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1-Allyl-3-Ethylimidazolium Tetrafluoroborate

    • Product Name 1-Allyl-3-Ethylimidazolium Tetrafluoroborate
    • Alias [EMIM][BF4]
    • Einecs 425-420-9
    • 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

    286964

    Chemicalname 1-Allyl-3-Ethylimidazolium Tetrafluoroborate
    Casnumber 374726-52-4
    Molecularformula C8H13BF4N2
    Molecularweight 226.01 g/mol
    Appearance Colorless to pale yellow liquid
    Meltingpoint -20 °C (approximate)
    Boilingpoint Decomposes before boiling
    Density 1.24 g/cm³ (at 20°C)
    Solubilityinwater Miscible
    Purity Typically ≥ 98%
    Conductivity Highly conductive (ionic liquid)
    Storagetemperature Room temperature, tightly sealed

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

    Packing & Storage
    Packing 1-Allyl-3-Ethylimidazolium Tetrafluoroborate is packaged in a 100g amber glass bottle with a secure screw cap.
    Shipping 1-Allyl-3-Ethylimidazolium Tetrafluoroborate is shipped in tightly sealed, chemical-resistant containers to prevent leakage and moisture exposure. The chemical is classified as non-hazardous but should be handled with care. During shipping, it is protected from extreme temperatures and securely packed according to standard chemical transport regulations to ensure safe delivery.
    Storage Store 1-Allyl-3-ethylimidazolium tetrafluoroborate in a tightly sealed container, away from moisture and direct sunlight, in a cool, dry, and well-ventilated area. Keep it separated from incompatible materials such as strong oxidizers. Ensure proper labeling and use secondary containment to prevent leaks. Follow local regulations for storage of ionic liquids and handle with appropriate personal protective equipment.
    Application of 1-Allyl-3-Ethylimidazolium Tetrafluoroborate

    Applications of 1-Allyl-3-Ethylimidazolium Tetrafluoroborate in Industrial Manufacturing

    As the direct manufacturer of 1-Allyl-3-Ethylimidazolium Tetrafluoroborate (AEIM BF4), we supply this ionic liquid to a focused range of advanced industries that demand strict adherence to internationally recognized standards and process optimization. Below, we outline core application sectors in which our material is integrated into customer operations for defined downstream transformations and final product streams.

    1. Electrolyte Component in Electrochemical Capacitors

    Within the energy storage industry, AEIM BF4 is widely adopted as a non-volatile, thermally stable electrolyte base for production of supercapacitors and hybrid capacitors. Its high ionic conductivity and broad electrochemical window meet the specific needs of next-generation capacitor devices, supporting improved charge-discharge cycle life and efficiency. Downstream capacitor cell manufacturing lines incorporate the ionic liquid directly in electrolyte filling steps under inert atmosphere conditions.

    Industry compliance standards

    • IEC 62391 (Fixed electric double-layer capacitors for use in electronic equipment)
    • RoHS (Restriction of Hazardous Substances Directive)
    • REACH Regulation (EU chemicals registration)
    • ISO 9001:2015 (Quality Management Systems for component production)

    Typical usage ratio

    • 10–20 wt% in mixed electrolyte formulations, depending on designed capacitance and voltage range; formulation adjustment based on targeted ESR and energy density.

    Downstream process integration

    • Added during electrolyte synthesis and cell assembly; filled into assembled capacitor cells prior to vacuum sealing; mixed with co-solvents or lithium salts as necessary for desired electrical performance.

    Final product types

    • Supercapacitor modules for automotive start-stop systems
    • Energy storage banks for renewable power grids
    • High-power industrial backup capacitor units
    • Consumer electronics ultracapacitor packs

    2. Ionic Liquid Solvent in Cellulose Processing

    AEIM BF4 serves as a powerful green solvent for dissolving and regenerating cellulose in advanced fiber and film manufacturing. Producers of regenerated cellulose leverage this ionic liquid to create stable, homogeneous solutions under mild conditions, enabling continuous spinning and film-casting operations without reliance on volatile organic solvents. Its non-flammability and low vapor pressure support safer and more sustainable processing environments.

    Industry compliance standards

    • OEKO-TEX Standard 100 (Chemical safety in textile production)
    • Zhejiang Textile Input List Standard (China, for viscose and fiber production)
    • ZDHC (Zero Discharge of Hazardous Chemicals) MRSL
    • ISO 14001 (Environmental Management System for manufacturing facility)

    Typical usage ratio

    • 60–80 wt% relative to cellulose feedstock, selected based on targeted cellulose solubility and product viscosity; adjusted at pilot and commercial scale for different plant-derived pulps.

    Downstream process integration

    • Integrated into the initial pulping and dissolution stage; recovered and recycled post-regeneration via evaporative separation or membrane-based filtration following extrusion and coagulation.

    Final product types

    • High-tenacity regenerated cellulose fibers (e.g., for tire cord, technical yarns)
    • Biodegradable cellulose films for flexible packaging
    • Textile-grade staple fibers used in performance apparel
    • Specialty nonwovens for medical and filtration applications

    3. Electrolyte Additive in Metal Electrodeposition

    In precision electroplating and metal finishing sectors, AEIM BF4 is introduced as an electrolyte additive to engineer uniform metal coatings with tailored surface properties. It enables finer grain structures and improved corrosion resistance in deposits by enhancing ionic mobility and modulating deposition kinetics. Key industries require consistency in component specifications and traceability in materials selection, driving the adoption of advanced ionic liquid systems.

    Industry compliance standards

    • ASTM B633 (Electrodeposited Coatings of Zinc on Iron and Steel)
    • RoHS (Restriction of Hazardous Substances Directive)
    • IATF 16949 (Automotive sector quality)
    • IEC 60950 (Safety of electronic equipment with metal parts)

    Typical usage ratio

    • 1–5 vol% as a functional additive in conventional aqueous or non-aqueous metal plating baths; optimal loading varies by metal species (e.g., Ag, Cu, Zn) and desired surface characteristics.

    Downstream process integration

    • Added to base electrolyte immediately prior to electrodeposition; maintained throughout plating run with inline concentration monitoring and replenishment.

    Final product types

    • Corrosion-resistant fasteners and connectors
    • Printed circuit board metallization layers
    • High-reflectivity decorative plated parts (appliances, automotive trims)
    • Electrodeposited anodes and current collectors for batteries

    4. Reaction Medium for Catalytic Organic Synthesis

    In fine chemicals and pharmaceuticals manufacturing, AEIM BF4 is selected as a specialty reaction medium for transition metal-catalyzed cross-coupling, alkylation, and oxidation reactions. Its basic imidazolium core and tetrafluoroborate anion support enhanced catalyst stability and selective product yields, especially in C–C bond formation routes and green chemistry protocols. Regulatory-driven validation ensures complete removal or compliant residual levels in APIs and intermediates.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • European Pharmacopoeia (test for residual solvents, process impurities)
    • US FDA 21 CFR Part 210/211 (GMP for finished pharmaceuticals)
    • GHS (Globally Harmonized System for chemical safety)

    Typical usage ratio

    • Used as sole or co-solvent at 30–100 vol% of total reaction media, adjusted by substrate reactivity and catalyst compatibility; often recycled batch-to-batch for process economy.

    Downstream process integration

    • Charged to reactor vessel at ingredient charging phase; recovered after reaction end for purification via distillation, chromatography, or phase separation depending on product specifications.

    Final product types

    • Pharmaceutical intermediates (specialty aryl, alkyl derivatives)
    • Agrochemical actives and precursors
    • Electronic-grade organic compounds (OLED, semiconductor substrates)
    • Chiral fine chemicals for catalyst, ligand, and materials synthesis

    5. Gas Separation Membrane Processing Aid

    AEIM BF4 is employed by advanced membrane manufacturers as a processing aid to fabricate ion-conducting, highly selective polymer membranes for gas separations. Its use enables precise control of membrane morphology, phase inversion dynamics, and surface chemistry during casting and annealing stages, resulting in higher gas permeation rates and separation factors crucial for energy, environmental, and industrial gas handling applications.

    Industry compliance standards

    • ISO 9001:2015 (Quality Management for membrane production)
    • EN 14181 (Quality assurance for continuous emissions monitoring)
    • ASTM D4935 (Measurement of gas permeability)
    • REACH (Chemicals registration and reporting)

    Typical usage ratio

    • 5–20 wt% relative to the total polymer content, depending on targeted pore size, polymer chemistry, and intended gas selectivity; fine-tuned based on pilot trial data.

    Downstream process integration

    • Blended with polymer resins prior to membrane casting; remains embedded or is partially extracted, depending on membrane design; membranes further conditioned or crosslinked post-casting for final pore tuning.

    Final product types

    • CO2/N2 separation modules in biogas upgrading
    • Hydrogen purification membranes for fuel cell applications
    • Selective oxygen/nitrogen separation films for medical and industrial gases
    • VOC removal systems in environmental air treatment
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    Certification & Compliance
    More Introduction

    1-Allyl-3-Ethylimidazolium Tetrafluoroborate: A Fresh Perspective from the Manufacturer

    Introduction: Behind the Lab Door

    Every batch that leaves our facility carries the weight of our experience and pride. We take our chemicals seriously, because every gram, every liter, impacts processes that push boundaries in research and industry alike. Among the ionic liquids we craft, 1-Allyl-3-Ethylimidazolium Tetrafluoroborate has shaped up as a remarkable tool not just for its niche properties, but also for the way it adapts in the hands of chemists pushing for higher productivity, greener processes, and reliable performance.

    Product Background: Our Journey with Ionic Liquids

    We started exploring the synthesis of imidazolium-based ionic liquids more than a decade ago. The goal was not just purity, but true chemical integrity — low moisture content, minimal residual starting materials, and stable performance in a variety of environments. As demand for tunable solvents and electrolytes grew, the spotlight naturally shifted to hybrid cations like 1-Allyl-3-Ethylimidazolium. Adding the tetrafluoroborate anion gave the product the melting point, thermal stability, and electrochemical characteristics that set it apart from simple binary salts.

    Our formulation carries the CAS number 219373-38-5. During development, batch reproducibility proved crucial. Researchers and engineers alike reported batch-to-batch fluctuations with some suppliers — not from us. The strictest controls go into our production: drying at reduced pressure, protected transfer under inert gas, and packaging in certified containers. These steps are not afterthoughts. They come from years of troubleshooting real bottlenecks our partners faced. Far from generic offerings, this ionic liquid comes off our reactors with tight control over all the analytical figures that matter.

    Model and Specifications: More Than the Name

    There’s a long list of imidazolium ionic liquids scattered throughout academic and industrial settings, but 1-Allyl-3-Ethylimidazolium Tetrafluoroborate has its own place at the table. Chemists searching for a solvent or electrolyte want to know: what exactly sets this model apart? The combination of the allyl and ethyl groups gives the cation a subtle balance of steric flexibility and moderate hydrophobicity. This means the ionic liquid remains liquid at room temperature, resists decomposition at elevated temperatures, and maintains compatibility with a range of polar and non-polar compounds.

    Our standard grade shows water content less than 200 ppm by Karl Fischer titration. Acid value, conductivity, and viscosity are measured every time, without exception. Transparency, color, and odor receive just as much scrutiny. A keen eye in the lab knows purity often hides in the details you can’t measure with GC or NMR. Real-world feedback from clients working in electrodeposition, pharmaceutical synthesis, and advanced catalysis continually shapes what numbers and specs matter most in the laboratory.

    Usage: Why Labs and Industry Trust Our Product

    Our customers put this ionic liquid to use in ways we didn’t even imagine when we started. It sees steady demand from those tackling electrolytic deposition of metals such as aluminum, gold, and platinum — processes where highly stable, low-volatile electrolytes open doors traditional aqueous systems can’t. Users in organic synthesis prize it as a reaction medium, especially where classical solvents fail to deliver selectivity or break down under strong conditions.

    Pharmaceutical chemists appreciate the tunability; small tweaks in cation or anion structure bring changes in solvation power and compatibility with active pharmaceutical ingredients. In electrosynthesis, the tetrafluoroborate anion offers an edge—excellent electrochemical windows and strong resistance to oxidation and hydrolysis. Research groups report suppressed vapor pressure and negligible flammability compared to volatile organics, making process safety less of an uphill battle.

    In analytical chemistry, our ionic liquid acts as a support phase for gas chromatography or as a non-volatile solvent for sample extraction. Each new use builds on the last, with creative teams proving just how versatile these ionic liquids can be. They leverage the product’s low lattice energy and high ionic conductivity for energy storage research, and use its solvent properties for cellulose and biopolymer dissolution. These are more than lab curiosities—scale-up teams in battery manufacturing and sustainable biomass processing reach out for the consistency and performance that we bake into each batch.

    How It Stands Apart: The Details That Matter

    We’ve lost count of times users tell us “we tried another supplier and saw different results.” Small impurities or variations in physical properties can disrupt repeatability and slow down discovery. What’s special about 1-Allyl-3-Ethylimidazolium Tetrafluoroborate isn’t just what’s in the bottle, but what isn’t. Cyclization by-products, halide residues, and free acid all go below the lowest detection limits, batch after batch. This gives chemists the foundation they need for reproducible results.

    Compared to related ionic liquids like 1-butyl-3-methylimidazolium tetrafluoroborate, this model brings unique solvation characteristics. The allyl group has mild electron-donating properties and creates less steric hindrance in catalysis or coordination processes than a straight butyl chain would. In practice, this shows up as faster equilibration times in chromatography or more efficient catalyst recovery. Also, the combination of allyl and ethyl substituents modulates viscosity, helping users handle and measure the liquid more easily in automated systems.

    Unlike some chloride-based ionic liquids, the tetrafluoroborate anion provides enhanced stability against hydrolysis. Even after months in storage and repeated cycling, we see minimal changes in physicochemical parameters. Researchers focusing on scale-up find the product handles up to repeated decompression, heating, or drying without decomposing or picking up environmental moisture.

    Production processes built around this ionic liquid benefit from non-volatility and negligible vapor pressure. Operators in pilot facilities and commercial plants no longer fight lost mass to evaporation. Less airborne contamination means less exposure risk and robust environmental compliance. Our own facility runs closed-loop filtration and packaging systems to minimize cross-contamination, setting an example for what real-world handling should look like.

    Electrochemists appreciate that this ionic liquid enables high-voltage operation in batteries and capacitors. Competing products sometimes exhibit unpredictable breakdown or unwanted current leakage at edge voltages. By contrast, the tetrafluoroborate system achieves stable, flat electrochemical windows that drive performance repeatably. Teams working on carbon capture or gas separation highlight its selective solubility for certain gases, particularly CO2, under mild pressure and temperature.

    Feedback from the Field: What Users Tell Us

    One of the first things major users mention is reliability—our control over water content, color, and residual solvent impurities means less need for pre-use purification. Pharmaceutical process teams have flagged this, explaining that downstream filtration and drying costs drop significantly when the starting material is consistent. In metal deposition labs, electrode configurations and deposition rates shift noticeably with small changes in solvent purity. Our batches eliminate variables, giving immediate insights on tweaks to their process.

    Customers in academic research have credited our approach to packaging. Every container comes nitrogen-flushed and double sealed; we don’t cut corners, because nothing erodes confidence like starting a sensitive reaction and discovering the solvent has picked up atmospheric moisture. Direct feedback helps us tweak procedures—recent requests for larger bulk packaging prompted us to scale up custom drums with higher barrier wall thickness, making long-term storage and transport easier.

    We invite detailed criticism, not just praise. There have been cases where customers needed specialized documentation, real-time tracking of impurities, or advanced analytics beyond standard certificates of analysis. Our lab team responded by adding online NMR and HPLC reports accessible through QR-linked authentication codes, so users always know the real condition of material, not a generic spec.

    We follow up on customer-initiated investigations. One customer’s feedback about slow phase separation during biphasic extractions focused our attention on subtle residual acid content. Tweaks in the synthetic route, additional post-synthetic purification, and longer vacuum drying gave a notable improvement, confirmed by outside labs. We view every complaint as a chance to drive our process even further.

    Your Challenges, Our Solutions

    Many firms come to us frustrated by quality drift: one batch works, the next complicates the process. We know stability isn’t just an in-spec number on paper. It ties back to the methods behind the material. In our plant, highly trained technicians oversee nitrogen-purged handling environments, monitor glovebox atmospheres for trace oxygen, and perform frequent instrument audits to ensure calibration. Every improvement in procedure translates to a benefit for the end user; no mystery peaks, no last-minute recalibrations, no wasted runs.

    Shipping and storage also matter. We understand projects sometimes sit delayed for months. That’s one reason our containers feature tamper-evidence and dense, multi-layer construction, protecting against accidental oxygen and moisture ingress. Small investments at this stage save significant resources in failed runs and wasted time. In some cases, international consumers with longer shipping timelines found product stability so improved that their own in-house testing protocols shortened or disappeared entirely.

    We also keep a close watch on regulatory and compliance trends. Everything from REACH updates to waste disposal rules shapes how our product fits into industrial workflows. By choosing long-lived ionic liquids like this model, end users reduce quantity requirements, chemical volatility, and hazardous waste generation—a triple win in modern compliance audits.

    How We Innovate: Listening to Real-World Needs

    Each year brings new applications and tougher demands from our partners. Green chemistry initiatives drive a search for safer, less hazardous solvents. We look at life cycle impact from start to finish: all precursors tracked, all effluents minimized, all waste streams recycled where possible. Because 1-Allyl-3-Ethylimidazolium Tetrafluoroborate resists decomposition and releases almost nothing to the environment during standard operation, it fits well in sustainable process planning.

    We learned from early experiments that details in the reaction workup – solvent ratios, temperature ramps, pressure settings – play a huge part in delivering predictably high purity. Process development is never finished. Recent investments in real-time quality analytics now allow automated feedback on every reactor during and after synthesis, flagging deviations before they affect a finished batch.

    Partnerships with universities and forward-thinking firms keep our perspective fresh. Young researchers testing boundaries in catalysis, biotechnology, or energy storage keep us questioning old assumptions about ionic liquid behavior and compatibility. Through collaborations and prototype-scale hand-offs, we integrate novel ideas back into our process. It’s not just about producing a dependable product; it’s about helping others innovate.

    Addressing Concerns: Towards Safer, Greener Chemistry

    Hazard profiles matter to everyone using or exposed to chemicals. We have pursued in-depth toxicological and environmental fate studies for every new generation of our products. 1-Allyl-3-Ethylimidazolium Tetrafluoroborate shows low volatility and minimal acute toxicity in testing so far. Traditional organic solvents evaporate into workplaces and atmospheres; by contrast, our ionic liquid stays put, reducing inhalation and environmental risks. In cases where eco-toxicity or bioaccumulation might become a concern, we work one-on-one with research teams for additional test data and technical support.

    Electrochemical safety sets this product apart. Catastrophic failures or violent reactions during high-voltage operation often trace back to solvent breakdown. Routine testing in our R&D facility stresses each batch under extreme conditions. The results consistently show excellent resistance to electrolytic decomposition, so users can push their systems harder and further without fear of sudden process aborts. Through controlled protocols and data sharing, we help customers set safer operating windows for their unique systems.

    What Sets Us Apart: The Value of Real Experience

    Unlike trading houses or brokers, our team spends time at the reactors, in QC labs, and interfacing directly with chemical engineers and lab heads. We live the process from raw materials right through to the feedback loop. We know every shortcut that might save a minute in the plant can cost hours for someone troubleshooting a bad outcome downstream. So we don’t cut corners, and we don’t make excuses. Every drum is traceable back to batch records, synthesis logs, and internal performance audits that we keep on file.

    Our clients aren’t just invoice numbers. We care if their next set of analytical runs crumble due to an upstream impurity, or if a new project gets stalled by unexplained batch variance. Being the manufacturer means standing behind every shipment with full transparency. If you want method development support or further analytics, our team is on standby—and, unlike with distant resellers, you speak directly with the lab and plant managers who make your batch.

    We also believe strongly in staff training and retention. The same eyes catching a minor shift in color or viscosity today were the hands running pump seal replacements five years ago. This continuity creates knowledge and pride, and it shows up in our product quality and consistency. We’re not content just to meet current standards; we push ourselves to anticipate the next challenge and solve it before it reaches your bench or plant.

    Continuous Improvement: Commitment to Better Chemistry

    Making consistent, reliable 1-Allyl-3-Ethylimidazolium Tetrafluoroborate depends on planning ahead, watching for small deviations, and responding to feedback. We invest in both equipment and people. Every year, improved microfiltration, upgraded inert gas handling, and tighter automation deliver better results. Our focus on direct customer engagement informs incremental upgrades to both process and product. If an application arises that demands higher purity, lower trace metals, or more specialized packaging, we are ready to develop that capability—often right alongside our users.

    We also stay tuned to the latest in analytical technology. Our lab embraces online IR, mass spectrometry, and advanced spectral libraries for fingerprinting and benchmarking. Shipping samples to partners for third-party verification keeps us honest. Direct engagement with universities and industry partners, whether for catalytic breakthroughs or for recycling/recovery innovation, keeps knowledge flowing in both directions.

    Final Thoughts: Real Value Comes from Real Making

    We do not just sell bottles or drums; we invest in the long chain of relationships built on reliability, transparency, and mutual success. 1-Allyl-3-Ethylimidazolium Tetrafluoroborate draws strength not only from its unique chemistry, but from the hands-on care we pour into each batch. Our commitment shows in purity, safety, packaging, and honest feedback. You can trace what sets our product apart back to the laboratory benches and production lines where the work happens every day. In an industry where shortcuts abound but results matter most, we choose substance over slogans—and we invite partners who feel the same to join us in getting chemistry right.