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1-Nonyl-3-Methylimidazolium Chloride

    • Product Name 1-Nonyl-3-Methylimidazolium Chloride
    • Alias [HMIM]Cl
    • Einecs 611-013-7
    • 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
    VTB
    Specifications

    HS Code

    223314

    Cas Number 646496-58-6
    Molecular Formula C13H25ClN2
    Molecular Weight 244.80 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point Decomposes before boiling
    Density 0.95 - 1.05 g/cm³ (at 20°C)
    Solubility In Water Miscible
    Purity Typically ≥98%
    Iupac Name 1-nonyl-3-methylimidazolium chloride

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

    Packing & Storage
    Packing A tightly sealed, amber glass bottle containing 500 grams of 1-Nonyl-3-Methylimidazolium Chloride, labeled with hazard and identification information.
    Shipping 1-Nonyl-3-Methylimidazolium Chloride is shipped in tightly sealed, chemical-resistant containers to prevent moisture absorption and contamination. Packages comply with regulations for transport of non-hazardous chemicals. Shipment includes appropriate labeling, documentation, and safety data sheets. Suitable conditions such as controlled temperature and protection from direct sunlight are ensured during transit.
    Storage **1-Nonyl-3-Methylimidazolium Chloride** should be stored in a tightly sealed container, away from moisture and incompatible materials such as strong oxidizing agents. Keep in a cool, dry, and well-ventilated area, protected from direct sunlight and heat sources. Always label containers clearly and store at room temperature unless otherwise specified by the manufacturer. Use appropriate personal protective equipment when handling.
    Application of 1-Nonyl-3-Methylimidazolium Chloride

    Applications of 1-Nonyl-3-Methylimidazolium Chloride in Industrial Manufacturing

    As a manufacturer of high-purity 1-Nonyl-3-Methylimidazolium Chloride, we work directly with clients in advanced industrial sectors to optimize process efficiency, product quality, and operational safety. The following application scenarios represent established, real-world uses across core downstream industries, each with industry-specific standards, integration methods, and finished product types.

    1. Electroplating Additive for High-Performance Metal Finishing

    Electroplating facilities rely on advanced ionic liquids for enhanced metal deposition and smoother coating profiles. In particular, current industrial practice incorporates this material as a component in specialized electrolytes for non-aqueous plating systems, supporting finer particle dispersion, lower internal stress, and improved anti-corrosion performance. Operators adjust inclusion according to the desired morphologies, ion migration rates, and substrate compatibility, primarily when working with specialist alloys or for demanding decorative finishes in automotive and aerospace components.

    Industry compliance standards

    • ISO 4527 (Metallic Coatings—Electroplated Coatings of Nickel plus Chromium)
    • ASTM B567 (Measurement of Coating Thickness by X-Ray Spectrometry)
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances)
    • Automotive OEM supplier surface finish specifications

    Typical usage ratio

    • 0.2–1.5% w/w in the main electrolyte bath, variable by alloy target composition and operating temperature

    Downstream process integration

    • Direct addition to non-aqueous or hybrid ionic liquid-based electrolyte prior to current application
    • Continuous monitoring and adjustment based on bath conductivity and surface quality feedback

    Final product types

    • Corrosion-resistant decorative coatings for automotive trim
    • Precision electronic contacts
    • Aerospace fasteners with enhanced durability

    2. Ionic Liquid Solvent in Cellulose Processing for Specialty Fiber Production

    Manufacturers of regenerated and specialty cellulose fibers use this ionic liquid to dissolve high molecular weight cellulose in a closed-loop, low-VOC environment unmatched by conventional solvents. High solvating power with minimal degradation enables spinning of cellulose filaments for textile or composite reinforcement with tailored physical properties. Consistent composition and batch reproducibility of the material directly affect fiber uniformity, tenacity, and final dye uptake, driving its adoption for innovation-focused mills and research-grade pilot lines.

    Industry compliance standards

    • OEKO-TEX® Standard 100 (for harmful substance limits)
    • GOTS (Global Organic Textile Standard—processing chemicals requirements)
    • ZDHC MRSL (Zero Discharge of Hazardous Chemicals—Manufacturing Restricted Substances List)
    • REACH Regulation (EC No 1907/2006—Registration, Evaluation, Authorisation and Restriction of Chemicals)

    Typical usage ratio

    • 10–20% w/w relative to dry cellulose mass, depending on pulp purity and target fiber viscosity

    Downstream process integration

    • Primary solvent phase in cellulose dope preparation for wet spinning
    • Incorporation with anti-solvent precipitation systems to recover and recycle ionic liquid

    Final product types

    • High-tenacity viscose filaments
    • Lyocell-strengthened composites
    • Cellulosic nonwovens for filtration or hygiene applications

    3. Phase Transfer Catalyst in Industrial Alkylation Synthesis

    Chemical synthesis plants employ this imidazolium-based ionic liquid as a phase transfer catalyst for challenging alkylation and quaternization reactions, especially in the production of advanced surfactants and specialty intermediates. Its high polarity and thermal stability enable selective transfer of reactive species between organic and aqueous phases, minimizing byproduct formation and allowing for higher yields at lower temperatures. Accurate dosing and real-time monitoring are critical to maximizing throughput while maintaining adherence to safety and residual catalyst limits.

    Industry compliance standards

    • Responsible Care® process safety and product stewardship codes
    • ISO 9001:2015 (Quality Management System for chemical production)
    • REACH Annex XVII (Restriction of hazardous chemical intermediates)
    • TSCA Inventory Listing (for US chemical manufacturing)

    Typical usage ratio

    • 0.1–1.0 mol% versus limiting reagent, adjusted for substrate hydrophobicity and batch size

    Downstream process integration

    • Added to the reaction vessel prior to reagent charging, usually in closed systems with in-line separation and purification

    Final product types

    • Specialty surfactants for detergent blending
    • Alkylated intermediates for agrochemical synthesis
    • Functionalized monomers for polymer production

    4. Antistatic Agent in Engineering Thermoplastics Compound Formulations

    Producers of engineering-grade thermoplastics harness the ionic conductivity of this raw material to reduce static buildup in polyolefin, ABS, and polycarbonate compounds. Its stable integration and non-migratory character are key for applications demanding long-term electrostatic discharge (ESD) control, such as electronics casings and cleanroom device housings. Material dosing depends on polymer matrix polarity and final part thickness, and compounding conditions balance electrical properties with mechanical performance and transparency requirements.

    Industry compliance standards

    • UL 94 (Test for Flammability of Plastic Materials)
    • EN 61340-5-1 (Protection of Electronic Devices from Electrostatic Phenomena)
    • RoHS compliance (2011/65/EU for electrical/electronic components)
    • ISO 11469 (Plastics—Identification and Marking of Plastics Products)

    Typical usage ratio

    • 0.3–2.0% by weight, determined experimentally based on polymer type and target surface resistivity

    Downstream process integration

    • Incorporation during high-shear melt compounding with base resin and additive package
    • Material must disperse prior to extrusion or injection molding

    Final product types

    • Antistatic sheets for electronics packaging
    • Cleanroom assembly trays
    • Protective housings for microelectronics

    5. Electrolyte Component in Advanced Battery and Supercapacitor Manufacturing

    Battery and energy storage system manufacturers choose this ionic liquid as an additive or co-solvent for high-voltage electrochemical cells, including supercapacitors and next-generation lithium-ion batteries. Its electrochemical window and low volatility enable increased operational safety and capacity retention under demanding cycling conditions. Accurate formulation control is essential to ensure stability, prevent electrode degradation, and achieve the conductivity required by automotive and grid-scale device integrators.

    Industry compliance standards

    • IEC 62660-2 (Secondary Lithium-Ion Cells for the Propulsion of Electric Road Vehicles)
    • UN Manual of Tests and Criteria, Part III (Battery transport and safety testing)
    • SAE J2464 (Electric and Hybrid Vehicle Rechargeable Energy Storage System Safety)
    • ISO 17025 (Testing and calibration for battery materials)

    Typical usage ratio

    • 2–10% by volume in non-aqueous electrolyte systems; ratio defined based on desired cycle life, energy density, and cell architecture

    Downstream process integration

    • Solvent blending with base electrolyte prior to cell assembly under dry-room conditions
    • Strict control during mixing to prevent moisture ingress and maintain ionic purity

    Final product types

    • High-energy supercapacitor modules
    • Rechargeable lithium-ion battery cells for EVs
    • Stationary storage systems for renewable integration
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    Certification & Compliance
    More Introduction

    1-Nonyl-3-Methylimidazolium Chloride: A Closer Look at Our Manufacturing Perspective

    Our Approach to Manufacturing 1-Nonyl-3-Methylimidazolium Chloride

    Long before ionic liquids started to gain momentum in research and industry, our team invested years in optimizing the production of 1-Nonyl-3-Methylimidazolium Chloride. This doesn’t just mean producing large quantities—it means paying close attention to every step, from sourcing raw materials to the crystallization and purification methods chosen. Our expertise has allowed us to reduce impurities and batch inconsistencies, factors that often frustrate those who rely on repeatable results. Quality isn’t negotiable in chemical manufacturing, and with this particular compound, even trace contaminants can disrupt downstream processes. Our facilities use stainless steel reactors and tightly controlled conditions to minimize the risk of unwanted byproducts. When you see this product coming from an actual manufacturer, you know you’re looking at material produced by people who respond to customer feedback and adapt methods as applications evolve.

    Specifications Shaped by Real-World Demand

    The chemical structure of 1-Nonyl-3-Methylimidazolium Chloride stands out in its class. The nine-carbon alkyl chain on the imidazolium ring gives this salt a true amphiphilic character. Not every user cares about an extra carbon or two, but for those in specialty applications such as catalysis and phase separation, these details change behavior in measurable ways. Our standard grade typically offers purity above 98%, based on rigorous HPLC and NMR analysis. Through hundreds of lots, we’ve learned where impurities like bromide or other anions creep in and how to shut that pathway down. Moisture content stays consistently low—water absorbs into ionic liquids very easily, so we invest heavily in rigorous drying cycles and hermetically sealed packaging. We understand exactly how seemingly small variations in trace water content can influence solubility or conductivity in ionic liquids, which sets us apart from bulk resellers who often overlook such concerns.

    Usage Patterns We’ve Observed in the Field

    Our own clients use this product differently, depending on scale and purpose. In electrochemistry, researchers look for high ionic conductivity along with the ability to dissolve both organic and inorganic substrates. The long nonyl chain allows for a tunable degree of hydrophobicity, so we see better performance in systems where water sensitivity or organic compatibility matters. We’ve been supplying material for catalyst immobilization projects, often used to anchor transition metals or enzymes in green chemistry protocols. Customers working with cellulose processing lean on this liquid’s solvating strength—its affinity for cellulose far exceeds conventional imidazolium salts. We’ve partnered with academic groups testing anti-microbial coatings, since this compound’s cationic nature disrupts bacterial membranes, yet the longer chain slows volatilization and increases film stability. Whether scaled to kilogram or metric ton batches, these use cases push us to continuously tighten process controls and develop specialty grades suited for high-performance, low-defect environments.

    How 1-Nonyl-3-Methylimidazolium Chloride Differs from Similar Compounds

    In our labs, we often compare this compound to its shorter- or longer-chain analogues—such as 1-Butyl-3-Methylimidazolium Chloride and 1-Decyl-3-Methylimidazolium Chloride. The chain length directly impacts solubility and melting point: shorter chains tend to increase water miscibility, while longer chains boost hydrophobicity but can hinder processability because of higher viscosity or a tendency to form gels. The nonyl group strikes a careful balance. Our formulation, tested across multiple environmental conditions, avoids the sticky, hard-to-handle texture linked with longer alkyl offsets, yet it resists water uptake better than common butyl or hexyl variants. This reliability supports both bench-scale experiments and continuous processing. We get direct feedback from polymer chemistry clients who notice improved mixing and longer-term storage performance—details rarely covered in a supplier spec sheet.

    The Story Behind Product Consistency

    A lot can go wrong between raw material intake and finished ionic liquid. Years ago, inconsistent nonyl chloride supplies and drum storage practices led to batch rejections that taught us hard lessons. These days we work with vetted supply chains and minimize tolling to outside processors. Each run includes in-process checks and batch retention samples for backtracking, should a property drift outside our usual envelope. We never rely solely on post-production tests; by integrating real-time analytical tools into our reactors, staff can pivot recipes on the fly. Customers depend on this vigilance, especially those who operate under ISO or GMP mandates. If a ferric impurity, for example, spikes above our established thresholds, the entire lot is pulled for investigation—a precaution some traders simply skip to save cost. Over the years, direct manufacturer control has proven essential for tracking the root causes of anomalies, whether from batch-to-batch or with seasonal temperature shifts.

    Supplier Experience: Bridging Research and Industry

    Laboratories at research universities often lead the way in creative applications. Our relationship with these innovators means we frequently customize product volumes, packaging sizes, and quality levels. Early adopters of ionic liquids have sometimes overlooked the manufacturing source, only to be stuck later with inconsistent batches and no recourse. By producing in-house, we answer technical inquiries directly and implement tweaks to synthesis based on what users encounter downstream. These conversations have led us to produce smaller test batches with unusual counter-ions when requested, and to ramp up full production quickly as demand warrants. As manufacturing partners, we help scale reactions developed at the milligram level all the way up to pilot and commercial phase, all while keeping documentation and traceability front and center for regulatory and safety audits.

    Environmental and Regulatory Perspectives

    Ionic liquids once drew global attention for being “green” solvents, but after years of hands-on use, we’ve learned the nuance. Our chloride-based imidazolium salts degrade at variable rates in environmental settings depending on local factors. We take regulatory compliance very seriously, from registration under regional chemical inventories to pre-shipment testing for halide release and aquatic toxicity. Unlike volatile organic solvents, 1-Nonyl-3-Methylimidazolium Chloride shows almost no vapor pressure under ambient conditions—this reduces workplace exposure risk and fire hazards during handling. Still, we remain vigilant about safe transport and disposal, particularly for industrial clients operating near waterways or sensitive habitats. By keeping production in our own plants, we control effluent treatment and minimize waste—commitments that reflect direct accountability, not just paper-based declarations.

    Adaptations in Product Design

    The world of ionic liquid applications keeps evolving, so we iteratively improve batch specs as new challenges arrive. For example, some customers in the fine chemical sector recently requested improvements in thermal stability at process-relevant temperatures above 150°C. Our R&D team answered by screening non-traditional stabilizers that don’t interfere with downstream applications. These add-on steps aren’t visible in the package, but they matter for on-the-ground reliability. Similarly, industrial partners working with water-sensitive syntheses prefer ultra-low-water grades, prompting us to invest in more rigorous vacuum-drying and leak-proof drums. Suggestions from customers—such as switching anti-static liners or introducing pre-filled single-use sachets—feed directly into how we revise packaging lines. Adjustments aren’t always major, but even small changes in labeling, closure mechanisms, or transportation protocols reduce error rates, especially in extended supply chains that cross continents.

    What End Users Actually Face—and How We Respond

    We don’t only pay attention to our own processes: our team listens carefully to the chemists, engineers, and operations managers actually working with this ionic liquid. Bottlenecks rarely announce themselves inside the plant—they surface during real use, when a viscosity issue clogs dosing systems, or when an impurity delays a reaction start. Direct contact with end users has changed the way we think about quality assurance. For example, one of our European partners flagged a crystallization problem tied to temperature swings in a poorly insulated warehouse. Our technical service team cross-referenced these findings from our own retention samples and altered our shipment schedule and packaging spec for that region. Examples like these show how a true manufacturer remains engaged beyond the shipping dock.

    Differentiating our Product in the Global Marketplace

    These days, internet listings make it look like all ionic liquids are interchangeable. That’s rarely true in practice. Many traders buy in large batches, then repackage or blend material from multiple sources, leading to unpredictable performance. As manufacturers, our name is on every drum and certificate; we control not just the synthesis, but also the way each kilogram is packed and documented. Too often, we receive urgent requests from customers who’ve bought via an intermediary, only to discover residue, accelerated yellowing, or unexplained precipitates. Our hands-on approach, honed through years of feedback and process optimization, prevents such scenarios. Real production means real accountability. If a customer’s critical process fails, it’s our responsibility to work through the issue, not simply pass along blame. This is especially important for sectors like electronics or pharmaceuticals, where trace contaminants could mean product recalls or regulatory penalties.

    Science at the Core—Not Just a Commodity

    From our background as actual chemists, it’s clear that this isn’t a product you make with guesswork or minimal oversight. The underlying chemistry of 1-Nonyl-3-Methylimidazolium Chloride involves high-purity reagents and tightly controlled reaction conditions. Our decades in the business have taught us which synthetic routes minimize formation of nitrosamine or halide contaminants. Experience also tells us which purification methods hit the sweet spot between yield and final product quality. Some shortcuts in the field—like using cheaper precursors or skipping costly recrystallization steps—can temporarily cut costs, but such strategies backfire quickly. We’ve seen entire runs fail due to upstream errors, and the learning curve to prevent these mistakes is steep. Every improvement cycles back and shapes our next approach, so each year yields a product with tighter margins and fewer off-spec deviations.

    Support Beyond the Beaker

    Manufacturing this ionic liquid goes beyond a mere supplier-customer handoff. Users sometimes encounter unforeseen results—a change in reactivity, a formulation drift, or a subtle color change at scale. Because we oversee every batch, our technical assistance comes from the same people who’ve optimized synthesis parameters, monitored chromatograms, and solved drying bottlenecks. This practical, firsthand knowledge bridges theory and laboratory insight with production realities. Whether a customer faces process transfer issues or regulatory questions in a new geography, our documentation and in-house expertise mean we don’t just point to a spec sheet and step away. This kind of deep support has shaped repeat business and fostered long-term relationships with clients in Asia, Europe, and the Americas. When challenges arise, we take them personally, engaging with both process engineers and academic partners to ensure the solution sticks.

    Keeping Up With Changing Markets

    Markets ask a lot from chemical manufacturers these days. Fluctuations in raw material costs, new safety regulations, and user demands for more sustainable packaging push us to adapt quickly. The rise of “green chemistry” and circular economy goals add more weight to how we source, produce, and ship. We seek out renewable feedstocks and have reduced solvent usage during synthesis, both to cut emissions and satisfy customer stewardship programs. Our internal audits keep this ionic liquid’s environmental profile up to date, so clients aren’t left wrestling with outdated documentation. By controlling the full chain—sourcing, synthesis, purification, and packaging—we continuously adapt to this landscape, giving our customers a level of reliability they won’t find through anonymous bulk suppliers.

    Our Take on the Future: Knowledge Shared, Quality Maintained

    Looking ahead, the applications for 1-Nonyl-3-Methylimidazolium Chloride keep expanding. Battery technology, advanced polymer synthesis, antimicrobial materials, and biomass processing all present unique demands. Manufacturing remains far from a static routine—success depends on continual learning, system upgrades, and genuine engagement with the scientific community. Sharing findings, publishing best practices, and collaborating on innovative downstream uses all serve to strengthen the value chain. This mindset doesn’t just protect our reputation; it drives progress in the field, allowing users to take bigger risks in development, knowing their materials perform as intended. Our doors remain open to feedback—positive and negative—so we can keep shaping this product to meet tomorrow’s needs as reliably as it meets today’s.