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HS Code |
881894 |
| Name | 1-Allyl-3-Methylimidazolium Tetrafluoroborate |
| Cas Number | 32472-85-8 |
| Molecular Formula | C7H11BF4N2 |
| Molecular Weight | 210.98 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Density | 1.21 g/cm3 |
| Boiling Point | Decomposes before boiling |
| Melting Point | -65 °C |
| Solubility In Water | Miscible |
| Purity | >98% |
| Flash Point | >100 °C |
| Refractive Index | 1.447 |
| Storage Conditions | Store at room temperature, keep container tightly closed |
As an accredited 1-Allyl-3-Methylimidazolium Tetrafluoroborate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical is packaged in a sealed 100g amber glass bottle, labeled with safety information and chemical identification details. |
| Shipping | 1-Allyl-3-Methylimidazolium Tetrafluoroborate is shipped in tightly sealed, chemical-resistant containers to prevent moisture and contamination. It is handled as a non-flammable, corrosive liquid, requiring labeling in compliance with relevant regulations. During transit, containers are protected from heat, physical damage, and incompatible substances, ensuring safe and secure delivery to the recipient. |
| Storage | 1-Allyl-3-Methylimidazolium Tetrafluoroborate should be stored in a tightly sealed container, away from moisture and incompatible substances such as strong oxidizers and acids. Keep it in a cool, dry, and well-ventilated area, ideally under an inert atmosphere if possible. Protect from heat and direct sunlight to maintain its stability and prevent decomposition. |
Applications of 1-Allyl-3-Methylimidazolium Tetrafluoroborate in Industrial ManufacturingAs the direct manufacturer, we focus on supplying 1-Allyl-3-Methylimidazolium Tetrafluoroborate for specialized industrial sectors where its ionic liquid properties deliver clear functional advantages in established downstream applications. Below is a structured overview of major use cases, each distinguished by real-world standards, practical formulation ratios, processing stages, and typical end products that draw on our experience with actual customer integration and regulatory requirements. 1. Electroplating and Metal Surface TreatmentThis ionic liquid acts as a non-aqueous electrolyte to achieve high-quality metal finishes, especially for difficult-to-plate metals such as aluminum and its alloys. Its electrochemical stability and low vapor pressure support uniform deposition, reduced dendrite formation, and improved current efficiency in both decorative and functional coatings, particularly where low-temperature or zero-water baths are required by modern plating facilities. Industry compliance standards
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2. Cellulose Dissolution and ProcessingAs a powerful solvent for natural cellulose and certain polysaccharides, this ionic liquid enables direct dissolution, derivatization, and fiber regeneration processes without the use of hazardous carbon disulfide, which supports safer and more sustainable cellulose chemistry. Industrial plants apply it to manufacture specialty regenerated fibers and films under closed-loop recovery systems. Industry compliance standards
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3. Lithium Battery Electrolyte ComponentIn advanced lithium and sodium battery manufacturing, this compound serves as an electrolyte additive or primary solvent, supporting high-voltage stability and minimizing risk of thermal runaway compared to conventional electrolytes. It enhances ionic conductivity, cycling performance, and safety profiles in secondary batteries deployed for grid storage and portable electronics. Industry compliance standards
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4. Catalytic Reaction Media in Organic SynthesisThis material operates as a designer solvent or co-catalyst in various transition metal-catalyzed reactions, facilitating selective syntheses in fine chemical manufacturing. Its non-coordinating anion and tunable polarity make it valuable for cross-coupling, alkylation, and ring-closing processes where conventional solvents struggle to offer high selectivity or reactivity with sensitive intermediates. Industry compliance standards
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5. CO2 Capture and Gas Separation EngineeringWithin industrial flue gas and natural gas processing installations, this ionic liquid functions as an absorbent medium for selective CO2 or hydrogen sulfide capture. Its low volatility and high thermal stability support closed-cycle gas scrubbing processes, offering advantages in both pilot and commercial scale carbon capture facilities that seek to comply with evolving emission targets and process safety requirements. Industry compliance standards
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Producing 1-Allyl-3-Methylimidazolium Tetrafluoroborate isn’t just about mixing ingredients in a reactor. The process calls for a high degree of control from start to finish. We start with rigorously purified raw materials to ensure the final ionic liquid meets advanced research and industry needs. Even slight contamination in starting chemicals can compromise the entire batch. Our experience has shown that water and organic impurities not only decrease yield but directly affect conductivity and electrochemical stability, making batch quality a crucial focus at every stage.
We use carefully designed synthesis protocols to guarantee batch-to-batch consistency. Air and moisture exposure need to be minimized, and all operations take place in inert atmospheres. Years ago, we tried to accelerate drying steps by raising temperature but learned this approach risks decomposing the product or introducing unwanted byproducts. Now, we balance drying efficiency and gentle handling to deliver ionic liquids with minimal water content—verified using reliable Karl Fischer titration rather than relying on theoretical values.
Researchers and industrial users pay attention to real-world specifications, not just textbook values. For our 1-Allyl-3-Methylimidazolium Tetrafluoroborate, targeted purity generally exceeds 99%. Most users look for colorless to pale yellow liquid, with clear documentation of key parameters like water content, halide residuals, and free amine. Inaccurate or ambiguous specifications can cause major issues in sensitive applications—from trace metal extraction to organic synthesis and electrochemical devices.
A frequent question from customers concerns batch reproducibility. Developing each batch in identical reactors, with the same process conditions and purification steps, ensures tight ranges for density, viscosity, and ionic conductivity. We use independent, third-party testing for critical parameters in new production runs—especially where the liquid interfaces with precision electronics or pharmaceutical intermediates.
We see growing adoption of 1-Allyl-3-Methylimidazolium Tetrafluoroborate in electrochemical research. Its ionic conductivity and electrochemical stability window stand out, especially compared to traditional imidazolium salts. Users working with metal plating, supercapacitors, or battery electrolytes rely on stable performance through numerous cycles—something many alternative solvents can’t provide.
Chemists using this compound for catalysis or separation applications appreciate the improved solubility properties and relatively low viscosity. Unlike classic alkylimidazolium ionic liquids, the allyl substituent opens up new reactivity and often enhances phase-transfer rates. One of our clients in extractive metallurgy noted measurable improvements in yield when using 1-Allyl-3-Methylimidazolium Tetrafluoroborate as an extraction medium versus classical chloride-based options.
Another critical field involves biomass processing and cellulose dissolution. Traditional solvents fall short in disrupting complex hydrogen-bonded networks in lignocellulosic biomass without side reactions. Our customers in this area use the tetrafluoroborate-based liquid with fewer byproducts and better recovery efficiency. We’ve fine-tuned our purification—free from halide contamination and residual acidity—to protect both researchers and their downstream reactions.
Lab-scale pharmaceutical synthesis teams often approach us looking for green alternatives to volatile organic solvents. Traditional imidazolium ionic liquids sometimes present toxicity or mutagenicity flags. By emphasizing full traceability of our raw materials, and regularly testing for organic impurities, we help our partners satisfy environmental and safety demands without sacrificing performance.
Many ionic liquids on the market have similar base structures, but performance in actual systems comes down to subtle differences in composition and manufacturing method. As a manufacturer, we see that even minor changes in anion selection lead to entirely different handling, stability, and compatibility profiles. Tetrafluoroborate anions deliver a better blend of stability and flexibility than halides or more exotic formulations, especially in sensitive electrochemical platforms.
We’ve worked extensively with methyl and ethyl imidazolium analogues. Allyl substitution introduces unique solvent behavior, resulting in improved metal ion solubility and modified viscosity. Samples from competing suppliers sometimes exhibit more coloration and slow decomposition under stress, especially if recycled solvents or shortcut purification got used. Long-term storage studies in our in-house facilities show that our stringent water and impurity controls pay off in shelf life—a difference researchers and production engineers only discover after months of storage and repeated use.
As for physical parameters, rival tetrafluoroborate imidazoliums often show batch-dependent swings in density or surface tension. We keep these within narrow margins. Every batch receives calibrated verification, and our process records stretch back through every shipment. In an industry where mystery variability can halt research or production-scale work, consistent and documented quality matters more than hitting a single purity number.
Direct feedback from laboratories and factories shaped the way we package and label. Many users told us that ionic liquids supplied in untreated glass can degrade due to trace alkali leaching or unexpected interaction with container walls. Now, we offer inertized containers and vacuum-sealed ampoules on request to prevent moisture uptake and extend usable storage life.
In the field, chemists sometimes attempt to recover and recycle used ionic liquid. Solubility and volatility profiles for 1-Allyl-3-Methylimidazolium Tetrafluoroborate allow efficient post-reaction separation in many processes. Still, some recovery procedures risk introducing impurities—so we work with clients to test batches after use for contaminants, offering best-practice guidelines for cleaning and redrying.
We find that customers appreciate a forthright discussion of shelf life, not just an arbitrary “expiry date.” Decomposition, water pickup, or container incompatibility can all affect function, especially in sensitive electrochemical platforms. Our support includes routine analysis of long-term storage samples, and we publish those findings for transparency.
Demand for high-quality ionic liquids has shifted as industries adopt stricter environmental regulations and supply chain transparency. Solutions that once met experimental goals now must satisfy both regulatory frameworks and end-of-life recycling criteria. We stay ahead by maintaining complete documentation on sourcing and batch traceability, allowing process customers to include ionic liquid inputs in their hazard audits or sustainability reporting.
Innovation in green chemistry motivates new entrants to the market, but many underestimate long-term stability and trace impurity issues. Academic protocols might omit purification steps or minimize storage requirements, leading to unanticipated problems at scale. We learned—sometimes through expensive recalls—that batch variations show up first in scale-up, not on the lab bench. We invest in pilot plant simulation and real-world lifecycle testing, so commercial adopters don’t face unwelcome surprises.
Authorities worldwide care about environmental fate. Some regions restrict certain anions or require extra disposal tracking for ionic liquids. By keeping tetrafluoroborate impurity profiles well characterized, and by minimizing halogen content, we address both compliance and user-confidence demands. Regular updates from our regulatory manager go directly to our clients when requirements change, sharing clear advice rather than shifting compliance burdens.
In recent years, battery technology has moved fast. Electrolyte performance stands as a major limiter. We’ve collaborated with research teams to optimize ionic conductivity and electrochemical window of 1-Allyl-3-Methylimidazolium Tetrafluoroborate, evaluating stability under real charging cycles and high-temperature operation. These raw, applied findings let battery developers focus effort on cell design without getting sidetracked by unreliable liquid performance.
In the field of protein and DNA extraction, gentler ionic environments matter. Recent university projects used our product to replace strongly denaturing organic solvents, taking advantage of the fine-tuned polarity and minimized byproduct formation. Those results encourage new biological extractions where traditional solvents fail.
We’ve also supplied production lots to polymer chemistry labs, where 1-Allyl-3-Methylimidazolium Tetrafluoroborate serves both as a polymerization solvent and as a template agent. Because of its stable but tunable solvation properties, users reported improved control of molecular weight and fewer issues from chain-transfer events—a result that saves researchers costly rework or failed runs.
As with any specialty material, the learning curve for handling and scaling 1-Allyl-3-Methylimidazolium Tetrafluoroborate can be steep. Early adopters shared frustration with color changes and activity loss over time, especially when batches crossed multiple hands on their way to the lab. We looked at each complaint head-on, tracing it back to bottlenecks in supply chain, purity drift, or improper storage conditions.
It became clear that quality control at the manufacturing stage did not stop at the exit door. We brought in embedded QA processes, frequent retesting, and container traceability barcode systems. Rather than ducking customer issues, we encourage direct feedback on product performance—even if it means re-examining production routines for improvement. We know mistakes cost far more than incremental attention upfront.
Scalability matters because pilot-scale results can differ from industrial outcomes. Small-scale syntheses sometimes produce cleaner final product than scale-up reactors, largely due to differences in mixing, heat transfer, and purification throughput. We bring every new batch through both laboratory and pilot reactors, comparing resultant profiles side-by-side before ramping up to full-scale runs. Users get to see these process data, granting confidence well beyond generic “high purity” statements.
Contamination—especially water content and halide impurities—remains a persistent threat to consistent performance. Rather than hide behind minimum acceptable limits, we publish full impurity profiles for every lot, enabling sensitive industries to preempt compatibility or safety issues before development starts. Users who have burned through hours tracing back failed reactions or unstable cell cycles appreciate that degree of openness.
Working with end-users across research and production lines, we see 1-Allyl-3-Methylimidazolium Tetrafluoroborate outperform traditional ionic liquids in targeted metal extraction, with clear, quantitative bumps in selectivity and throughput. Where old-style chloride salts prompted equipment corrosion, the tetrafluoroborate variant prolongs hardware life and reduces downtime for maintenance.
Equipment engineers tackled clogging and fouling in continuous processing. After close collaboration, switching to our high-purity ionic liquid batches led to marked improvements in filter longevity and process uptime. We use these experiences to reinforce production controls and to guide procurement standards.
Pharmaceutical development teams cited fewer chromatographic artifacts and lower background noise using our cleaner ionic liquid product. This allows detection of real signals and speeds up the path from R&D to compliant dossier—something that rarely happens with off-brand, lower-quality products.
We do not rest on routine test results. Each year, user needs shift. Sometimes that means even tighter controls on water or organic residue; sometimes new safety labeling formats or compliance with stricter documentation needs. We invest in regular process audits and third-party certification not because of regulatory pressure, but because a surprise in critical materials can freeze innovation or halt factory lines.
Our technical support group compiles lessons from the field to refine handling and tooling guidelines for users of 1-Allyl-3-Methylimidazolium Tetrafluoroborate. Whether a customer runs a one-time high-purity syntheses or an ongoing industrial process, these insights reduce trial-and-error, keeping projects on schedule.
New market entrants and expanding use cases mean quality standards must keep rising. Universities, battery startups, metallurgy specialists, and life science labs all expect accurate reporting of chemical specifications and real support for troubleshooting. As a direct manufacturer, our ability to document every step from raw material selection through process controls to packaging and shipping stands as a practical advantage for customers facing rising compliance and reliability demands.
We’ve seen that the best results come from open dialogue: listening to feedback, anticipating issues from bench to plant, and constantly reviewing actual performance data. By keeping focus not just on purity numbers but on real-world usability and transparency, we help the chemistry community build trust in new technologies and push boundaries with confidence.
1-Allyl-3-Methylimidazolium Tetrafluoroborate continues to play a vital role as a tunable, efficient, and reliable ionic liquid across many domains. As processes and user expectations evolve, we’ll keep raising the bar, sharing both our successes and challenges as we support the next wave of innovation.