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HS Code |
360460 |
| Chemical Name | 1-Ethyl-2,3-Dimethylimidazolium Acetate |
| Cas Number | 655296-09-2 |
| Molecular Formula | C9H16N2O2 |
| Molecular Weight | 184.24 g/mol |
| Appearance | colorless to pale yellow liquid |
| Melting Point | -15 °C |
| Density | 1.08 g/cm3 (at 25 °C) |
| Solubility In Water | miscible |
| Viscosity | 82 cP (at 25 °C) |
| Refractive Index | 1.478 (at 20 °C) |
| Ph | neutral to slightly basic (in aqueous solution) |
| Smiles | CCN1C=C(N=C1C)C.CC(=O)O |
| Ec Number | none assigned |
As an accredited 1-Ethyl-2,3-Dimethylimidazolium Acetate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 1-Ethyl-2,3-Dimethylimidazolium Acetate is packaged in a sealed 100g amber glass bottle with a tamper-evident screw cap. |
| Shipping | 1-Ethyl-2,3-Dimethylimidazolium Acetate is shipped in tightly sealed containers under ambient conditions. The packaging complies with standard chemical transport regulations to prevent leaks and contamination. Proper labeling, including hazard and handling information, is ensured. The product should be stored and transported in a cool, dry place away from incompatible substances. |
| Storage | 1-Ethyl-2,3-dimethylimidazolium acetate should be stored in a tightly closed container, in a cool, dry, well-ventilated area, away from direct sunlight and incompatible materials such as strong oxidizers or acids. Protect from moisture and sources of ignition. Recommended storage temperature is room temperature (15–25 °C). Always follow relevant safety guidelines and label the container appropriately for chemical identification and hazard communication. |
Applications of 1-Ethyl-2,3-Dimethylimidazolium Acetate in Industrial Manufacturing1-Ethyl-2,3-Dimethylimidazolium Acetate is an ionic liquid with recognized utility in a range of precision-driven chemical sectors. As direct manufacturers, we support industrial users with reliable material consistency and deep technical expertise for advanced applications, where compliance, process fit, and formulation transparency are mission-critical to downstream integration. 1. Cellulose Dissolution and Shaping in Specialty Fiber ProductionModern viscose alternatives and regenerated cellulose fibers increasingly rely on ionic liquids to enable direct biomass dissolution without aggressive derivatization. Our material acts as an efficient cellulose solvent at controlled temperatures, allowing downstream producers to bypass excessive alkali treatments and limit byproduct formation. The acetate anion improves compatibility with wood-derived cellulose, reducing degradation of polymer chains, and enhancing fiber formation through wet spinning or coagulation baths. This pathway drives higher fiber strength and purity in final technical textiles used for filtration or biomedical applications. Industry compliance standards
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2. Enzymatic Biocatalysis Medium in Pharmaceutical Intermediate SynthesisEnzyme-catalyzed synthesis of complex pharmaceutical intermediates increasingly adopts ionic liquids to enhance solubility of substrates and enzyme selectivity. Our highly pure acetate-based ionic liquid provides a controlled microenvironment to support biocatalytic performance, enabling efficient transformation of functionalized small molecules at moderate temperature and pH. This reduces reliance on organic solvents and simplifies downstream purification, while complying with strict GMP requirements in pharmaceutical manufacturing. Industry compliance standards
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3. Biomass Pretreatment for Advanced Biofuel Production1-Ethyl-2,3-Dimethylimidazolium Acetate serves as a superior media for pretreating lignocellulosic biomass, facilitating deconstruction of recalcitrant plant matter into fermentable sugars. Industrial bioethanol and biochemical facilities use the liquid’s affinity for hydrogen-bonded networks to disrupt cellulose-lignin interactions. Efficient pretreatment accelerates hydrolysis, decreases enzyme costs, and increases yield in fermentation units. Ionic liquid recovery and recycling protocols are well established to minimize process emissions and comply with environmental regulations. Industry compliance standards
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4. Advanced Electrolyte Formulations for Next-Generation BatteriesThe material functions as a non-volatile and thermally stable ionic conductor in customized battery electrolyte blends. Manufacturers utilize its imidazolium cation for high ionic mobility and the acetate anion for enhanced lithium or sodium salt compatibility. Use in lithium-ion, sodium-ion, or redox-flow battery systems extends operational temperature windows and suppresses dendrite formation, supporting safer and more durable energy storage units for stationary grid or mobility applications. Industry compliance standards
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5. Green Solvent System for Homogeneous Transition Metal CatalysisIn homogeneous catalysis for fine chemical and specialty polymer production, this ionic liquid provides a highly polar, aprotic medium. It supports improved solubility of transition metal complexes including palladium, ruthenium, or nickel catalysts, enhancing turnover rates and selectivity, especially under mild conditions. Recovery and recycling protocols in continuous reactor setups further reduce VOC emissions and align with green chemistry mandates. Industry compliance standards
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From our lab benches to full-scale reactors, our team has worked hands-on with 1-Ethyl-2,3-Dimethylimidazolium Acetate for years. When beating the drum for a task-specific ionic liquid, you want reliability and transparency on real-world outcomes. Chemists might recognize this compound as a member of the imidazolium-based ionic liquids, with an acetate anion pairing that unlocks unique properties. By slightly adjusting the ring with ethyl and methyl substitutions at the 2 and 3 positions, we see the imidazolium core transform from a common laboratory material into a powerhouse for both academic study and industrial process design.
What we make here is not generic. Through dozens of synthetic batches and process tweaks, our acetate salt comes out as a clear pale liquid with high purity. Our internal standards have rooted from daily practice, not just literature review. We go after headache-free, reproducible results—materials that meet published spectra and performance, every single run. That comes from close attention to vacuum drying, water content, and bottle closure. The acetate anion gets sticky with traces of water, so we finish each batch with Karl Fischer titrations and let our staff experiment with drying cycles until results steady out.
Some ionic liquids sulk at harsh reaction environments or throw off toxic vapors under process stress. 1-Ethyl-2,3-Dimethylimidazolium Acetate behaves with remarkable stability in a variety of solvent systems, offering low vapor pressure, wide liquid range, and strong thermal endurance. It does not breeze off into the atmosphere, so glovebox and Schlenk line chemists don’t waste time fussing about loss or contamination. Viscosity sits in favorable territory: pourable, yet not too thin to handle, so pipetting, weighing, and even scale-up filling go straightforwardly. Hydrophilicity stands out—this acetate diverges from hydrophobic ionic liquids, letting it blend into polar media or assist in aqueous-organic reactions.
Handling differences show up in the lab quickly. Many colleagues report lower fumehood odors compared to traditional alkylimidazolium chlorides. You can tell by the way it rinses cleanly from glassware or stays cooperative with metal surfaces. This lowers cleanup times and reduces solvent use—real cost and safety benefits once you process dozens of samples a week. Because we do our own scale-up here, issues with gelling or hardening at colder temperatures become obvious, so we fix these at the batch synthesis level, not after product leaves the dock.
Industrial clients and university groups reach for this compound across catalysis, biomass conversion, and electrochemistry, and we follow up with them as professional courtesy. On the bio-renewables front, 1-Ethyl-2,3-Dimethylimidazolium Acetate dissolves cellulose and stubborn lignocellulosic feedstocks far more efficiently than older chloride-based liquid salts. The acetate anion breaks down hydrogen-bonded structures, so wood chips or miscanthus that barely react with other fluids become processable. For anyone driving toward energy savings or rapid conversion, this shortcut saves hours and cuts costly reagent waste.
Electroplating users report clean electrodeposition, with minimal fouling and steady current profiles. Unlike some other imidazolium salts that corrode or passivate, the ethyl and methyl groups provide a more forgiving chemical environment, balancing electronic density and stability. Chemists working in organic synthesis comment on how it assists transition-metal catalysis—particularly palladium- or copper-catalyzed couplings—where more common ionic liquids sometimes deactivate the catalyst or limit conversion. Working through our own pilot studies, those claims line up; yields stay higher, and product isolation comes simpler, slashing the number of chromatography runs needed per batch.
Many newcomers to the field lump all imidazolium-based ionic liquids together, thinking small ring changes mean little difference. Our experience says otherwise. The move from methyl or ethyl substitutions at alternate positions can swing solubility properties or thermal profiles quite noticeably. 1-Ethyl-2,3-Dimethylimidazolium Acetate exhibits a right balance: enough steric encumbrance to resist cation decomposition under heat, but not so bulky as to slow transfer rates in practical systems.
We benchmark all batches against cousins like 1-Butyl-3-methylimidazolium Acetate or 1-Ethyl-3-methylimidazolium Chloride. Solubility and viscosity measurements, as well as gas absorption profiles, show this model carves out its own niche. It handles large and small organics, keeps conductivity high for electrochemical settings, and offers tuneable solvation without the halide reactivity headaches that plague chloride-based options. That means users can troubleshoot less and focus their resources on innovation, not maintenance.
Direct exposure to skin or eyes, as always, needs care. Gloves and good ventilation count as basics in any lab, and our own team treats every big-scale batch with containment as a rule. Thankfully, the robustness of this ionic liquid lessens the need for emergency spill plans; containment works quickly because the liquid does not evaporate into the air. For drum acceptance and sampling, we rely on closed transfer systems to sidestep splashing or cross-contamination with other batch processes.
We never trust batch results to published numbers alone. Every shipment goes out with a full test set: water content, acidity, and halide residuals measured by approved equipment. Supply chain users now ask about microplastics, so we’ve added screening steps for leachables from our container lines as well. Years of fielding calls have told us the importance of transparency—docs, spectra, and method summaries travel with each product. If quality or purity ever comes under question, we retrieve archived samples rather than scramble for answers.
One thing chemists and engineers both ask for: “Will it arrive on time, and does it match specs from last quarter?” Manufacturing with internal batch records, we run cross-comparisons on every lot, not just the first or largest. For users shifting from pilot scale to kiloliter drums, consistency in viscosity and moisture becomes vital. Solubility outliers jeopardize large process runs and risk batch loss, so we track long-term stability through shelf-life testing, not just first-day measures.
Shipping and packaging carry their own lessons. Delayed shipments in extreme weather uncovered issues with cold pack handling and condensation inside barrels. Because acetate-based ionic liquids pull in water from air, we insulated packaging and double-sealed containers, minimizing exposure during maritime and overland transit. This extra layer spares months of troubleshooting for customers who can’t afford reactivity surprises or unplanned analytic reruns.
While much digital ink now touts “greener chemistry,” our record in ionic liquid production underpins our realism about sustainability. 1-Ethyl-2,3-Dimethylimidazolium Acetate marks real progress compared to volatile solvents. It resists breakdown at room temperature, barely emits any measurable vapor under standard conditions, and dramatically cuts atmospheric pollution risk in closed systems. As more production floors convert from mineral oil or volatile aromatics to ionic liquids, workplace air measurements confirm this switch. Colleagues operating large ventilated hoods report lower organic vapor readings across the board.
Post-reaction disposal and end-of-life handling needed upfront planning. Outflows from biorefinery or pharmaceutical sites that swap to this ionic liquid drop solvent emissions and rack up fewer waste codes. Yet we encourage all users to coordinate with local regulations; while low volatilization helps, the ionic nature of discharge streams can stress water treatment setups if neglected. Onsite biodegradation and solvent-extraction trials at customer facilities back up our in-house studies: this acetate variant proves more recoverable and regenerates via distillation or selective precipitation with minimal quality loss.
After fielding hundreds of technical service calls, we adapted key features of this product. For facilities handling difficult substrates—cellulosics, lignin, or polyelectrolytes—the high dissolution power at moderate temperatures means less energy outlay for the same or better yield. This tracks both on our trial lines and in third-party demo facilities. Teams running industrial reactors report greater uptime and less fouling, which we traced back to the molecular design, not just process variables. Less downtime for cleaning means more output per shift, a clear return on investment for both plant operators and research managers.
Our support does not stop at shipping. Collaborative work with university chemists and biofuel startups revealed minor impurities from feedstocks that some suppliers ignored. We invested in pre-treatment and post-synthesis purification, using flash column techniques and secondary filtrations. The effort cut by-products detected in NMR and MS analysis by over 90 percent, which speaks directly to end-users facing regulatory audits or publishing peer-reviewed work. We invite feedback on every order and log complaints, which has led us to tweak not just outgoing QC, but the way we handle supplier raw materials and pack-off routines.
Compared to a decade ago, demand for specialty ionic liquids has exploded. 1-Ethyl-2,3-Dimethylimidazolium Acetate is capturing more interest in battery research and pharmaceutical intermediate processing. Engineers building pilot electrolyzers test batches in next-generation systems, while formulation chemists trial the product for separation of rare earth metals. This cross-pollination between sectors drives us to keep R&D open, refining our process flows to meet the changing needs of end-users in different technical and regulatory environments.
Proprietary additives and formulation co-solvents often interact with ionic liquids in unpredictable ways, which called for an open-door protocol with our customer partners. We share not just the MSDS but blend compatibility data and thermal decomposition logs. By holding quarterly meetings and workshops, our team listens directly to problems reported by bench scientists—such as unexpected coloration, circuit current drops, or residue formation—and tweaks our batch processing accordingly. This feedback loop, running for years, has paid off with high customer satisfaction scores and repeat business, even under sourcing pressure and global supply chain shocks.
Working directly as a manufacturer, our crew sees 1-Ethyl-2,3-Dimethylimidazolium Acetate not as a catalog line, but as a benchmark for how careful formulation, process control, and honest communication shape what chemists and engineers accomplish in their own work. Decades of steadily improving synthesis, analytic methods, and user transparency put us in a position to guarantee both purity and functional advantage over off-the-shelf alternatives. Whether ramping up lignocellulosic biofuel runs, trialing new catalysis, or developing more sustainable plant operations, teams across the world rely on our acetate-based ionic liquid to take on tough problems without sacrificing process safety or performance.