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1-Decyl-2,3-Dimethylimidazolium Chloride

    • Product Name 1-Decyl-2,3-Dimethylimidazolium Chloride
    • Alias C10m2imC
    • Einecs 700-824-1
    • 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

    185505

    Chemical Name 1-Decyl-2,3-Dimethylimidazolium Chloride
    Cas Number 298690-92-9
    Molecular Formula C15H29ClN2
    Molecular Weight 272.86 g/mol
    Appearance White to off-white solid
    Melting Point 57-61°C
    Solubility In Water Soluble
    Purity Typically ≥98%
    Storage Conditions Store at room temperature, tightly closed
    Synonyms Decyl dimethyl imidazolium chloride
    Smiles CCCCCCCCCCN1C=NC(=C1C)C.Cl

    As an accredited 1-Decyl-2,3-Dimethylimidazolium Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The chemical is packaged in a sealed, amber glass bottle containing 100 grams, labeled with hazard warnings and detailed product and supplier information.
    Shipping **Shipping Description:** 1-Decyl-2,3-Dimethylimidazolium Chloride is typically shipped in tightly sealed, chemically-resistant containers to prevent moisture and contamination. It should be kept in a cool, dry, well-ventilated location. Appropriate labeling and documentation in compliance with regulatory standards are required, and the substance should be handled by trained personnel during transit.
    Storage 1-Decyl-2,3-dimethylimidazolium chloride should be stored in a tightly sealed container, protected from moisture and incompatible materials such as strong oxidizers. Keep it in a cool, dry, well-ventilated area, away from direct sunlight and sources of ignition. Label storage clearly and prevent contamination. Follow standard laboratory safety and chemical hygiene practices when handling and storing this compound.
    Application of 1-Decyl-2,3-Dimethylimidazolium Chloride

    Applications of 1-Decyl-2,3-Dimethylimidazolium Chloride in Industrial Manufacturing

    1-Decyl-2,3-Dimethylimidazolium Chloride, an ionic liquid with unique physicochemical characteristics, finds application in critical downstream industrial scenarios that leverage its high chemical stability, solvating capacity, and functional interface modification properties. The following sections present real-world application routes, each reflecting specific compliance frameworks, practical formulation details, processing roles, and corresponding finished product types utilized in industrial environments.

    1. Electrolytes for Advanced Electrochemical Energy Storage

    Industrial lithium-ion and sodium-ion battery manufacturers use this ionic liquid as an electrolyte additive or alternative solvent to enhance ionic conductivity, thermal stability, and cycle life under demanding performance criteria. Its non-flammable nature and high electrochemical window allow engineers to design safe, high-performance batteries for grid storage and electric mobility platforms.

    Industry compliance standards

    • UN 38.3 (Transport of Lithium Cells and Batteries)
    • IEC 62660-2:2018 (Secondary lithium-ion cells for vehicular application)
    • ISO 9001:2015 (Quality Management for Electronics Manufacturing)
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances in Electronics)

    Typical usage ratio

    • Used between 5–30% (w/w) of total electrolyte solution, depending on desired ionic conductivity and compatibility with active materials; adjusted according to battery type and required thermal window.

    Downstream process integration

    • Blended with traditional organic carbonate electrolytes during cell assembly; introduced after electrode drying in dry-room conditions before direct filling into prismatic, pouch, or cylindrical cell enclosures.

    Final product types

    • High-energy-density lithium-ion batteries for automotive and stationary energy storage systems
    • Extended-cycle sodium-ion cells for grid reserve units
    • Low-temperature rechargeable batteries for aerospace and defense applications

    2. Solvent and Phase Transfer Medium in Pharmaceutical Synthesis

    Leading pharmaceutical manufacturers employ this ionic liquid as a green solvent and phase transfer agent for selective organic transformations, especially in the synthesis of active pharmaceutical ingredients (APIs) and intermediates requiring strictly controlled purity and environmental safety mandated by global regulatory systems.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • EU Guidelines for GMP Part II: Basic Requirements for Active Substances
    • USP 857 (Pharmaceutical Solvents)
    • REACH (Registration, Evaluation, Authorisation and Restriction of Chemicals, EU Regulation 1907/2006)

    Typical usage ratio

    • Generally 3–20% by weight of the reaction medium, adjusted for solubility of reactants, toxicity assessments, and downstream purification requirements.

    Downstream process integration

    • Introduced at the solvent charging step during multi-step organic synthesis; facilitates substrate solubilization and product separation prior to work-up and crystallization.

    Final product types

    • API intermediates for cardiovascular and anti-infective drugs
    • Chiral pharmaceutical precursors
    • Fine chemical reagents for clinical research chemistry

    3. Cellulose Dissolution and Processing for Specialty Fiber Manufacturing

    Manufacturers in the specialty fiber and membrane sector utilize this ionic liquid to dissolve cellulose directly from wood pulp, enabling the production of high-performance regenerated fibers and films. Its high cellulose-dissolving capacity streamlines environmentally responsible solvent spinning processes, supporting the evolving demand for sustainable textile materials.

    Industry compliance standards

    • OEKO-TEX® Standard 100 (Textile Safety)
    • ISO 14001:2015 (Environmental Management Systems)
    • ZDHC MRSL (Manufacturing Restricted Substances List for Textiles and Leather)
    • EU Ecolabel for Textiles

    Typical usage ratio

    • Cellulose dissolved in 10–25% (w/w) ionic liquid solution, further modulated based on pulp quality and target fiber cross-section.

    Downstream process integration

    • Dissolves pretreated cellulose at elevated temperatures; solution then extruded through spinnerets or cast into films before regeneration and washing steps.

    Final product types

    • Continuous cellulosic fibers for technical applications
    • Biodegradable microfiltration and ultrafiltration membranes
    • Textile-grade yarns for eco-friendly apparel

    4. Corrosion Inhibition Formulations in Industrial Water Treatment

    The formulation of corrosion inhibitors for closed-loop cooling systems and pipeline maintenance leverages the ionic liquid’s hydrophobicity and surface-modifying abilities to reduce metal ion leaching and prolong system lifespan. Its compatibility with multi-metal protection protocols enables enhanced long-term equipment reliability across chemical and utility industries.

    Industry compliance standards

    • ASTM D1384 (Corrosion Test for Engine Coolants in Glassware)
    • ISO 9001:2015 (Quality Management for Chemical Manufacturing)
    • ANSI/NSF Standard 60 (Certification for Drinking Water Treatment Chemicals)
    • European Water Directive 98/83/EC (Quality of Water Intended for Human Consumption)

    Typical usage ratio

    • Recommended concentration is 20–200 ppm in recirculating water, set after evaluating system metallurgy, water hardness, and pH fluctuations.

    Downstream process integration

    • Added during initial system fill or periodic replenishment at the water conditioning phase; compatible with blended inhibitor packages including amines and azoles.

    Final product types

    • Custom water treatment formulations for closed-circuit HVAC and industrial chillers
    • Corrosion-control blends for municipal water infrastructure
    • Maintenance chemicals for oil refinery cooling networks

    5. Antistatic Additives in High-Performance Polymeric Coatings

    Industrial coatings producers incorporate this compound in specialty primer and topcoat systems, exploiting its ionic conductivity and compatibility with conductive fillers to meet strict electrical dissipation criteria for electronics assembly plants, cleanrooms, and explosion-safe industrial flooring.

    Industry compliance standards

    • IEC 61340-5-1 (Electrostatics—Protection of Electronic Devices)
    • ASTM D257 (Standard Test Methods for DC Resistance of Insulating Materials)
    • ISO 9001:2015 (Quality Management for Coatings Manufacturers)
    • EPA TSCA Inventory (Compliance for Chemical Substances in USA)

    Typical usage ratio

    • Used at 0.1–2% by weight of total polymer matrix, determined via surface resistance targets and compatibility with resin type (e.g., epoxy, polyurethane).

    Downstream process integration

    • Pre-blended with liquid resin precursors before solvent addition; in-situ dispersion ensures homogeneous charge dissipation across cured films.

    Final product types

    • Electrostatic dissipative epoxy flooring systems for semiconductor facilities
    • Antistatic coatings for aerospace fuselage interiors
    • Protective topcoats for packaging lines in pharmaceutical manufacturing

    6. Catalytic Media for Organic Synthesis in Fine Chemicals Production

    Producers in the fine and specialty chemicals sector apply the ionic liquid as a catalytic medium, exploiting its ability to promote specific transition-metal catalyzed reactions, increase selectivity in cross-coupling, and enable catalyst recycling for improved eco-efficiency in high-volume batch and flow processes.

    Industry compliance standards

    • ISO 9001:2015 (Quality Management for Fine Chemicals)
    • EU REACH Regulation (EC 1907/2006) for Substance Registration
    • Responsible Care Management System (Global Chemical Industry Initiative)
    • GMP Principles for Fine Chemicals (where APIs or food additives are manufactured)

    Typical usage ratio

    • Usually 5–15% by weight of total reaction mixture, optimized based on catalyst solubility, turnover number requirements, and downstream product separation protocols.

    Downstream process integration

    • Introduced ahead of the catalytic step in continuous stirred-tank reactors; allows direct recycling with catalyst recovery post-reaction completion, reducing waste generation.

    Final product types

    • Specialty amines and heterocycles for agrochemical synthesis
    • Functionalized monomers for specialty polymer manufacturing
    • Electronic grade fine chemicals and intermediates
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    Certification & Compliance
    More Introduction

    Introducing 1-Decyl-2,3-Dimethylimidazolium Chloride: Practical Insights from the Source

    Getting to Know 1-Decyl-2,3-Dimethylimidazolium Chloride

    In chemical manufacturing, some products stand out not because of glossy presentations, but because their properties simply deliver in real working environments. 1-Decyl-2,3-Dimethylimidazolium Chloride—often called [Ddmim][Cl]- crosses our production lines with that in mind. Our teams watch over every batch and see firsthand how it performs against testing standards and, more importantly, in laboratories and industry pilot plants. We produce it with a molecular formula of C15H31ClN2, serving customers who need a reliable ionic liquid with specific cation and anion structures.

    Over years of consistent batches, we have found that this compound offers a unique balance between hydrophobic and hydrophilic traits. The ten-carbon decyl tail influences solubility and behavior in mixed solvent systems, which sets it apart from the more common shorter-chain ionic liquids. Production for each lot uses only carefully sourced raw materials. In practice, this ensures tight control over impurities, so downstream results speak less of variability and more of predictable chemistry.

    How Model and Specifications Shape the Material

    Not all ionic liquids are equivalent—our experience has shown this repeatedly. Longer side chains like those in the decyl group can profoundly influence viscosity and phase behavior. Our manufacturing team prioritizes purity and consistency, as any deviation affects key applications. Each batch is monitored for moisture content, color, and organic halide content; these are the details that decide whether a project using DdmimCl will go as planned.

    Standard practice at our site involves checking for chloride content and cation purity via NMR and ion chromatography. Viscosity measurements at specified temperatures are not academic exercises. They tell us what to expect in dissolution or extraction practices. Molecular weight and density profiles stay consistent between batches because scale-up from pilot to full run always includes retaining reference samples.

    One aspect that chemical engineers and researchers notice immediately is the substance's appearance—a clear, pale liquid at room temperature, sometimes solidifying below ambient storage. This shift in state is not a defect but a feature, dictated by the structure. We provide both technical and analytical grade product, and the difference shows up as tighter impurity windows and more documentation with the analytical grade. Using aggressive purification routes drives up cost but saves customers difficult separation steps later on. Our plant supervisors keep detailed logs on each run, since past experience has shown that slight variations in reactant quality—especially in the halide source—can bring about color changes and viscosity shifts.

    Using 1-Decyl-2,3-Dimethylimidazolium Chloride in Real Jobs

    This ionic liquid does more than fill a catalog slot. Customers regularly approach us with projects involving organic synthesis, extraction, and separations. The unique cation-anion pairing means it dissolves a wide range of organic and some inorganic materials, which is not always the case with common imidazolium chlorides. For us as the manufacturer, questions always arise regarding compatibility with current processes. We share application data from our own labs, especially for complex solvent extraction scenarios where materials like phenols, lignins, or heavy metals must be separated selectively.

    Chemists value the thermal stability across a wide temperature range. Our equipment operators routinely run thermal gravimetric analyses to make sure decomposition only happens well above typical reaction temperatures. We've noticed that in pilot plant settings, operators will often compare it to 1-butyl-3-methylimidazolium chloride or other shorter side-chain analogs. Here’s where decyl chains matter—the increased alkyl length boosts hydrophobicity, making phase separations faster and less prone to emulsion formation.

    In industrial electrochemistry, process engineers use it as a supporting electrolyte. Customers point out that with a longer alkyl chain like decyl, the viscosity balance improves handling while still providing very low vapor pressure. Our own technologists have tested it for cellulose dissolution, finding it especially efficient among ionic liquids. Always, the actual data comes from running parallel tests—our team is convinced (based on comparative dissolving rates and yield data) that it stands up well against most commercial competitors.

    Comparisons: What Makes This Product Different?

    Working inside a chemical manufacturing operation, you get a close-up view of the subtle but important differences between variants. 1-Decyl-2,3-Dimethylimidazolium Chloride carves out its own role, separated clearly from shorter chain imidazolium analogs like [Bmim][Cl] or [Emim][Cl]. With the decyl group, the liquid’s hydrophobicity rises, which changes how it interacts with less polar organic phases. This can mean faster extractions or more complete separations—both valuable on a process scale.

    Some customers have tried switching to our DdmimCl from common pyridinium-based ionic liquids. They typically report fewer problems with thermal degradation and better compatibility with metal-catalyzed reactions. Our own comparative studies find that the higher molecular weight also results in lower volatility, which cuts down on evaporation losses during long runs. For certain polymerizations, the longer alkyl tail helps in phase transfer catalysis, which makes a difference when scaling small laboratory work up to pilot plant trials.

    In cellulose work, operators choose DdmimCl for a reason—field data from pulp and cellulosic chemistry applications in our own test reactor confirms quicker dissolution rates and higher subsequent yields for modified fibers. Our research group notes that the chloride anion, rather than a tetrafluoroborate or hexafluorophosphate, provides a non-toxic, hydrolysis-stable medium that has less environmental baggage. No compound is perfect, and the cost per kilogram for DdmimCl is higher than some basic ionic liquids due to raw material and purification steps, but experience shows that productivity gains can often outweigh initial outlays.

    Looking at Handling and Storage for Real World Operations

    As actual manufacturers, we often get feedback from plant managers and lab staff about day-to-day handling. DdmimCl needs to be kept sealed from moisture, since the chloride salt can slowly absorb water from humid air. Storage at room temperature usually keeps the material fluid, but colder warehouses will produce a waxy or solid mass; this doesn’t degrade the product, but requires simple warming to revert to liquid. Our best practices include nitrogen blanketing after filling and using high-purity plastics or glass to avoid halide exchange with container surfaces.

    We rarely see major transport problems since the compound is non-volatile, but packaging choices—drums, HDPE bottles, or small glass ampoules for analytical grade—get matched to customer needs. The decyl tail can leach impurities from soft plastics in very long storage, so we use only approved containers. Repeated opening and closing can introduce atmospheric moisture, so we recommend single-use packaging for analytical applications. Our quality assurance cycle includes periodic retesting of retained reference samples, with detailed logs ready for inspection if compliance reviews arise.

    Quality, Traceability, and Direct Experience

    Manufacturing quality is not a box-check exercise for us. Each lot comes with a batch certificate, raw material origin trace, and spectral verification, but the most important checks happen on our production floor. Years of running high-purity ionic liquids taught us to anticipate which stages are most sensitive—chlorination, alkylation, and final purification. We've caught off-spec batches early through diligent column chromatography checks and hands-on troubleshooting by chemists who know what each expected impurity looks and smells like. We keep reference samples so discrepancies can be chased down months after production, which is a benchmark not everyone maintains.

    Auditors visiting our facility often ask about continuous improvement around sustainability and process waste. We switched to closed-loop solvent systems and heat integration partly because ionic liquid disposal is tightly regulated. Our product has lower environmental impact than fluorinated alternatives, so we heavily invested in refining our purification to reduce waste and improve yield ratios.

    Supporting Advanced Research and Scale-Up

    Our relationship with university labs and R&D groups often goes beyond simply selling material. We provide technical support, data sheets that reflect actual pilot plant data, and recommendations based on our own run histories. This approach comes from direct experience seeing academic and industrial teams struggle with impurities in off-brand material. Our operations team finds that quick, honest feedback helps customers adapt processes faster, reducing trial-and-error that can cost real money. We've had direct input into several major polymer, biomass, and metallurgical projects—all driven by process reliability and trust in the quality of our 1-Decyl-2,3-Dimethylimidazolium Chloride.

    In kinetic studies, we share data that shows how substituting our product for other ionic liquids changes process windows. Many users first notice changes in mass transfer and phase behavior—faster shaking separations in classic liquid-liquid setups, and less gumming in organic or aqueous-lean extractions. Collaboration with downstream customers often generates feedback loops. This hands-on approach feeds into continuous upgrades in our production protocols, bringing real-world insight back to our plant engineers and batch chemists.

    Managing Uncertainties and Improving Applications

    Every year, new research on ionic liquids uncovers both opportunities and challenges. Our staff keeps tabs on literature to anticipate customer questions before they're raised. Some negative headlines about ionic liquid toxicity or environmental persistence have merit, so our chemists conduct regular ecotox and biodegradability tests. Our DdmimCl product—based on non-fluorinated anions—provides lower risk profiles for aquatic toxicity than many other options in its class. We take seriously the evidence showing that proper residue management in downstream applications can help prevent environmental build-up.

    Field troubleshooting shows that, compared to basic alkyl imidazolium chlorides, our product survives harsher handling—heat, stirring, or even pilot plant mishaps—without rapid breakdown or forming stubborn emulsions. For extraction or catalysis, this stability means less downtime and better yields. We've followed customer reports on separation efficiency, and provide technical bulletins outlining how subtle hydration changes, temperature adjustments, or cosolvent tweaks can improve selectivity. All technical advice we share connects directly back to practical experience in our own plants.

    Why End-Users Return to Direct Manufacturing Sources

    Across the chemical supply industry, manufacturers know that the market is crowded with traders and resellers. We often end up fielding calls from end-users trying to validate source, origin, and properties of a lot they received through the supply chain. The variation in quality from different resale channels is obvious in plant-scale trials: inconsistent melting, off-smell, color shifts, or weird behavior in standard reactions. Our direct-from-plant customers report fewer failed syntheses, less downtime, and more reliable process outcomes than those dealing with third-party “grade unknown” suppliers.

    This type of loyalty stems from trust built over actual use, not just marketing claims. We keep running logs of customer feedback—good, bad, or unexpected. Sometimes, customers invite our technical managers to visit their own operations. These visits reveal pain points in handling, storage, and scale-up that end up improving our own processes, making each subsequent batch that much more predictable. If customers are spending thousands of hours or dollars on process improvements, they appreciate manufacturers who stand behind the material, share real data, and listen to field problems.

    Closing Thoughts—Direct Manufacturing Value

    Making and supplying 1-Decyl-2,3-Dimethylimidazolium Chloride is a hands-on, detail-oriented job. Each batch takes more than recipe-following; it depends on close monitoring, raw material QC, and real troubleshooting. Compared to typical off-the-shelf ionic liquids, our product does involve more cost and complexity, but the impact for end users is clearer, cleaner results in extraction, synthesis, and advanced industrial processes. Out in the field, customers who have tried both generic and tight-specification material from the actual maker often report the difference in time, yield, and reliability saves more than promised on paper.

    In our experience, a direct conversation—with questions, honest feedback on process realities, and shared solutions—is a better path to successful chemical manufacturing. We strive to keep our process data transparent and our support practical, drawing on everything we learn with each batch we send out into the world. 1-Decyl-2,3-Dimethylimidazolium Chloride is both a product and a story of continuous improvement, grounded experience, and collaboration between maker and user. That’s why it continues to serve demanding researchers and plant engineers who know the value of chemical quality in action.