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1,3-Diethylimidazolium Acetate

    • Product Name 1,3-Diethylimidazolium Acetate
    • Alias [Emim][OAc]
    • Einecs 608-528-4
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    728579

    Chemical Name 1,3-Diethylimidazolium Acetate
    Cas Number 520474-06-8
    Molecular Formula C9H16N2O2
    Molecular Weight 184.24 g/mol
    Appearance colorless to pale yellow liquid
    Boiling Point Decomposes before boiling
    Melting Point -30 °C (approximate)
    Density 1.05 g/cm3 (at 25 °C)
    Solubility In Water miscible
    Purity ≥98%
    Refractive Index 1.435 (at 20 °C)
    Storage Temperature 2-8 °C
    Smiles CC[n+]1ccn(CC)c1.CC(=O)[O-]

    As an accredited 1,3-Diethylimidazolium Acetate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 500g of 1,3-Diethylimidazolium Acetate, supplied in a sealed amber glass bottle, labeled with safety information and batch details.
    Shipping 1,3-Diethylimidazolium Acetate is shipped in tightly sealed, chemical-resistant containers to prevent moisture absorption and contamination. It should be handled as a non-hazardous substance under normal conditions but must be stored away from strong oxidizers. All shipments comply with relevant regulatory guidelines for transportation of laboratory chemicals.
    Storage **1,3-Diethylimidazolium Acetate** should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from moisture and incompatible materials such as strong oxidizers and acids. Protect from direct sunlight and sources of ignition. Clearly label the container and ensure proper secondary containment to prevent leaks. Always follow standard laboratory safety and storage protocols.
    Application of 1,3-Diethylimidazolium Acetate

    Applications of 1,3-Diethylimidazolium Acetate in Industrial Manufacturing

    As a direct manufacturer, we supply high-purity 1,3-Diethylimidazolium Acetate used in advanced downstream sectors demanding consistent quality and traceability. The following industrial applications showcase where our material serves as a functional ionic liquid, reaction media, or process auxiliary, all supported by actual compliance guidelines and user case references.

    1. Cellulosic Biomass Dissolution for Bio-based Material Synthesis

    Cellulosic biomass processing companies increasingly rely on ionic liquids for efficient, low-impact cellulose dissolution. Our raw material facilitates homogeneous dissolution of lignocellulose for downstream production of regenerated cellulose fibers or films, removing the need for more aggressive, hazardous solvents. This approach allows manufacturers in the bio-materials field to meet stringent process safety standards and support biopolymer innovation at scale.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems
    • OEKO-TEX® Standard 100 (for textiles processed from regenerated cellulose)
    • REACH Regulation (EC) No. 1907/2006
    • European BAT Reference Document for the Textiles Industry

    Typical usage ratio

    • 50–85 wt% of total liquid phase, adjusted according to biomass type and required cellulose dissolution level

    Downstream process integration

    • Mixed with shredded cellulosic biomass in closed reactors for complete cellulose dissolution before regeneration or further derivatization

    Final product types

    • Cellulosic spun fibers (e.g. Lyocell-type)
    • Biopolymer films
    • Regenerated cellulose composites for technical applications

    2. Homogeneous Catalysis in Fine Chemical Synthesis

    Specialty chemical manufacturers employ our ionic liquid as a reaction medium enabling enhanced yields in homogeneous transition-metal catalyzed reactions. By stabilizing catalytic systems and mediating phase transfer, the material contributes to controlled substrate conversion, efficient separation, and reusability of the catalyst in multi-step synthesis, especially in active pharmaceutical ingredient (API) intermediates and fine chemical building blocks.

    Industry compliance standards

    • Good Manufacturing Practice (GMP) ICH Q7
    • ISO 17025 (testing and QC)
    • REACH Regulation (EC) No. 1907/2006
    • EU Directives for API Synthesis (2001/83/EC)

    Typical usage ratio

    • 10–40 vol% relative to total reaction solvent volume, based on catalyst system and substrate solubility

    Downstream process integration

    • Charged as a primary or co-solvent during organometallic and transition-metal catalyzed steps in continuous or batch reactor systems

    Final product types

    • Chiral intermediates for API production
    • Functionalized aromatic and heterocyclic compounds
    • Specialty fine chemical reagents

    3. CO2 Capture and Gas Separation Systems

    Industrial gas processors and environmental technology providers utilize our material's selective CO2 absorption and chemical stability for efficient gas separation, particularly in low- and medium-pressure post-combustion carbon capture units. The ionic liquid improves selectivity over amine-based systems, reduces corrosive degradation, and enables repeated cycling in engineered absorption/desorption units at industrial flue gas treatment sites.

    Industry compliance standards

    • ISO 14001:2015 Environmental Management
    • EU Industrial Emissions Directive (IED) 2010/75/EU
    • US EPA Clean Air Act Standards
    • EU ETS MRV Regulation (EU) No 601/2012 (for CO2 reporting)

    Typical usage ratio

    • Applied at 100% concentration as the working absorption fluid in standardized test units; dilution with co-solvent (e.g. water, ethanol) up to 20% for specific process requirements

    Downstream process integration

    • Pumped as the circulating absorbent in packed-bed or spray column reactors integrated with the gas stream line

    Final product types

    • Recovered CO2 for industrial use or geological storage
    • Purified, CO2-depleted flue gas for emission control systems

    4. Lignin Extraction and Fractionation in Pulping Processes

    Advanced pulp and biorefinery operations engage our ionic liquid for selective lignin removal and fractionation from lignocellulosic feedstocks. It enables milder separation compared to kraft and sulfite pulping, yielding high-purity lignin fractions suitable for resin, binder, and carbon material production in compliance with current pulp industry environmental protocols.

    Industry compliance standards

    • ISO 9001:2015 Quality Management
    • Best Available Techniques (BAT) for the Pulp and Paper Industry (EU BREF Document)
    • Forest Stewardship Council (FSC) supply chain controls (for certified biomass)
    • REACH Regulation (EC) No. 1907/2006

    Typical usage ratio

    • 20–60 wt% in mixed aqueous-organic systems, optimized for targeted lignin removal efficiency

    Downstream process integration

    • Added to biomass digesters as a pulping solvent ahead of lignin recovery and polysaccharide purification steps

    Final product types

    • Industrial-grade lignin powders
    • Lignin-derived adhesives and resins
    • Technical carbons and biocomposites

    5. Enzymatic Biotransformation Media for Specialty Bioproducts

    Biotech manufacturers select our ionic liquid to design biocompatible, water-miscible media, supporting challenging enzymatic conversions—especially where traditional solvent systems denature enzymes or lower conversion rates. The unique ionic environment boosts substrate accessibility in biocatalytic synthesis of high-value bioproducts, with effective downstream separation and reusability.

    Industry compliance standards

    • ISO 13485:2016 (for products entering medical supply chain)
    • US FDA 21 CFR Part 210/211 (for pharmaceutical enzyme manufacturing)
    • Good Manufacturing Practice (GMP)
    • REACH Regulation (EC) No. 1907/2006

    Typical usage ratio

    • 15–35 vol% in aqueous buffer systems, tuned per enzyme compatibility assay and substrate loading

    Downstream process integration

    • Formulated into the initial substrate/enzyme media for batch or continuous stirred-tank bioreactors

    Final product types

    • Bioconversion-derived fine chemicals
    • Pharmaceutical precursors
    • Functionalized biopolymers

    6. Electrochemical Device Electrolytes

    Device developers for next-generation batteries and supercapacitors incorporate our high-purity ionic liquid as an electrolyte component. Its low volatility and high ionic conductivity allow for stable operation over wide temperature ranges in advanced energy storage systems, improving device safety and cycle life under rigorous quality assurance and device validation protocols.

    Industry compliance standards

    • IEC 62660-1 and IEC 62660-2 (for lithium-ion batteries)
    • UN Manual of Tests and Criteria Part III:38.3 (transport safety)
    • ISO 9001:2015 for energy storage device manufacturers
    • REACH Regulation (EC) No. 1907/2006

    Typical usage ratio

    • 20–60 vol% of total electrolyte phase, formulated with organic carbonates or other co-solvents based on required device voltage and electrochemical stability

    Downstream process integration

    • Dispensed as part of precise electrolyte formulations during cell assembly in controlled dry room conditions

    Final product types

    • Lithium-ion pouch and cylindrical cells
    • Supercapacitor modules
    • Prototype solid-state battery systems
    Free Quote

    Competitive 1,3-Diethylimidazolium Acetate prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Understanding 1,3-Diethylimidazolium Acetate: Our Perspective as a Direct Manufacturer

    What Sets 1,3-Diethylimidazolium Acetate Apart

    As a team that spends every workday on the shop floor and in the lab, few things are as rewarding as seeing 1,3-Diethylimidazolium Acetate (CAS 34905-74-3) emerge in our plant’s glassware—clear, consistent, and ready for industries that value both reliability and a genuine technical edge. Unlike the volatility of many organic solvents, this ionic liquid behaves with a steadiness that our customers appreciate. Our daily process control and hands-on quality checks keep each batch up to snuff, from moisture control to impurities below commercially significant thresholds.

    We have watched this compound evolve over the years, watching its uptake in cellulose processing, electrochemistry, catalysis, and even specialty coatings. The curiosity for “greener” solvents keeps growing. Many clients come to us after trying traditional imidazolium salts but require a product with lower viscosity, better thermal stability, or more reliable acetylation capabilities. That’s where 1,3-Diethylimidazolium Acetate stands out. Its acetate anion improves solubility with biopolymers, which pushes past the limits of typical halide-based ionic liquids and avoids the corrosion headaches they often bring to metal hardware.

    Specifications That Matter: Real Numbers, Real Qualities

    On our production line, every shift revolves around tracking product numbers that concretely matter to downstream users. For decades, purity stood as the most important spec—the numbers speak for themselves. For 1,3-Diethylimidazolium Acetate, users in cellulose dissolution or catalysis keep an eye on purity levels above 98%. Moisture content isn’t some afterthought; traces above 500 ppm can torpedo whole polymerization reactions. It’s not uncommon for end users to pull random samples from their totes and run their own Karl Fischer titration tests. They have the right to expect the same results as we see on our own meters in the plant.

    Color—often overlooked—can signal problems with dissolved transition metals or organic contaminants. We address color at the earliest stages by controlling temperature, filtration, and precursor quality. Heating cycles above 80°C bring subtle changes; we spot them before shipping because researchers and chemical processors can’t scrub out those impurities downstream.

    Packing and handling also shape user experience. We deliver in high-density polyethylene drums or stainless-lined IBCs, always flushed and sealed against moisture. Field experience tells us—improper storage lets this acetate pull in atmospheric water, and in some cases, light exposure can promote slow yellowing due to minor oxidation of the imidazolium ring. Preventing this isn’t just about following standard procedures. It’s about understanding the chemistry well enough to anticipate storage pitfalls, even months after we fill a container.

    Direct Application in Cellulose Processing and Green Chemistry

    The demands for “green” solvents are not set by marketing departments—they come from customers trying to solve practical riddles in biomass conversion or specialty polymer manufacturing. Those who have handled traditional cellulose solvents know the risks posed by strong acids and halide ions. 1,3-Diethylimidazolium Acetate delivers exceptional solvating power for both native and regenerated cellulose, without attacking metallic reactor walls or producing persistent halide residues.

    Our team has supported partners in textile research and biofuel feedstock conversion. These applications often involve dissolving tough lignocellulosic materials. Shifting to our ionic liquids, they have reduced downtime spent cleaning corroded equipment and controlled side reactions that would otherwise tie up valuable catalysts with halide contamination. Thermal stability and recyclability both rank high as process benefits. Most industrial users run batch conditions from 80°C to 120°C, utilizing our acetate’s wide liquid range and low melting point to run continuous processes, rather than pausing for cleaning or solvent replenishing. This saves more than just heating costs—it lets lines stay productive.

    Electrochemistry and Specialty Synthesis Use Cases

    Not every customer brings us a textile challenge. Our acetate-based imidazolium reaches into the electronics field—battery labs, electroplating rooms, and electro-organic synthesis. We’ve watched research teams push voltage windows higher, trying to eke out more efficiency while avoiding water interference and unwanted redox side reactions. Standard imidazolium halides often restrict operating voltage or bring with them irrepressible background chlorides. Acetate anion reduces such risks. The relatively wide electrochemical window and ionic conductivity allow for more flexibility in cell design, especially where users want low volatility or stable ionic mobility under heat.

    What this means in a daily production context: our product comes in batches with tight control not just over purity, but also over trace chloride and transition metal content, which can otherwise migrate electrochemical potentials and sabotage results. Bite-sized innovations—better rinse cycles, rigorous raw material traceability—improve these specifications year after year. This is not a one-time adjustment, but an ongoing routine informed by the feedback loop between our technical team and each user.

    How It Differs from Traditional and Modern Alternatives

    Many chemists and process engineers are looking for ways to move past N-methylimidazolium or halide-substituted ionic liquids because those compounds pose persistent difficulties during scale-up. Corrosion, unwanted byproduct formation, and disposal headaches haunt process engineers. Users report that while common halide-based liquids bring concise melting points and high ionic conductivity, they often cause metal leaching in reactors, especially at elevated pH or temperature. By contrast, 1,3-Diethylimidazolium Acetate brings down corrosiveness and delivers a consistent solvent environment that supports more aggressive operating conditions, especially for research and industrial setups that don’t have luxury of frequent maintenance shutdowns.

    Moving to the acetate version provides freedom to run scalable, recyclable solvent cycles—something increasingly valued in closed-loop processes for dissolving cellulose or carrying out enzyme-catalyzed transformations. Many academic partners have documented the reduced metal wear and lower impurity profiles that result from switching to acetate. We see their experiences echoed in our conversations with large-scale users from Europe to Asia, who return for more product each season after pilot successes turn into production standards.

    Our Real-World Manufacturing Insights

    Producing 1,3-Diethylimidazolium Acetate at scale often means navigating between purity chasing and cost containment. Each product batch is subject to multi-point in-process controls, not just to “tick the boxes,” but to hold the line on what matters for downstream reactions. Many days in the plant come down to watching spectroscopic signals—NMR, HPLC, and titration results—to validate standards. We have invested facility time and resources into faster in-line water content analysis, catching moisture slip-ups before bulk batches are discharged. In practice, this lets cellulosic film producers and research chemists draw down on inventory without worrying about repurification or secondary drying. We stand accountable for those specs with every shipment, since the results flow straight to published literature and major product launches.

    Production scale also brings logistics challenges. Unlike traders or brokers, we carry the risk and responsibility for each container shipped. An improperly cleaned drum or a minor variation in storage temperature can push a batch into “off spec” territory, causing headaches for all. By keeping batch records transparent and open to customer review, we give technical teams the confidence that their solvent comes with a clear pedigree, not just a code on a datasheet. That policy has helped us retain long-term collaborations with production plants who require more than just pricing—they want long-term technical partnership.

    Technical Problem-Solving from the Front Lines

    Over the last decade, we have solved recurring issues linked to solvent quality in diverse fields—from enzymatic saccharification to hydrogenation in pharmaceutical R&D. For applications at the bench or the tonnage scale, residue control means everything. Imidazolium acetates with minor precursor residues or side-products can poison sensitive reagents. By filtering and adjusting process parameters, we ensure customers receive solvent that won’t derail sensitive syntheses.

    Our own engineers follow the story after each drum leaves our gate. We gather field reports from user plants—high throughput syntheses, test runs in new reactors, pilot-scale dissolution of forestry byproducts. It becomes possible to spot trends and improve future runs. One recurring theme is the reduction in cleaning operations. Former chloride-based protocols called for dismantling reactor jackets every few weeks or treating lines with acid-dosed cleaning cycles. After a switch to 1,3-Diethylimidazolium Acetate, those intervals have been extended two- or three-fold, saving both operator time and energy costs.

    Environmental concerns have also shaped how we optimize upstream synthesis, waste stream handling, and product packaging. We aim to support users who prioritize closed-loop cycles, solvent recovery, and low-residue discharge. Acetate-based ionic liquids bring lower environmental impact compared to traditional chlorinated or fluorinated systems; recovering and reusing the solvent becomes more practical when toxicity and volatility drop out of the equation. Our focus on acetyl-based salts helps end users meet regulatory demands and waste reduction goals without sacrificing process speed or downstream product quality.

    Supporting Innovation: Beyond Just Supplying a Product

    Our journey with 1,3-Diethylimidazolium Acetate has always relied on maintaining an open line of dialog with researchers and scale-up engineers. Knowing the product’s limitations and strengths firsthand, we often support customer experiments, offering tailored recommendations on handling or co-solvent selection. In high-throughput screening, particularly for biomass valorization or catalysis trials, control over solvent quality can make or break a result. Advice on drying protocols, longevity in storage, and even compatible plastics stems from our factory experience, not distant distributor scripts.

    This culture of knowledge-sharing developed because we’ve witnessed in person how minor changes in reagent handling or purging procedures can alter reaction trajectories. Some users experiment with running 1,3-Diethylimidazolium Acetate under negative pressure for ultra-fast drying, or rely on custom filters to remove fine degradation particles. Others run side-by-side tests using various ionic liquids and report increased product yield or higher selectivity using acetate. We document those findings, add them to our own best practices, and adjust production or Q&A protocols accordingly. That’s partnership in action, not just commodity exchange.

    Facing the Future: Continuous Improvement and Industry Trends

    Industry shifts are pushing manufacturers like us to look even further ahead than ever before. Increased raw material costs and environmental pressures require constant efficiency improvements and creative solutions. For 1,3-Diethylimidazolium Acetate, ongoing investments target both process intensification and new analytical techniques, tilting the balance towards higher yield, longer batch lifecycles, and greater traceability.

    Sustainability metrics—carbon emissions, chemical waste reduction, and energy efficiency—now influence project planning as much as classical performance standards. We see a distinct uptick in requests for product origin tracing and life cycle analysis. Users in Europe and North America, in particular, request supplier-backed evidence on batch reproducibility and material impact. We take that feedback seriously and build it into our operations, offering transparency from raw material source to finished ionic liquid.

    We also keep an eye on regulatory landscapes. Requirements surrounding ionic liquids evolve with new toxicological and environmental assessments. We engage third-party labs and regulatory consultants to verify compliance, standing accountable to both local and global standards. This establishes trust through certification, not just word of mouth, ensuring that users in pharma, specialty chemicals, and advanced materials can confidently use our product in scale-up and commercial runs.

    Industry Collaboration and Deep Expertise Benefit Customers

    Technical know-how doesn’t come from a textbook—it comes from solving real process problems, batch after batch, day after day. In our factory, every operator and chemist brings lessons learned into next day’s production run. By keeping operations in-house and under direct supervision, we close the loop between user meetings and process adjustments. For example, feedback from polymer manufacturers about thermal stability under cycling led us to adjust our purification parameters and reduce degradation compounds, documented in observed product shelf-life extension.

    Research partners value not just purity or price, but also the open channel of troubleshooting and innovation. We offer experimental support and help scale promising lab ideas into pilot lines or full-scale production without losing quality or traceability. By keeping technical dialogue alive, our customers avoid the dead ends and bottlenecks that can plague innovation pipelines.

    Conclusion: Practical Value and Real-World Results

    1,3-Diethylimidazolium Acetate offers a unique balance of solubility, stability, and process friendliness, based on lessons learned through years of direct manufacture, product adaptation, and close technical support. We stand behind our work, engaging with each client to make sure their needs and challenges shape our next steps forward. For those looking to step into bio-based material processing, advanced electrochemistry, or next-generation catalysis, our acetate-based ionic liquid provides viable, sustainable performance—delivered by a team who understands the difference between theory and practice.