органическими растворителями |
| давление паров | 29 mmHg при 25 °C |
| ЛогП | 0,73 |
Будучи аккредитованным заводом по производству этилметилкарбоната, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.
| Упаковка | Этил-метил-карбонат упакован в одобренные ООН 200-литровые стальные барабаны, надежно запечатанные и маркированные для транспортировки легковоспламеняющихся жидкостей. |
| Погрузка контейнера (20-футовый контейнер) | Безопасная загрузка контейнеров 20' FCL этилметилкарбоната с соответствующей обработкой опасных грузов, маркировкой, вентиляцией, сегрегацией и безопасным хранением. |
| Доставка | Этил-метил-карбонат доставляется в качестве воспламеняемой жидкости класса 3, № ООН 3272, правильное транспортное название Esters, n.o.s. (этил-метил-карбонат), обычно группа упаковки II. Используйте упаковку, классифицированную ООН, этикетки с легковоспламеняющимися жидкостями, транспортные бумаги и информацию о чрезвычайных ситуациях. Следуйте правилам ДОПОГ/ИМДГ/ИАТА и ознакомьтесь с действующими СДС для точной классификации. |
| Хранение | Храните этил-метил-карбонат в прохладном, сухом, хорошо вентилируемом, огнестойком месте, подальше от тепла, искр, открытого пламени и прямого солнечного света. Держите контейнеры плотно закрытыми, вертикальными, четко помеченными и заземленными /приклеенными во время передачи. Отделяется от окисляющих агентов, сильных кислот и оснований. Используйте взрывоопасное оборудование и вторичное сдерживание. Соблюдайте местные правила о воспламеняемых жидкостях и поддерживайте соответствующие меры пожа |
| Срок годности | стабильный в нормальных условиях; типичный срок хранения составляет 24 месяца, когда хранится запечатанным, прохладным, сухим и подальше от тепла /зажигания. |
Конкурентоспособные цены на этил метил карбонат, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.
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Ethyl methyl carbonate (EMC; CAS 623-53-0; C4H8O3; relative molecular mass 104.10 g/mol) is an asymmetric linear alkyl carbonate supplied as a clear, low-viscosity liquid with a boiling range of 107–109 °C at 101.3 kPa, a density near 1.01 g/cm³ at 20 °C, and a closed-cup flash point in the range 23–25 °C. The molecule combines a methyl carbonate terminus and an ethyl carbonate terminus, which reduces packing order in the liquid state and yields a melting point near -55 °C. Industrial production is based on transesterification of dimethyl carbonate with ethanol in the presence of an alkali catalyst; the crude ester is then separated by distillation, washed to remove catalyst residues, and dried over molecular sieves to battery-grade moisture specifications.
Commercial lithium-battery-grade EMC is not controlled by a single universal standard; supplier certificates of analysis define the release profile. Typical release testing includes gas-chromatographic purity, Karl Fischer water content, potentiometric acidity, density, refractive index, and trace-metal analysis. The product designation often encodes the application grade: battery-grade EMC with minimum GC purity 99.99% by GC-FID, water ≤ 20 mg/kg, and total acidity ≤ 50 mg/kg as HF. These limits are operational constraints because EMC is formulated with lithium hexafluorophosphate, which is hydrolysis-sensitive.
Physical property verification follows ASTM D4052-22 for density, ASTM D445 or ASTM D7042 for viscosity, ASTM E203 for water, ASTM D664 for acid number, and ASTM D1218 for refractive index. Trace-metal testing is typically performed by ICP-MS after evaporation, with reporting limits at or below 0.05 mg/kg for sodium, iron, chromium, and nickel. For trace anions, ion chromatography with suppressed conductivity is used; for trace metals, ICP-MS with collision cell technology can provide detection limits below 0.01 mg/kg. Gas chromatography with flame ionization detection measures organic impurities down to 0.001% area. The analytical effort is not cosmetic; trace metal contamination at the part-per-million level can affect electrochemical stability in long-life cells.
Process control in continuous EMC production uses in-line gas chromatography or near-infrared spectroscopy to monitor residual methanol, ethanol, dimethyl carbonate, and diethyl carbonate. The transesterification equilibrium is shifted by methanol removal; a light-ends column removes methanol, and a heavies column separates catalyst residues and carbonate oligomers. A molecular sieve polishing bed containing 3A or 4A zeolite reduces water below the release limit. The bed is regenerated at 250–300 °C under dry nitrogen and switched when outlet moisture rises above 10 mg/kg. Differential pressure across the bed is monitored as a secondary indicator of fines accumulation or bed attrition. Batch-to-batch variance is influenced by feedstock purity, catalyst carryover, and dryer bed condition; rising residual alcohol content often precedes a moisture increase when the final drying step is losing capacity.
Water and acidity in EMC direct the hydrolysis pathway of LiPF6 during electrolyte preparation. In the presence of free water, LiPF6 releases hydrogen fluoride and phosphorus oxyfluorides; hydrogen fluoride attacks aluminium current collectors and can degrade the solid electrolyte interphase. Battery-grade EMC therefore carries a water specification commonly at or below 20 mg/kg by ASTM E203, while acid content is limited to 50 mg/kg as HF by ASTM D664. The same chemical logic applies to residual methanol and ethanol, because hydroxyl-containing impurities undergo side reactions with LiPF6.
| Parameter | Typical limit or range | Test method |
|---|---|---|
| Appearance | Clear, colourless liquid | Visual |
| GC purity | ≥ 99.99% area | GC-FID with internal standard |
| Water | ≤ 20 mg/kg | ASTM E203 |
| Total acidity as HF | ≤ 50 mg/kg | ASTM D664 |
| Density at 20 °C | 1.00–1.02 g/cm³ | ASTM D4052 |
| Refractive index n20/D | 1.377–1.379 | ASTM D1218 |
| Residual methanol | ≤ 20 mg/kg | GC-FID |
| Residual ethanol | ≤ 20 mg/kg | GC-FID |
| Sodium, iron, chromium, nickel | ≤ 0.05 mg/kg each | ICP-MS |
The hydrolysis sensitivity of LiPF6 means that moisture control is not only a storage issue but a formulation issue. In a poorly sealed mixing vessel, hydrolysis of LiPF6 can generate hydrogen fluoride at concentrations that shift the acid number of the finished electrolyte beyond the desired range. The acid number test of the solvent alone is therefore insufficient; the finished electrolyte must be checked separately. Typical finished electrolyte specifications limit moisture below 20 mg/kg and free acid below 50 mg/kg, consistent with the solvent input limits.
The release limits must be interpreted in combination with transfer and storage equipment. At 60% relative humidity, EMC samples exposed to ambient air show measurable water pickup within minutes; sample handling for Karl Fischer analysis is therefore performed in a dry glovebox or closed sampler. In production-scale blending, a single open-pour transfer can introduce more moisture than the entire solvent release budget, especially when the headspace dew point is above -20 °C. For this reason, battery-grade EMC is moved through nitrogen-blanketed lines, and day tanks are equipped with dew-point transmitters and pressure-relief valves set in the 5–15 kPa range.
Formulated electrolytes are prepared in stainless steel vessels with nitrogen blanketing, chilled jackets, and closed transfers. A representative blending skid holds EMC at 20–25 °C, maintains a headspace oxygen concentration below 5 ppm by volume, and uses Coriolis mass flow meters calibrated to ±0.1–0.2% of reading. Metering accuracy matters because the electrolyte composition is often specified as a volume ratio such as 1 M LiPF6 in EC:EMC 3:7 v/v; a small density error during mass-to-volume conversion shifts the salt concentration. EMC has a dynamic viscosity near 0.65 mPa·s at 25 °C, which permits short pump priming times and lower pressure drop than cyclic carbonates, but its vapour pressure requires floating-suction dip tubes or closed transfer to limit evaporative loss.
In electrode wetting and cell filling, the bulk viscosity of the formulated electrolyte is a key input to analytical and numerical models of wicking. The actual wetting behaviour is governed by separator surface energy, pore-size distribution, and vacuum profile in addition to viscosity. EMC is evaluated as the low-viscosity component through capillary-rise tests and gravimetric wetting measurements specific to the separator material, not by solvent viscosity alone.
Within the linear carbonate class, EMC occupies an intermediate position between dimethyl carbonate and diethyl carbonate. The table below lists representative physical property values compiled from supplier technical data sheets and dry-solvent characterization; lot-specific values vary.
| Property | EMC | DMC | DEC | EC | PC |
|---|---|---|---|---|---|
| CAS | 623-53-0 | 616-38-6 | 105-58-8 | 96-49-1 | 108-32-7 |
| Relative molecular mass (g/mol) | 104.10 | 90.08 | 118.13 | 88.06 | 102.09 |
| Melting point (°C) | -55 | 2–4 | -43 | 36 | -49 |
| Boiling point at 101.3 kPa (°C) | 107–109 | 90 | 126–128 | 248 | 242 |
| Flash point, closed cup (°C) | 23–25 | 18 | 25 | 160 | 116 |
| Dynamic viscosity at 25 °C (mPa·s) | 0.65 | 0.59 | 0.75 | solid | 2.5 |
| Dielectric constant at 25 °C | 2.9 | 3.1 | 2.8 | 89.6 | 64.9 |
The asymmetric methyl–ethyl substitution lowers the melting point below that of both symmetrical linear carbonates while retaining a viscosity closer to DMC than DEC. The dielectric constant of EMC is slightly above DEC and slightly below DMC, so replacement of DEC by EMC is not driven by increased polarity; the driving variables are the liquid range and viscosity. Compared with ethylene carbonate and propylene carbonate, EMC has far lower dielectric constant and viscosity. It is rarely used as the sole electrolyte solvent because salt dissociation and passivation functions require the cyclic carbonate component.
Among linear carbonates, dimethyl carbonate offers the lowest viscosity and highest dielectric constant but has a freezing point above 0 °C, which can create solid precipitation in low-temperature cycling. Diethyl carbonate has a wider liquid range than DMC but higher viscosity and lower dielectric constant. Ethyl methyl carbonate combines one methyl and one ethyl end group, giving a melting point near -55 °C and a boiling point near 108 °C, which lies between the two symmetrical solvents. This property combination makes EMC the usual low-temperature diluent in mobile lithium-ion applications.
Replacing DEC with EMC in a baseline LiPF6–EC electrolyte changes the solvent molar volume, boiling point, low-temperature viscosity, and flash point. In a formulation such as 1 M LiPF6 in EC:EMC 3:7 v/v, the low-temperature transport properties are governed by bulk viscosity and ion pairing; because EMC has a lower viscosity than DEC, the blend retains a lower viscosity at reduced temperature. Direct cell-level capacity retention must be confirmed by constant-current charge–discharge protocols, electrochemical impedance spectroscopy, and post-mortem analysis. Published data for this specific configuration is limited, but the measurable solvent properties are defined by ASTM D7042 viscosity and ASTM E203 moisture checks.
From a processing standpoint, the change from DEC to EMC does not always require a different blending skid, but the mass flow meter calibration must be updated for the density difference and the saturation vapour pressure difference. Because EMC has a lower boiling point than DEC, the upper temperature for open transfer is reduced; closed-loop transfer with nitrogen blanketing becomes the preferred practice. The viscosity difference of approximately 0.10 mPa·s at 25 °C is small, but at -20 °C the relative difference widens as the temperature approaches the solvent freezing points, which changes pump selection and line sizing.
At cathode potentials above 4.3 V versus Li/Li+, all linear carbonates are thermodynamically prone to oxidative decomposition; EMC is not an exception. Electrolyte oxidation contributes to CO2 evolution and alkoxide intermediates, so EMC-containing electrolytes are commonly paired with film-forming additives such as vinylene carbonate or fluoroethylene carbonate. The choice of EMC over DMC or DEC does not eliminate the need for additive optimization. Published data for specific cell formats and cathode chemistries is limited; therefore, electrochemical screening must be performed in the relevant cell configuration.
EMC is stored in 304 or 316L stainless steel pressure vessels or sealed lined carbon steel, under nitrogen pressure of 20–50 kPa gauge. Transfer piping is typically 316L seamless tube with PTFE/PFA-lined valves and EPDM or FFKM elastomer seals. FKM seals are generally compatible but must be selected with reference to manufacturer compatibility tables because carbonate solvents can swell some fluoroelastomer grades. Closed samplers with needle purge are required for reliable Karl Fischer data in dry rooms maintained at -50 °C dew point or lower.
At 60% relative humidity, pre-drying of transfer lines and storage vessels is required before EMC introduction. A production-scale failure mode reported in electrolyte compounding is the unintended ingress of humid room air through a return line under slight negative pressure, causing water content to rise above 50 mg/kg within 12 h. The affected batch fails release testing and must be recycled through a dryer column. Maintaining a positive nitrogen pressure, installing a vacuum/pressure relief valve set at 10 kPa, and monitoring supply-line dew point prevent this mode.
The closed-cup flash point of 23–25 °C places EMC in the flammable-liquid category under GHS H226. Electrical classification of blending and storage areas therefore follows local flammable-liquids codes; in the EU framework, ATEX equipment category 2 G or D is specified for transfer zones. Bonding and grounding of portable tote tanks during decanting is mandatory because EMC has low electrical conductivity and can accumulate static charge. Storage temperatures above 35 °C should be avoided unless the vessel is designed for the increased vapour pressure.
Ethyl methyl carbonate is also used as a selective alkylating and carbonylating intermediate in fine chemical and pharmaceutical synthesis. Industrial-grade EMC may have a lower purity specification, higher water content, and broader trace-metal tolerances than battery-grade material. Downstream users should not assume that industrial-grade solvent is suitable for electrolyte compounding without additional dehydration and metal removal. Conversely, battery-grade material is not automatically required for all non-electrolyte applications, and the additional purification steps are reflected in higher cost and tighter supply logistics.
The key difference between EMC and other linear carbonates is structural asymmetry. DMC and DEC are symmetric molecules; EMC has one methyl and one ethyl terminus. This asymmetry lowers the melting point relative to DMC and DEC without the high boiling point of DEC or the freeze risk of DMC. Compared with cyclic carbonates, EMC provides low viscosity and low dielectric constant, which must be balanced with ethylene carbonate or propylene carbonate to maintain adequate salt dissociation and electrode passivation. The product specification is a grade definition tied to analytical limits for water, acidity, purity, and trace metals.