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HS Code |
714004 |
| Chemical Name | 1,3-Dimethylimidazolium Chloride |
| Molecular Formula | C5H9ClN2 |
| Molecular Weight | 132.59 g/mol |
| Cas Number | 246830-96-8 |
| Appearance | White to off-white solid |
| Melting Point | 74-76 °C |
| Boiling Point | Decomposes before boiling |
| Solubility In Water | Highly soluble |
| Density | 1.10 g/cm3 |
| Ph | Approximately 6-7 (in aqueous solution) |
| Structure | Imidazolium ring with methyl groups at positions 1 and 3 |
| Iupac Name | 1,3-dimethyl-1H-imidazol-3-ium chloride |
As an accredited 1,3-Dimethylimidazolium Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White plastic bottle containing 100 grams of 1,3-Dimethylimidazolium Chloride, labeled with product name, CAS number, and safety symbols. |
| Shipping | 1,3-Dimethylimidazolium chloride is typically shipped in sealed, chemical-resistant containers to prevent moisture absorption and contamination. The packaging is clearly labeled according to regulatory standards. During transit, it is protected from extreme temperatures and incompatible materials. Appropriate documentation accompanies the shipment, and all safety guidelines for handling hazardous chemicals are strictly observed. |
| Storage | **1,3-Dimethylimidazolium chloride** should be stored in a tightly sealed container in a cool, dry, and well-ventilated area, away from moisture and incompatible substances such as strong oxidizers. Avoid exposure to direct sunlight and humidity, as the compound is hygroscopic. Ensure proper labeling and keep the storage area free from sources of ignition. Follow all relevant safety guidelines and regulations. |
Applications of 1,3-Dimethylimidazolium Chloride in Industrial Manufacturing1,3-Dimethylimidazolium chloride serves as a specialty ionic liquid with a defined profile for demanding downstream chemical transformations. Drawing from direct manufacturing experience, this section presents the core application fields where this material brings processing advantages, supported by industry-specific regulatory requirements and detailed integration methods unique to each end-use market. 1. Cellulose Dissolution and Processing for Fiber ManufacturingOur 1,3-dimethylimidazolium chloride enables efficient dissolution of cellulose, facilitating homogeneous phase processing in the industrial production of regenerated fibers such as fibers for textiles and nonwovens. End users in viscose alternatives and specialty cellulose fiber segments rely on its ability to dissolve and plasticize high molecular weight cellulose under moderate conditions, supporting closed-loop solvent recovery and environmentally preferable processes. This application supports next-generation fiber technologies targeted at both apparel and high-performance industrial uses. Industry compliance standards
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2. Catalysis and Reaction Medium in Organic SynthesisThe unique ionic environment and thermal stability of 1,3-dimethylimidazolium chloride makes it a preferred reaction medium and catalyst for selected organic syntheses, including alkylation, acylation, and cross-coupling reactions used in API intermediate production and advanced materials. Chemical manufacturers leverage its influence on selectivity, product yield, and enabling milder synthesis routes compared to conventional solvents, particularly in batch and continuous-flow systems requiring reduced VOC emissions. Industry compliance standards
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3. Electrolyte Formulation for Electrochemical DevicesAs an ionic compound with high ionic conductivity, thermal stability, and broad electrochemical windows, 1,3-dimethylimidazolium chloride finds use as an electrolyte component or additive in the fabrication of batteries and capacitors. Manufacturers in the energy storage sector apply it to optimize charge/discharge efficiency, operational safety, and lifetime of devices such as supercapacitors, lithium-metal systems, and redox flow batteries. Its integration supports both R&D scale innovation and commercial electrode coating lines. Industry compliance standards
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4. Solvent for Homogeneous Catalytic PolymerizationPolymer labs and industrial plants use 1,3-dimethylimidazolium chloride in homogeneous catalyst solutions to process polymerizations impossible in common organic solvents. Its non-volatile nature supports clean-up and recycling, and it serves as a critical aid for polymerizing polar monomers and producing specialty polymers with controlled architecture, enabling downstream applications in coatings, adhesives, and engineered plastics. Industry compliance standards
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5. Mediator in Catalytic Biomass ConversionBiorefinery operations and advanced bio-based chemical producers adopt 1,3-dimethylimidazolium chloride as a medium for catalytic conversion of lignocellulosic biomass into platform chemicals. By providing a pathway for selective fractionation and depolymerization of recalcitrant biomass fractions, this material supports higher yields of fermentable sugars and aromatics, beneficial for renewable chemical and fuel feedstock production. Industry compliance standards
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At our facility, working directly with 1,3-Dimethylimidazolium Chloride each day gives us insight you won’t get from technical brochures or trading platforms. Hands-on involvement at every stage—from raw material selection, to system monitoring during synthesis, to evaluating finished batches—lets us speak practically about this compound and the real-world needs it answers across research, industry, and applied science.
On the shop floor, what sets 1,3-Dimethylimidazolium Chloride apart starts with its stable, ionic liquid form. In routine synthesis, this means the product’s high purity and consistent melting point aren’t just theoretical—they actually make every charge more predictable and every downstream process simpler to control. Every batch runs through our finely-tuned distillation and purification steps, not to meet vague benchmarks but to ensure color, odor, and trace water content hit the same reliable standards week in, week out.
People often ask why 1,3-Dimethylimidazolium Chloride keeps showing up in important research and industrial workflows instead of conventional salts. It comes down to its ionic liquid nature and the way its structure—two methyl groups on the imidazolium ring bonded to a chloride anion—affects behavior in solution and under demanding conditions. In our daily process, the low volatility and strong thermal stability make it stand out next to alkali metal chlorides or more basic quaternary ammonium salts. Where those might decompose or introduce impurities, our 1,3-Dimethylimidazolium Chloride keeps its structure, even as temperatures climb or exposure lasts for hours on end.
Each kilogram we send out comes off the production line with the kind of uniform consistency that’s hard to find when buying from a distributor or blending secondary components. Whether the batch is destined for organic synthesis or advanced catalysis, the product drips off the line in a clear, highly mobile liquid. Simple as that sounds, getting here took years of hands-on improvements—there’s no shortcut for the repeated calibration and feedback from end-users. Our specifications aren’t plucked from thin air; they’re hammered out through constant dialogue with labs and plants that expect the same result every time.
In our experience, the priority when handling 1,3-Dimethylimidazolium Chloride comes down to moisture content and material integrity. For catalysis in ionic liquid applications, hydrogen bonding with water can throw an entire run off balance. We cycle every batch through vacuum drying and tightly monitor for trace water. In production, if the melting range shifts outside the expected zone, or if haze appears during visual inspection, those lots never make it past our doors. The white, free-flowing solid we pack doesn’t just meet spec sheets—it meets the practical standards demanded by experienced users who have faced production interruptions from low-grade material bought elsewhere.
It’s also worth pointing out the physical handling improvements we’ve made over the years. Bulk processing and repackaging introduce the risk of micro-contamination and caking, challenges we solve by filling within controlled environments and using anti-static packaging. We don’t tout these steps as marketing points, but the absence of dust, crust, and spillage at customer sites shows the results. When every kilo pours out cleanly, productivity stays high from start to finish.
We see a broad and fast-moving range of uses for 1,3-Dimethylimidazolium Chloride. On the bench, synthetic chemists prize it for dissolving a wide array of biomolecules and stable organometallic species—the salt’s natural ionic liquid behavior enables reactions that are hard to pull off in common organic solvents or other salts. Our customers in the field of cellulose processing lean on this product as a critical medium for dissolving complex biomasses, opening up new potential for greener chemistry and sustainable materials research.
In catalysis, researchers and process engineers value the way this compound stabilizes transition states during challenging organic conversions. We supply it to multiple pilot plants using it as a co-catalyst, and the feedback is clear: its unique cation-anion interaction in solution often tips the balance toward higher yields and cleaner separations. Consumers in battery research and advanced electrochemistry point to its wide electrochemical window as a difference-maker, supporting work on new energy storage technologies and ionic device prototyping.
Each industrial process that chooses our product sees actual, practical benefits. It doesn’t just function as a salt—its combination of low volatility, thermal resilience, and broad solvency unlocks reaction spaces that weren’t previously accessible with standard reagents. From our position as actual producers, working daily alongside chemists and engineers, we’ve watched as 1,3-Dimethylimidazolium Chloride enabled a real leap in fields like biopolymer fractionation and ionic liquid-based separations.
For technicians and engineers sorting through options on the market, the difference between our 1,3-Dimethylimidazolium Chloride and standard alternatives feels distinct in practice. Many get their start working with common quaternary ammonium or phosphonium salts, which offer low cost and abundant supply but break down under sustained heat or in oxidative conditions. We see firsthand the shift among users moving toward imidazolium-based salts, where high-purity, thermally-stable batches distinguish themselves through fewer side reactions and cleaner product isolation.
Other chloride salts, especially those based on alkali metals, co-crystallize with water, leading to issues with solution control and downstream corrosion in metal process equipment. The 1,3-dimethylimidazolium cation changes that equation. It delivers a controllable viscosity profile and predictable solubility, even under high-concentration conditions where non-ionic or hydrated salts would fall short. Users aren’t stuck painstakingly drying and screening their reagents—our direct-from-manufacturer workflow gives what they actually need, with documentation rooted in concrete test results, not remote paperwork.
Competitors might offer broader product lines, but as actual producers, our skill comes from deep, iterative improvements to a few critical products. By controlling synthesis, we keep impurities like trialkylimidazolium side products, halide cross-contamination, and trace metals far below practical detection limits using in-house methods developed by our own chemists, not adopted from third parties. Users benefit from this single-minded focus, as process consistency and long-term supply reliability bring down hidden costs over time.
Many voices in the market talk about transparency, but putting it into practice comes from running the production line yourself—feeling the charge balance shift during a run, watching crystallization form, and measuring the ambient humidity in real time. When our team refines batch protocols, it isn’t speculation or pure research. It’s a necessary response to actual feedback from customer processes encountering tough runs or regulatory requirements.
In past years, requests from newer industries—particularly those focused on sustainability—have pushed us to scrutinize every step for both yield and safety. Our raw material acquisition avoids trace organic impurities and environmentally problematic feedstocks. Handling spent process streams involves tailored recycling pathways. Everything produced stays traceable back to the actual lot and reactor it came from. This kind of chain of custody comes directly from being the manufacturer, not a loose reseller with limited production insight. We’ve learned there’s no substitute for direct oversight; the work done during shift changes and after-hours startups shapes not only the chemical purity, but the day-to-day operational dependability.
Our customers, from research institutes to technology-scale manufacturers, constantly share results about how 1,3-Dimethylimidazolium Chloride performs beyond simple checkbox requirements. In cellulose fractionation, for example, the compound’s capacity to dissolve recalcitrant raw fibers outpaces that of most rival ionic liquids. This matters for bioplastics and green solvent development, sectors where both performance and lifecycle impact draw increasing scrutiny.
A side effect of being on the frontlines as a manufacturer is seeing precisely where and how standard products sometimes fall short. In battery and electrochemical device work, small anomalies in water contamination or cation purity can derail performance. By keeping the full synthetic route under one roof and maintaining years of robust analytical data, we provide a material that not only meets theoretical needs but also passes the tough daily practical tests applied by technical users under production pressure.
We invest in tank farms and modular reactors to expand volumes without sacrificing oversight, and run parallel QC testing for every production shift, not just at the beginning and end of a campaign. In the rare event of a defective lot or a question about unusual side products, our team can trace each drum or sack back to the day and hour it was produced, then work directly with the user to troubleshoot and suggest onsite adjustments. This responsiveness distinguishes real manufacturers from third-party suppliers cycling off-the-shelf goods.
True manufacturing involvement shapes not just the specific properties of 1,3-Dimethylimidazolium Chloride, but the way we participate in the larger movement toward safer chemicals and reduced environmental impact. While ionic liquids, including ours, open new doors for green process design, they also introduce unique waste and lifecycle questions.
Instead of offloading end-of-life management on downstream users, we support recovery and reconditioning programs where possible, aiming to reduce the overall impact of process chemicals in supported industries. Our involvement is rooted in the recognition that, even with careful handling, every chemical output leaves a footprint. It’s not enough to push for high-purity specs—responsibility means developing drums and totes that allow easy drainage, designing labeling that supports hazard awareness at a glance, and guiding customers about safe use without hiding behind policy or compliance jargon.
This practical perspective, shaped by decades on the factory floor and hundreds of conversations with professional users, ensures every update to our process stands up to real scrutiny. We don’t chase every trend, but when new regulatory standards arrive or as pushback about legacy process byproducts increases, we meet these changes head on with in-house analysis and direct feedback loops, not with distant, inflexible bureaucracy.
In the current R&D landscape, 1,3-Dimethylimidazolium Chloride often gets selected not simply for cost—more for the performance margin it brings to exacting research. Chemists looking to break bottlenecks in C-H functionalization or transition-metal-catalyzed coupling reactions return to imidazolium chlorides because of their ease of solvation and limited background reactivity. We work directly with advanced laboratories pushing productivity in these sectors, adapting purity and moisture control methods based on their direct findings, so results remain reliable and reproducible.
For pilot plants or emerging commercial-scale applications, our product’s behavior under batch and continuous process conditions remains transparent. We furnish not just technical data, but open lines of communication about everything from container compatibility to recovery workflows. When researchers explore second-life options for used ionic liquids, or need advice about filtration and reuse, we draw on direct field trials to suggest workable paths, informed by ongoing collaboration rather than marketing claims.
At its core, our drive to produce consistent, specification-grade 1,3-Dimethylimidazolium Chloride comes from long-term engagement: running the same reactors, seeing what happens year on year as materials and demands evolve. In an era oversaturated by commodity suppliers and shifting platforms, the day-to-day life of a real producer carries lessons worth sharing. The “why” behind every improvement, from tighter regulatory compliance to better drying and packaging, comes out of real operating experience and the need to keep supply chains, plant throughput, and end-user satisfaction high.
For those investing in technology development, scale-up, or new applications, our constant effort to meet evolving requirements keeps us connected to the wider chemical community—beyond the walls of our factory, and close to the real advances happening in labs and plants that rely on committed, hands-on suppliers. The dialogue we share with professional users guides our upgrades, our on-call technical support, and the ongoing drive to deliver products that work as well in practice as they do on paper.
Adaptability, not tradition, drives our progress. We draw on the feedback from respected researchers, process chemists, and industry partners, using their tough questions and demanding trials as direction for the next iteration of our product. Efficient communication between the end users and internal manufacturing engineers means challenges surface early, and solutions make their way onto the shop floor without delay.
We recognize that every sector using ionic liquids faces its own constraints, whether budgetary, technical, or regulatory. That’s why our single-minded focus and integration—from batch reaction to packing and shipment—results in a material that covers more than just a line on a specification sheet. Customers return for support not just because our product delivers, but because the real-world insight we share comes straight from those responsible for each kilo’s creation.
Our work as a true chemical manufacturer means staying available after the shipment leaves our facility. Whether the question involves scale-up, batch optimization, or safe recycling, our team answers from first-hand experience, using field data and process logs instead of sales scripts. By collaborating with end users in this way, we help ensure that 1,3-Dimethylimidazolium Chloride continues to enable cleaner, higher-performing, and more reliable chemistry, wherever it gets put to work.
Anyone looking to upgrade processes, pioneer new reactions, or push the limits of existing technology benefits from a dependable source of real, well-characterized ionic liquid—not simply a bottle on a shelf, but a true partnership with the people and processes behind every molecule.
For us, producing 1,3-Dimethylimidazolium Chloride isn’t a sideline or a trend; it’s a commitment built on years of investment and close attention to detail. Every new requirement from the community—whether it focuses on scale, trace impurities, or environmental compliance—feeds back into our protocols. We keep building on these lessons, making sure that each pallet we send out reflects the hard-earned experience of producers working alongside the industry they supply.
Wherever innovation and reliability matter, and where every process win counts, we’re ready to provide more than simple supply. Users who partner directly with manufacturers gain not just a reagent, but a resource shaped by daily work and dedicated to making each application succeed without compromise.