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1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate

    • Product Name 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate
    • Alias MMIM BF4
    • Einecs 812-416-3
    • 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

    923873

    Product Name 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate
    Cas Number 201822-50-2
    Molecular Formula C8H13BF4N2O2
    Molecular Weight 256.00 g/mol
    Appearance White to off-white solid
    Melting Point 78-82°C
    Solubility In Water Soluble
    Density 1.38 g/cm³
    Boiling Point Decomposes before boiling
    Storage Conditions Store at room temperature, tightly sealed, avoid moisture
    Purity Typically ≥97%
    Synonyms 1-(Methoxycarbonyl)methyl-3-methylimidazolium tetrafluoroborate
    Smiles COC(=O)Cn1cc[n+](c1)C.[BF4-]
    Inchi InChI=1S/C8H13N2O2.BF4/c1-10-5-4-9(3-6-10)7-8(11)12;/h4-6H,3,7H2,1-2H3;/q+1;-1

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

    Packing & Storage
    Packing 100g supplied in a sealed amber glass bottle with a tamper-evident cap, labeled with product name, formula, and safety information.
    Shipping Shipping of **1-(Methoxycarbonyl)methyl-3-methylimidazolium tetrafluoroborate** requires secure, sealed containers, protection from moisture, and storage at room temperature. The chemical is typically shipped as a non-hazardous material, but all regulatory requirements and safety data sheet (SDS) guidelines should be followed to prevent exposure or accidental release during transport.
    Storage Store **1-(Methoxycarbonyl)methyl-3-methylimidazolium tetrafluoroborate** in a tightly sealed container, away from moisture and strong oxidizing agents, in a cool, dry, and well-ventilated area. Avoid exposure to direct sunlight and incompatible materials. Ensure all containers are properly labeled and handled using appropriate personal protective equipment, including gloves and eye protection, to prevent contact and contamination.
    Application of 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate

    Applications of 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate in Industrial Manufacturing

    Our proprietary 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate plays a significant catalytic and functional role across select downstream industries. The material’s ionic liquid properties, chemical stability, and compatibility with advanced processing requirements have led to specialized adoption in several regulated, application-driven sectors. Below, we detail the main industrial uses verified by downstream partners, including context for compliance frameworks, process integration stages, dosage rationale, and examples of finished products.

    1. Homogeneous Catalysis for Pharmaceutical Intermediate Synthesis

    Chemical manufacturers adopt this ionic liquid as a reaction medium and phase transfer catalyst in the synthesis of selected pharmaceutical intermediates, particularly for alkylation and nucleophilic substitution steps. The compound’s low volatility and thermal stability enable controlled reactions, facilitating improved yields and purity for active ingredient precursors. Manufacturers thoroughly assess batch records and precise dosage tuning to meet GMP and purity standards while avoiding cross-contamination risks often associated with traditional volatile solvents.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Parts 210/211 (cGMP regulations)
    • European Pharmacopoeia (Ph. Eur.) guidelines for solvent residues

    Typical usage ratio

    • 5–12% w/w of total reaction mass, with adjustments based on substrate solubility, scale, and reaction temperature; higher concentrations facilitate substrate activation but require downstream purification checks.

    Downstream process integration

    • Charged simultaneously with reactants at the batch reactor loading stage, generally before controlled feed of limiting reagent; typically recovered post-reaction by distillation under vacuum or aqueous wash, minimizing residual ionic liquid in final API intermediates.

    Final product types

    • Sartan intermediates
    • Chiral amine precursors
    • Heterocyclic building blocks for CNS actives
    • API-grade substituted imidazoles

    2. Electrolyte Component in Electrochemical Synthesis of Specialty Chemicals

    In the fine chemical sector, the ionic liquid functions as a key electrolyte constituent during electrochemical synthesis of aromatics, organometallic complexes, and fluorinated intermediates. Its exceptional electrochemical window and low corrosivity enable operators to maintain high Faradaic efficiency while decreasing electrode passivation. The precision in concentration and purity directly impacts product performance indices and regulatory acceptance for further downstream usage.

    Industry compliance standards

    • REACH Regulation (EC) No 1907/2006 – chemical safety and handling
    • ISO 9001:2015 for chemical production traceability
    • DIN EN ISO 14001 for environmental management in chemical processing

    Typical usage ratio

    • 3–7% by volume in electrolyte solution; proportion determined by reaction kinetics, target voltage range, and supporting salt requirements.

    Downstream process integration

    • Dosed into the electrolyte reservoir alongside supporting salts and co-solvents prior to circulation in flow cell or batch electrolyzer; controls ion transfer and product selectivity throughout electrosynthesis run, facilitating subsequent isolation of target molecule post-electrolysis.

    Final product types

    • Electro-oxidized aromatic compounds
    • Specialty organofluorine intermediates
    • Conductive monomers for electronics chemicals
    • Functionalized metal-ligand complexes

    3. Solvent and Reaction Medium in Polymer Crosslinking Processes

    Polymer manufacturers leverage this compound as a non-volatile solvent and reaction medium in ionic crosslinking and in situ polymerization of polyimides and fluoropolymers. Its ability to solubilize polar monomers and modulate ion transport during curing yields tailored material properties in the resulting polymer matrix, supporting structural performance and chemical inertness for high-value industrial films and engineered plastics. Dosage strictly follows reactivity and batch viscosity targets established through QC validation.

    Industry compliance standards

    • ISO 9001/14001 series for polymer manufacturing
    • ASTM D883 polymer terminology and processing guidelines
    • Applicable RoHS/REACH directives for permitted process chemicals

    Typical usage ratio

    • 10–18% by weight of monomer batch, optimized in relation to degree of polymerization, process temperature, and final product thickness.

    Downstream process integration

    • Introduced during initial reactant mixing in the polymerization vessel; remains through the polymerization and curing cycle, then mostly recovered in post-cure washing or vacuum stripping before pelletizing or film casting.

    Final product types

    • Crosslinked polyimide films for flexible electronics
    • Fluoropolymer composites for chemical-processing gaskets
    • Ionic-conductive membranes used in electrochemical devices

    4. Stationary Phase Carrier in Advanced Chromatography Column Production

    Specialty chromatography equipment producers employ the compound for surface modification and as an embedded stationary phase carrier for liquid chromatography columns. It imparts targeted selectivity for polar analyte separation, improves phase stability under pressure, and withstands aggressive, repetitive solvent flows. Dosage and process specifics depend on targeted analyte and column bed geometry, as well as regulatory requirements for end-user laboratory certification.

    Industry compliance standards

    • ISO/IEC 17025:2017 for laboratory devices and reference materials
    • USP <621> Chromatography (stationary phase specifications)
    • EU In Vitro Diagnostic Regulation (IVDR) – for analytical consumables

    Typical usage ratio

    • 1–4% by weight of total stationary phase composition; adjusted for targeted retention time, analyte class, and solvent compatibility.

    Downstream process integration

    • Applied via co-deposition or immobilization onto silica or polymer substrate during slurry packing of chromatography columns; excess ionic liquid removed through post-bed conditioning, ensuring target interactions for applied analytical protocols.

    Final product types

    • HPLC analytical columns for pharmaceutical QA/QC
    • Preparative chromatography columns for fine chemical isolation
    • Columns used in food contaminant analysis
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    Certification & Compliance
    More Introduction

    Introducing 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate: Expertise in Specialty Imidazolium Salts

    Our Roots in Imidazolium Chemistry

    Every manufacturer in this field knows that the tiniest structural change in an imidazolium salt can turn a routine application into a turning point for innovation. 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate has shown chemists and engineers new directions, especially where clean, controlled, and highly tunable ionic liquids matter most. We have spent years focusing efforts on ionic liquid synthesis, perfecting our approach to molecular consistency and purity through countless production runs. Over time, an eye for process details has become habit, while each feedback cycle and set of analytical results has reinforced what matters to customers: dependable composition and reliable real-world handling.

    Product Profile: What Sets It Apart

    Our 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate stands out due to its molecular design. The methoxycarbonylmethyl group attached to the imidazolium core does more than tweak solubility profiles—it brings unique polarity and enhanced compatibility with polar and non-polar solvents. In practical terms, this has expanded the toolkit for chemists handling catalyst immobilization, electrochemical media, and designer solvent systems.

    The tetrafluoroborate anion further boosts stability, with the salt showing remarkable resistance to hydrolysis. Years on the production floor have shown that this combination offers a steadier option than halide-based equivalents, especially in critical synthetic operations or screening projects where stability limits typically cut progress short.

    Specifications and Real-World Handling

    Every batch produced gets two things right: high purity confirmed by NMR and mass spectrometry, and consistency in key physical attributes. Customers ask for minimal moisture content and low metal impurities, and our facility focuses on keeping these within narrow, reliable thresholds. The product is provided as an easy-to-handle, free-flowing solid. No clumping, no unpredictable agglomeration. The packaging maintains product integrity even over long-distance shipping and warehouse storage, based on repeated testing and customer feedback.

    Particle uniformity grew important in response to customer input. We've adopted fine filtration and specialized drying conditions to create a product that pours cleanly and dissolves quickly. The attention level at every stage, from chosen solvent lot to final container seal, traces directly back to technician vigilance and process design refined by shop floor observations, not just by textbook advice.

    Applications Shaped by Practical Experience

    Over the years, technical staff and customers alike turned to this ionic liquid for a range of applications. Synthetic organic chemists often mention its role as a solvent for transition metal catalysis, where traditional imidazolium salts sometimes fell short. The methoxycarbonylmethyl functional group supports better solvation for various reaction intermediates, resulting in more predictable reaction outcomes on scale.

    Electrochemists favor the material for use in specialized electrolytes. The ionic conductivity profile stays solid across a broad temperature window, and the low viscosity helps with faster ion transport. In practical cell setups, the absence of halide contamination makes a difference—electrode surfaces stay cleaner over time, minimizing maintenance cycles for both research setups and pilot-scale reactors.

    We have also worked with formulation chemists who prize the product’s ability to dissolve stubborn organic and inorganic solids. This has allowed for a new degree of operational flexibility where older solvent systems presented barriers due to reactivity or poor solubilization. In each case, our manufacturing know-how, coupled with hands-on troubleshooting, forms the technical backbone supporting these successes.

    Comparisons: The Value of the Methoxycarbonylmethyl Group

    A deep dive into users’ results reveals what gives this product its edge over similar imidazolium salts. The methoxycarbonylmethyl side chain does more than add a carbonyl: it fundamentally alters solvent miscibility and, in some cases, leads to phase behavior that simply isn’t possible with methyl or ethyl side chain analogs. With methyl or ethyl imidazolium tetrafluoroborates, solvent partitioning often restricts process options. The extra functionality on the side chain opens new doors for two-phase system design, extractive catalysis applications, and customized electrolyte blends for performance materials.

    Colleagues in catalysis know that even small changes in the ionic liquid’s structure can shift the balance between reactivity and selectivity. We’ve seen the methoxycarbonylmethyl group enhance solubility for both polar and semi-polar substrates, especially in transition-metal catalyzed couplings or alkylations. This reduces the need for extensive screen testing of alternative solvent/additive packages, freeing up significant resources in bench and pilot labs.

    Support for Advanced Research and Scale-Up

    Years of discussions with university groups and process chemists have helped tailor the product for both research and production use. The same grade and packaging make sense from half-kilo pilot trials to multi-ton runs. Our process engineers know the requirements of scale-up well, so we pay attention to filtration, drying, and crystal size distribution from day one, aiming for easy process transfer.

    Every ounce of product reflects the plant team's real experience—from adjusting the drying profiles to salvage a high-yield lot during summer humidity spikes, to troubleshooting purification steps when trace byproducts emerge. These lessons often provide more insight than any analytical method could. We communicate openly about all observed impurities, not just the 'headline' ones; most process customers value transparency and want a discussion about any minor signals picked up via advanced NMR or LC-MS screening.

    Stability and Lifecycle

    Customers expect this imidazolium salt to maintain performance profile in storage, sometimes for months or longer. Observations from direct storage trials, both under ambient and accelerated conditions, show that the tetrafluoroborate counterion resists decomposition even in less-than-ideal warehouse conditions. The salt doesn’t pick up moisture from the air as quickly as some chloride or bromide analogs, greatly reducing the risk of cake formation or handling issues. Facilities running continuous operations can store moderate volumes for weeks without worry, saving costs on frequent inventory rotation.

    Our quality assurance team documents shelf-life data using a real-world mindset. While some competitors focus on best-case laboratory results, we emphasize tracking product freshness under practical shipping and storage cycles. The outcome, often validated by repeat customers, is lower spoilage and reduced risk of process interruption.

    Why Purity and Consistency Matter

    Polishing the process to minimize trace impurities stands at the core of our operation. Unreacted starting materials, minor byproducts, and common trace metals all have the potential to derail delicate catalytic cycles or electrochemical investigations. Our solution involves careful control at each chemical step, as well as in purification and drying. Operators receive direct feedback on final product batches and are empowered to halt production if even slight deviations appear. This approach flows from years of project follow-up, repair work on compromised runs, and a culture where hands-on expertise carries the day.

    Physical purity translates into technical performance. A small bit of moisture or contaminant can compromise a whole batch in a high-stakes process. Feedback loops with process partners reinforced the importance of full documentation, ongoing dialogue about real-world problems, and a willingness to make production adjustments batch-to-batch. In practice, this means batches with a consistent melting point, clean spectral data every run, and visual clarity that partners learn to expect.

    Environmental and Safety Considerations

    Ionic liquids attract attention for their green chemistry credentials, yet not every product automatically meets safety and environmental targets. The methoxycarbonyl side chain, combined with the non-halogenated tetrafluoroborate anion, minimizes environmental persistence and reactivity compared with halide-based options. Waste handling becomes less burdensome for customers seeking regulatory compliance on emissions or effluent.

    All facility staff go through rigorous handling training. Each new customer receives clear, direct information about storage, usage, and cleanup—nothing left to guesswork. We collect firsthand feedback from buyers and lab users, tracking any incident or near-miss, then channel those lessons straight into handling protocols. Our site audits and product shelf tests back up what’s on the safety documentation with findings from real plant and lab environments.

    Challenging Edge Cases and Continuous Improvement

    Some users push the limits, applying this salt under aggressive reaction or storage conditions to uncover novel applications. Direct collaboration gives us visibility into these edge cases. Our technical staff often assists with custom pilot runs, troubleshooting unexpected incompatibilities or behavior. Over multiple projects, this two-way dialogue has driven process and product improvements: tuning filtration for tricky slurries, optimizing drying cycles, and adjusting packaging to meet real shipping hazards rather than relying on bare-minimum standards.

    As a manufacturing team, our experience comes from problem-solving and honest evaluation. Sometimes, we learn the hard way—a control batch that crystallized too quickly, a trial lot that picked up solvent residues, or feedback from a researcher who noticed an unexpected byproduct peak. Each challenge becomes material for retraining, upgrades to SOPs, or even whole process redesigns as needed. Customers know they can expect straight answers about strengths and limits, not broad claims or advertising talk.

    Supply Chain and Adaptability

    Reliability in supply stems from long-term material relationships and process discipline. Each upstream supplier for the starting materials is chosen through direct evaluation of supply history, not just price lists. Facility planning includes buffer stock and alternative synthesis routes to hedge against interruptions. We coordinate closely with logistics partners to ensure shipments arrive as intended, whether for local partners or international customers.

    Production schedules tie back to actual customer needs, not market speculation, avoiding overproduction and shelf aging. In an evolving world of custom orders and regulatory updates, this flexibility helps minimize surprises at every step, from the production line to the loading dock.

    Differences from the Crowd

    Few ionic liquids replicate the combined technical assets of 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate. The methoxycarbonylmethyl side chain delivers unique solvating power that standard alkyl-imidazolium salts simply can’t match across a wide solvent range. The product’s clean physical profile, combined with robust analytical support and process-tested packaging, comes from measured, incremental improvements built on real production hurdles and customer-driven changes.

    In applications ranging from green solvent design to industrial catalysis and advanced battery research, the product unlocks options unavailable with familiar methyl or ethyl analogs. Regular cross-talk with researchers opens the door to new uses—from pharmaceutical intermediates synthesis, where solvent compatibility and low contamination rule, to high-performance material science, where clean interfaces govern product success. Wherever the practical needs of R&D or plant-scale production overlap, our expertise translates theory into usable advantage.

    Real-World Impact

    Every finished batch carries the imprint of actual shop floor experience: unexpected temperature swings, urgent troubleshooting calls, last-minute purity demands from clients delivering on contracts. The product’s adoption by recurring users grew through delivering on these hard details, not by chasing marketing buzzwords.

    Lessons learned from failed runs and difficult projects make their way into daily routines. Technicians watch for subtle process shifts, and chemists test each shipment with real reactions, logging the variations and feeding back results. This culture of improvement protects end users from lost batches, delays, and the headaches that arise from overpromised performance and underdelivered consistency.

    Ongoing Commitment from the Production Team

    Direct communication with end users sets the pace for every product and process update. We keep an open line with long-term customers about problems, successes, and emerging needs. The technical and production staff regularly review feedback, updating SOPs and delivering staff briefings as part of ongoing improvement.

    This close-knit cycle—production, application, feedback, and refinement—keeps 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Tetrafluoroborate at the forefront of advanced ionic liquids. Scientists, engineers, and formulators gain not just a chemical, but the backstory of process insight, troubleshooting discipline, and a refusal to accept shortcuts that compromise long-term outcomes.

    From Our Plant to Your Project: Shared Progress

    With every new project, the mutual goal is clear: deliver precisely what the user needs, minimize surprises, and continually raise the standard for specialty chemical manufacturing. This product reflects years of direct effort, hands-on correction, and the quiet satisfaction of getting it right batch after batch, order after order. The growth of new fields in energy, synthesis, and clean chemistry reinforces the trust built between producer and user, grounded in shared technical values and an unwavering commitment to practical success.