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HS Code |
386212 |
| Chemical Name | 1-Hydroxyethyl-2,3-Dimethylimidazolium Chloride |
| Molecular Formula | C7H13ClN2O |
| Molecular Weight | 176.65 g/mol |
| Appearance | White to off-white solid |
| Cas Number | 71850-84-5 |
| Melting Point | 110-115°C |
| Solubility | Soluble in water |
| Density | 1.15 g/cm³ (approximate) |
| Purity | Typically >98% |
| Storage Conditions | Store in a cool, dry place, tightly closed |
| Boiling Point | Decomposes before boiling |
| Synonyms | HEMImCl, 1-(2-Hydroxyethyl)-2,3-dimethylimidazolium chloride |
| Ec Number | None assigned |
| Stability | Stable under recommended storage conditions |
As an accredited 1-Hydroxyethyl-2,3-Dimethylimidazolium Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The 100 g chemical is packaged in a white, tightly sealed HDPE bottle with a tamper-evident cap and GHS-compliant hazard labeling. |
| Shipping | 1-Hydroxyethyl-2,3-Dimethylimidazolium Chloride is typically shipped in tightly sealed, chemical-resistant containers to prevent moisture absorption and contamination. It should be transported under ambient conditions, avoiding direct sunlight and extreme temperatures. All packaging and labeling must comply with relevant regulatory guidelines for chemical transport, ensuring safe and secure delivery. |
| Storage | 1-Hydroxyethyl-2,3-dimethylimidazolium chloride should be stored in a tightly sealed container in a cool, dry, well-ventilated area, away from direct sunlight, moisture, and incompatible substances such as strong oxidizers. Keep the container tightly closed when not in use, and store at a controlled temperature to prevent decomposition or contamination. Properly label the storage area and use suitable personal protective equipment when handling. |
Applications of 1-Hydroxyethyl-2,3-Dimethylimidazolium Chloride in Industrial ManufacturingThe following sections detail key industrial applications where 1-Hydroxyethyl-2,3-dimethylimidazolium chloride delivers reliable ionic conductivity, phase transfer, and solubilization advantages in advanced manufacturing scenarios. As the direct manufacturer, we provide the material at consistent specifications for integration into established chemical processing workflows. Our technical support covers process optimization, compliance, and end-use requirements in each of these specialized downstream markets. 1. Electrolyte Additive for SupercapacitorsSupercapacitor production utilizes this ionic liquid derivative as a functional electrolyte additive. It improves ion transport, thermal stability, and voltage window expansion in hybrid electrochemical double-layer capacitors. Processing incorporates the compound into solvent or polymer electrolyte systems where consistent molar ratios and moisture control are critical. Meticulous analytical controls ensure trace impurity levels remain below industrial limits to protect device reliability. Industry compliance standards
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2. Phase Transfer Catalyst in Pharmaceutical SynthesisIn pharmaceutical API manufacturing, this material functions as an efficient phase transfer catalyst. It specifically accelerates nucleophilic substitution and alkylation reactions involving polar and nonpolar phases. Production environments rely on this catalyst to boost reaction yields, minimize side product formation, and conform to green chemistry protocols by reducing organic solvent use. Full traceability and batch analytics ensure residual catalyst removal to suit regulatory audit trails. Industry compliance standards
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3. Cellulose Dissolution for Advanced Fiber SpinningThis ionic compound is directly employed as a cellulose solvent in the next-generation fiber industry. Manufacturers use its strong hydrogen bonding disruption in controlled dissolution of pulp for wet spinning of regenerated cellulose fibers. Compared to traditional NMMO or viscose processes, application of this material reduces by-product formation and streamlines solvent recycling, benefitting both closed-loop integration and fiber quality assurance programs. Industry compliance standards
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4. Electrolyte Component in Electroplating for Functional CoatingsIn metal finishing, this imidazolium-based additive is applied to custom electroplating baths to adjust ionic strength and deposition characteristics. Its use supports uniform layer growth, improved current efficiency, and process bath lifetime during deposition of advanced metallic and alloy films. Strictly monitored electrolyte parameters prevent contamination or deposit defects, and detailed records match end-user technical documentation requirements. Industry compliance standards
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Decades running chemical synthesis lines show which materials actually deliver results in modern production. 1-Hydroxyethyl-2,3-dimethylimidazolium chloride earns its place on our plant floor through reliability, precise reactivity, and stability under stress. We’ve handled thousands of compounds—most can’t match the operational consistency this ionic liquid brings to the table. Engineers and technicians on our team use it to break bottlenecks, boost outputs, or reduce the need for harsh reaction conditions. Our customers often look for alternatives after struggling with imidazolium derivatives that break down, clog equipment, or generate questionable purity with each run. This product cuts through those problems with a track record that speaks for itself.
Our 1-hydroxyethyl-2,3-dimethylimidazolium chloride comes from years invested in purification steps and process controls. By holding every production batch to tight conductivity and water content targets, we make sure researchers and plant operators don’t waste time recycling or troubleshooting contaminated charges. One particular focus behind our process is phase stability. Many imidazolium salts claim to resist decomposition in high-temperature or strongly basic systems—ours does so in real reactor conditions, not just on paper. We’ve collaborated with partners facing water-sensitive transformations and they report robust product yields, with less post-process scrubbing or rework.
As a chemical manufacturer, every step is designed around maintaining high purity. 1-Hydroxyethyl-2,3-dimethylimidazolium chloride batches consistently show purity levels above 99% by HPLC. Typical water content after drying drops below 500 ppm, giving chemists room to carry out moisture-sensitive work. Our customers see minimal color or turbidity, so downstream discoloration isn’t a concern. Each drum and bottle ships with supporting analysis drawn straight from the batch—no recycled certificates, and no skipping over trace impurity checks.
Weight and packaging formats fit industry workflows. Most research-scale users prefer 100-gram to 1-kilogram granulated or crystalline product, packed under nitrogen. Industrial operators who scale up can order from 10 to 200 kilograms in sealed steel drums, with custom options for inert atmosphere preservation if needed. Over the years, we’ve learned that quality at this level means zero tolerance for cross-batch contamination, and our crew keeps detailed logs for every lot that leaves the facility.
Our manufacturing team stands firmly behind this specific cation–anion pairing because it opens up true flexibility in design. The 1-hydroxyethyl group changes the polarity profile of the molecule, making it more adaptable for dissolving and stabilizing both inorganic and organic compounds. Colleagues pitching similar imidazolium salts sometimes overlook how minor substitutions impact downstream handling: increased viscosity, slower dissolution, or problems in catalysis cycles. The two methyl groups at positions 2 and 3 help this chloride salt strike the right balance between ionic mobility and chemical resilience.
It didn’t emerge overnight. In R&D, early batches had trouble with shelf life and hydrolysis under humid air. Pushing past those trials required redesigning purification columns and optimizing the drying steps. Our persistence paid off with a version that withstands atmospheric exposure long enough for safe weighing and transfer, even in humid plants or field laboratories.
This product began as a niche material tailored for academic ionic liquid studies, but it grew into a staple for a wider range of industries. Process engineers in pharmaceuticals rely on the predictable solvation properties of 1-hydroxyethyl-2,3-dimethylimidazolium chloride to dissolve challenging intermediates without turning to strongly acidic or caustic alternatives. Polymer laboratories explore it as a recyclable replacement for traditional organic solvents, and they keep coming back due to its ease of recovery and reduced environmental load compared to legacy options like DMF or NMP.
Electrochemical companies, especially those focused on batteries or supercapacitors, take advantage of the thermal stability at elevated temperatures. In our own testing, we monitored performance above 100°C over extended cycles and saw consistent current efficiency. This stability means battery chemists don’t end up troubleshooting mysterious drifts or performance losses traceable to solvent breakdown. Lab-scale developers confirm their data in scale-up runs, and batch-to-batch differences stay minimal, thanks to our manufacturing controls.
Catalysis teams find value in the compatibility of this ionic liquid with a broad spectrum of transition metal complexes. We’ve fielded inquiries from groups struggling with catalyst deactivation caused by imidazolium salts that leach, degrade, or introduce problematic anions. The pairing of the 1-hydroxyethyl-2,3-dimethyl imidazolium cation with chloride creates conditions that improve turnover number and avoid fouling. In some cases, customers report regenerating catalyst beds with less downtime or waste compared to traditional organic bases or salts.
Other ionic liquids line the shelves, but too many stop short at “novelty chemistry” and don’t scale to production. We’ve tested side-by-side with 1-butyl-3-methylimidazolium chloride, 1-ethyl-3-methylimidazolium acetate, and a few tetraalkylammonium analogs. In every major trial touching catalysis or material processing, 1-hydroxyethyl-2,3-dimethylimidazolium chloride demonstrated faster phase separation and fewer issues with residual color or odor. This matters when you run overnight or continuous processes—nobody wants persistent off-notes or unknown side products blending into valuable APIs or specialty polymers.
Our experience says most reported “universal” ionic liquids falter the moment water content edges above a certain point, or the system heats beyond moderate lab temps. The hydroxyethyl side chain on our product acts as a buffer, maintaining solubility and ionic strength in real-world processing streams that never match the tidy conditions of a well-controlled glove box. Over dozens of projects, our clients encounter fewer crystallization or precipitation problems, which keeps filter press and centrifuge maintenance to a minimum.
A robust material at bench scale doesn’t always translate to pilot or industrial runs. We see the switch to our 1-hydroxyethyl-2,3-dimethylimidazolium chloride make the difference when it comes to time in reactor, separation ease, and waste reduction. When teams compare time to complete a multi-step synthesis, the gains in throughput keep production lines free and reduce overtime hours.
University labs frequently approach us for advice on tuning the ionic liquid for new applications: chiral resolution, CO2 absorption, enzyme stabilization, or even specialty coatings. Each time, the margin for success widens thanks to predictable physical and chemical behavior batch after batch. Our technical staff answer questions directly from the production floor, not a call center or outside consultant, adding practical details that save customers money and headaches in troubleshooting.
As the team actually synthesizing, refining, and packing each shipment, the story of 1-hydroxyethyl-2,3-dimethylimidazolium chloride is built on discipline, not just theory. We trace impurities from starting raw materials all the way through end-of-line analysis. Quality assurance runs daily alongside batch production, verifying melting point, hygroscopicity, and density. We know every handling step—right down to the transfer hoses and filter housings—contributes to delivering a product that actually matches lab-sheet numbers in your operation.
Industry demands transparency today, and rightly so. Our customers can walk through our facility, observe how we isolate and package ionic liquids, and see how we handle each deviation or batch hold. Trust grew from correcting mistakes, learning from feedback, and maintaining a team who understands the stakes if anything less than our best leaves the shipping dock. Year-on-year, repeat clients increase, with feedback consistently emphasizing reliability, fast troubleshooting, and support founded on experience in scaling up the material.
Environmental pressures push every manufacturer, ourselves included, to find safer, more responsible materials. 1-Hydroxyethyl-2,3-dimethylimidazolium chloride has gained ground because it enables milder reaction conditions. This reduces both energy inputs and the need for aggressive, toxic solvents. In our own processes, switching to this ionic liquid has trimmed solvent disposal costs and improved operator safety metrics.
The current regulatory environment places a premium on chemicals with low toxicity profiles. By providing a high-purity ionic liquid that achieves high yields with gentle conditions, we help downstream users stay in compliance with tightening restrictions—not only in the EU or North America, but in industrializing economies where control standards rise year after year. It’s common for clients to loop back with life cycle analysis data, and the results routinely show improved scores for environmental impact, compared to traditional alternatives or impure versions of competing salts.
Rapid change defines the chemical landscape today. Each year, industries seek ionic liquids with more tailored reactivity, higher stability, and ease of recycling. As demand for process intensification grows, our team keeps investing in R&D—not just to keep up, but to set the pace for what reliable production should look like. We treat each feedback loop—client trials, failed reactions, or purity upgrades—as valuable data.
Maintaining a competitive edge means new analytical methods, tighter controls on trace contaminants, and expanding processing capacity for larger volumes. With 1-hydroxyethyl-2,3-dimethylimidazolium chloride, we’ve built a foundation strong enough to adapt to new regulations, emerging quality benchmarks, and fresh application areas. As requests for specialized grades arise, from high-purity electronics uses to pharma-grade intermediates, we configure purification and packaging to suit evolving needs, while doubling down on documentation and audit readiness.
Our supply partners work with us to secure consistently pure inputs, minimizing the risk of disruptions common in a volatile raw material market. For customers, that translates to steadier pricing, more predictable production schedules, and less time spent qualifying new sources.
Every shipment of 1-hydroxyethyl-2,3-dimethylimidazolium chloride reflects our direct experience in sourcing, purification, packaging, and support. Reliability starts on the factory floor and is shaped by daily lessons balancing quality, cost, workflow, and end-use demands. We’ve witnessed shifts away from short-lived “designer” ionic liquids toward durable, scalable solutions that support both R&D breakthroughs and the fast pace of commercial chemical manufacturing.
The feedback from users across fine chemical, electrochemical, and materials engineering sectors drives us to keep improving—and to honestly communicate both the possibilities and limitations this product brings. If a new application shows unique performance needs, our technical staff stays available, ready to offer troubleshooting rooted in real plant experience. We see ourselves not just as suppliers, but as partners in achieving higher yields, safer operations, lower environmental footprints, and smoother transitions from trial batch to full-scale chemical production.