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1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate

    • Product Name 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate
    • Alias MMIMPF6
    • Einecs 637-159-9
    • 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

    632233

    Chemical Name 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate
    Molecular Formula C8H13F6N2O2P
    Molar Mass 330.17 g/mol
    Cas Number 266028-06-2
    Appearance White to off-white solid
    Solubility Soluble in water and polar organic solvents
    Melting Point 82-86°C
    Boiling Point Decomposes before boiling
    Density 1.40 g/cm³ (approximate)
    Storage Conditions Store at room temperature, keep container tightly closed, protect from moisture
    Hazard Classification Irritant – handle with gloves and goggles
    Smiles COC(=O)Cn1cc[n+](C)c1.[PF6-]

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

    Packing & Storage
    Packing Sealed in a 25-gram amber glass bottle with a tamper-evident cap, clearly labeled with product name, quantity, hazard, and handling instructions.
    Shipping This chemical, 1-(Methoxycarbonyl)methyl-3-methylimidazolium hexafluorophosphate, should be shipped in tightly sealed, chemically compatible containers. It must be clearly labeled, protected from moisture, and kept at room temperature. Follow all relevant hazardous materials regulations (e.g., DOT, IATA) and include appropriate safety documentation (SDS) with the shipment.
    Storage 1-(Methoxycarbonyl)methyl-3-methylimidazolium hexafluorophosphate should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from moisture, direct sunlight, and incompatible substances such as strong acids or bases. Avoid exposure to heat and humidity to prevent decomposition. Recommended storage temperature is room temperature (15–25°C). Always follow appropriate safety guidelines and use proper labeling.
    Application of 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate

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

    As the direct manufacturer of 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate, we outline the real-world industrial applications of this ionic liquid below. Each section details process requirements, compliance obligations, optimal usage ratios, and the types of downstream products our raw material supports across chemical and advanced material industries.

    1. Electrolyte Additive for High-Performance Lithium-Ion Batteries

    In advanced lithium-ion battery manufacturing, this ionic liquid functions as a key electrolyte additive to improve ionic conductivity and thermal stability. Battery fabrication lines utilize it to extend life cycles and increase safety profiles for high energy density cells. Integration typically takes place post-electrolyte solvent blending and before cell assembly in dry rooms. Process adjustments account for end-use environments, with precise on-line dosing controls monitored by QC departments.

    Industry compliance standards

    • IEC 62660-2:2018 (Secondary lithium cells for the propulsion of electric road vehicles)
    • UN 38.3 (Transport of Dangerous Goods for Lithium Cells)
    • ISO 9001:2015 (Battery component manufacturing QC)
    • RoHS Directive (Restriction of Hazardous Substances)

    Typical usage ratio

    • 0.5–5% by weight in electrolyte blends, tuned based on desired ionic transport and cycle life targets

    Downstream process integration

    • Added during liquid electrolyte preparation before cell saturation
    • Monitored via conductivity and viscosity in-line QC
    • Not compatible with water-based processing lines
    • Requires sealed system transfer to prevent moisture uptake

    Final product types

    • Rechargeable high-density lithium-ion battery cells
    • Battery modules for electric passenger vehicles
    • Grid energy storage system battery packs
    • Specialty pouch cells for aerospace and medical equipment

    2. Reaction Medium in Pharmaceutical Fine Synthesis

    This imidazolium-based ionic liquid serves as a non-volatile reaction medium in synthesis of advanced pharmaceutical intermediates, reducing risk of side-reactions and facilitating high-yield processes, especially in quaternization, alkylation, and metal-catalyzed steps. Synthesis operations use this material in batch and continuous systems where it remains easily recoverable and recyclable, benefiting regulated pharmaceutical manufacturing environments.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • 21 CFR Part 211 (FDA cGMP for finished pharmaceuticals)
    • EU Guidelines for Good Manufacturing Practice (EudraLex Volume 4)
    • USP-NF (for manufacturing process solvents)

    Typical usage ratio

    • 20–60% v/v as reaction medium, or as solvent replacement on basis of substrate solubility and thermal stability

    Downstream process integration

    • Charged directly to batch reactors alongside API precursors
    • Serves as both solvent and catalyst carrier when needed
    • Recovered after distillation via phase separation for re-use
    • Monitored for trace metal and water content at each cycle

    Final product types

    • Chiral pharmaceutical intermediates
    • N-heterocycle building blocks
    • API side chains requiring high purity
    • Specialty bulk actives for generic and custom drug synthesis

    3. Electrodeposition and Metal Surface Treatment

    Electronics and precision engineering sectors employ this ionic liquid as a conductive and stable medium in electrodeposition baths for metals such as gold, silver, and copper. It enables fine control over deposit morphology, lower processing temperatures, and uniform layer formation. Surface treatment companies integrate the material into automated plating lines with close monitoring of solution stability, making it possible to fabricate microelectronic connectors, MEMS parts, and decorative finishings to high technical standards.

    Industry compliance standards

    • IPC-4552A (Electroless nickel/Immersion gold plating specification)
    • ISO 9001:2015 (Electroplating process QC)
    • IEC 62321 (RoHS heavy metal screening for electronics)
    • REACH Regulation (restricted substances management in plating chemicals)

    Typical usage ratio

    • 15–40% by volume in metal salt plating baths, adjusted for current density and part geometry

    Downstream process integration

    • Charged to electrodeposition tank with metal salt and supporting electrolytes
    • Continuously filtered and recycled within closed plating loop
    • Monitored for decomposition and conductivity losses
    • May require temperature control at elevated current densities

    Final product types

    • Connector pins for high-reliability circuits
    • Micro-lenses and printed circuit board features
    • RFID and IoT sensor components
    • Jewelry and watch industry decorative plated items

    4. Ionic Liquid Catalyst in Biomass Conversion

    Chemical and renewable resource processors use this ionic liquid as a catalyst medium during biomass fractionation and conversion to platform chemicals. Its unique anionic and cationic composition supports selective hydrolysis of lignocellulosic structures, with recyclability enhancing process economics. On a commercial scale, process engineers incorporate it into multi-stage hydrolysis lines, with attention to downstream product separation and ionic liquid regeneration protocols in compliance with green chemistry initiatives.

    Industry compliance standards

    • ISO 14001:2015 (Environmental management in chemical processes)
    • US EPA Safer Choice Program (for process solvent and catalyst safety)
    • EU Directive 2009/28/EC (Renewable energy for industrial bioprocessing)
    • ISO 50001 (Energy management in fermentation and conversion plants)

    Typical usage ratio

    • 10–25% by weight relative to dry biomass, modifiable based on biomass type and desired monomer yield

    Downstream process integration

    • Dosed to pre-treatment reactor prior to enzymatic hydrolysis steps
    • Phase separated after biomass depolymerization
    • Subject to in-line purification and recycling
    • Yields maximized via temperature, pH, and ionic liquid ratio adjustments

    Final product types

    • Fermentable sugars for bioethanol production
    • Platform chemicals such as 5-HMF and furans
    • Bio-based polyols and resins
    • Cellulosic nanomaterials for packaging and construction
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    Certification & Compliance
    More Introduction

    Introducing 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate: Experience and Insights from a Chemical Manufacturer

    Understanding Our Product

    Every chemical has its place and application, but some compounds stand out for their reliability and wide application. Over the years, as a direct chemical manufacturer, we have built up a nuanced understanding of products that skip the hype in favor of real-world performance. 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate, often identified by its imidazolium-based ionic liquid structure, is a compound we have handled with intent and care. Our journey with its production has shaped our understanding of where this compound can deliver value, and what distinguishes it from alternatives.

    Model and Consistency Matter

    In the market, customers seek consistent quality. As a direct producer, we see how batch-to-batch differences can derail a customer’s process or throw off years of careful development. We focus on the model defined by reliable pilot synthesis scaled up through controlled manufacturing runs. Our standard batch runs maintain strict composition thresholds, verified using in-house NMR and IR techniques, providing the analytic traceability that experienced process chemists demand. The color, purity, and moisture content reflect the level of process control in the plant, not just a sticker on a container. Over years of supplying to R&D and industry, we’ve seen how even 0.2% deviation in water content or cation purity can shift results—our approach to quality assurance is shaped by firsthand feedback from these scenarios.

    Specifications from the Factory Floor

    Specifications become more than just numbers on a sheet when you are the one scaling up synthesis. Common requirements for 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate start with purity, which we control to above 99% by HPLC and elemental analysis, but residual starting material content and anion stability also come into play. Something as simple as trace chloride or color variations caused by reaction side-products impacts downstream applications, especially in catalysis and analytical settings. Our labs test each lot for ionic conductivity and thermal stability, because we've seen these characteristics shift batch-to-batch elsewhere. A compound like this draws particular interest from clients who need precise melting points and conductivity profiles; we maintain those by tweaking solvent selection and drying cycles in our reactors, drawing upon a decade of process refinement.

    Real-World Use Cases in Our Experience

    Some products are sold based on theoretical merit, but we measure a chemical’s value by what it actually does at the bench or in production. 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate fills key roles in organic synthesis, electrochemistry, separation science, and specialty catalysis. Our clients favor this ionic liquid for its manageable viscosity and high thermal stability during electrochemical reductions or oxidations. Several research groups have shared data with us showing its superior electrochemical window and reduced electrode fouling compared to typical halide-based ionic liquids—facts that play out not just on paper, but in week-long anodic and cathodic cycling runs.

    In catalysis, the controlled polarity and tuneable solubility of this ionic liquid allow for efficient phase transfer and stabilization of reactive intermediates. Over time, chemists find that solvent choice can make or break reaction flows. Customers come to us after trying bulkier or more hydrophobic ionic liquids, reporting inconsistent reaction rates or separation headaches downstream. In the hands of skilled users, our product streamlines workup and boosts recovery rates. Plants running continuous flow reactions or advanced synthesis setups often see the value of lower volatility and easier handling under inert or standard atmosphere.

    One lesson we've learned: real process improvements show up in the form of higher yield, fewer purification steps, and more predictable cycle times. Over several product cycles, our feedback-informed tweaking of lot dryness, ion content, and impurity thresholds has made a difference in both academic labs and production lines. 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate rarely causes the kind of surprises that eat into a process engineer’s timeline. These are tangible benefits that go beyond marketing language, rooted in the day-to-day realities of chemical production.

    How This Compound Stacks Up

    Comparisons with other imidazolium-based ionic liquids, particularly those relying on hexafluorophosphate anions, often reveal important differences. As a direct manufacturer, we've produced and evaluated a wide range, from methylimidazolium to ethyl and butyl analogues, as well as different counterions like tetrafluoroborate and bis(trifluoromethylsulfonyl)imide. The 'sweet spot' for 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate is its balance between polarity, viscosity, and chemical robustness under demanding conditions.

    We get requests for variants, sometimes with longer alkyl chains, aiming for reduced melting points or altered solubility. Experience shows that changes in molecular structure can introduce more moisture sensitivity or increase cost without meaningful benefit in application. Those lessons come from synthesis failures and customer trials that prompt thoughtful reconsideration in product design. Over the years, the methoxycarbonylmethyl and methyl substitution pattern has proven rugged. The hexafluorophosphate counterion delivers chemical inertness and widens the compound’s utility in areas where chloride-based or tetrafluoroborate ionic liquids tend to degrade or cause contamination. We've tested ionic liquid samples against alternative products in simulated electrochemical cells, chromatography columns, and organometallic reaction media. The results consistently point to improved lifetime, less sample cross-contamination, and easier end-product purification.

    Tackling Manufacturing Challenges

    Manufacturing advanced ionic liquids isn't a straightforward job. Sourcing raw materials poses occasional hurdles, particularly as new supply chain regulations impact solvents and fluorinated reagents. We have had to shift procurement channels, invest in safe storage facilities, and implement stricter in-process monitoring. Training our staff goes beyond batch records and SOPs; hands-on experience, error traces, and incremental troubleshooting help avert setbacks before they turn into production bottlenecks. We once encountered a series of impurity spikes tied to a change in methylation reagent quality, highlighting how every upstream node matters.

    Scaling from laboratory to industrial output sizes brings pressure on reactor lining integrity, stirring efficiency, and purification steps. Temperature gradients and mass transfer are not abstract concepts—they are the root cause of off-spec material or inconsistent product crystallization. By investing in reactor upgrades and inline analysis, we have minimized waste and improved overall yield. That hands-on attention beats any promise of 'turnkey solution' because the manufacturing process for high-purity ionic liquids is unforgiving of shortcuts.

    Applications Shaped by Feedback and Collaboration

    Customer feedback has influenced our manufacturing and QC practices more than any textbook or certification audit. Research partners using our 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate in next-generation batteries once flagged fouling issues—what looked like a pure ionic liquid at shipment failed in long-term cycling due to nanogram levels of a fluorinated byproduct. Together, we diagnosed the synthesis stage responsible and adjusted our workup and vacuum drying cycles. Those collaborative efforts led to a more robust product now in use in prototype energy storage devices and specialty analytical sensors.

    Other users have integrated this ionic liquid into extraction and separation processes—especially when handling sensitive biomolecules or air-sensitive metals. Our work with industrial chemists has shown that even small changes to cation side chains or anion sources impact miscibility and compatibility with process streams. Those lessons come from repeated field testing and process trials, not just from conference presentations or literature comparisons.

    As global focus on sustainability and safety increases, we evaluate not just chemical purity but also byproduct profile, ease of waste treatment, and lifecycle durability. The hexafluorophosphate anion draws regulatory and environmental scrutiny, pushing us to develop containment, neutralization, and recycling methodologies that meet or exceed local and international guidelines. Our plant engineers consult with downstream users to map out the safest, most responsible ways to handle spent ionic liquids and rinse solutions, based on practical data from labs and factories rather than generic environmental statements.

    Continuous Improvement and Future Directions

    Experience has shown us that a good chemical product remains useful as long as its manufacturing process adapts to changing needs and as market requirements evolve. The surge of interest in ionic liquids over the past decade forced us to refine not only purity but also technical and regulatory documentation. Product traceability, impurity analysis, and transparency about process modifications matter as much as price or packaging quality. Some customers have requested in-depth analytic records, pushing us to add LC-MS and GC-ECD tests for trace organic and inorganic impurities, even when those values fall below advertised specifications.

    Staying close to end users gave us early warning on shifts in application sectors. While initial interest came from academic groups studying fundamental electrochemistry, later growth followed as companies started applying ionic liquids in industrial separations, advanced manufacturing, and low-emission synthetic chemistry. In each case, our team learned to adapt scale, documentation, and logistics to new demands. The lessons here are not theoretical: nimble supply and transparent support make it easier for innovation to happen outside the manufacturer's doors.

    We have watched other ionic liquids lose favor as regulations changed or as process reliability fell short. From those observations, we invested in robust characterization and traceability, so our clients never have to second-guess the root of a process glitch. As researchers push for greener and more durable solvents, we are working on ways to recycle, regenerate, and reuse ionic liquids, lowering total operating cost and environmental footprint. This approach does not come from a compliance checklist but from decades on the factory floor, solving problems that only appear in real-world use.

    Supporting Innovation with Practical Chemicals

    Chemical manufacturers see many claims come and go about improved solvents or fancy new reaction media. What distinguishes a compound like 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate is the steady performance it delivers across changing applications. We build our reputation not on rare or exotic claims, but on reproducible results in hands-on chemistry environments—labs, pilot plants, and manufacturing floors. Through each cycle of development, production, and customer feedback, we refine both the compound and its supporting documentation to reduce uncertainty and enable reliable results.

    Those manufacturing, scientific, and technical details blend together into something simple: chemical performance backed by experienced production, smart process control, and a willingness to solve problems as they arise. Clients rely on us for continued support, honest answers about product origin and content, and the flexibility to meet sudden changes in demand or application. Direct involvement in both synthesis and customer support means we see and address issues before they grow—delivering more value than what comes out of a drum or bottle. That approach has made all the difference for us and the growing number of teams who choose 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate for their challenges.

    Final Thoughts from the Factory Floor

    Real chemicals are more than entries in a catalog—they represent years of iteration, trial-and-error, and adaptation to practical needs. Our experience as a manufacturer of 1-(Methoxycarbonyl)Methyl-3-Methylimidazolium Hexafluorophosphate has taught us that a good product makes its mark by consistently meeting tough benchmarks in labs and industrial settings. It is shaped by the daily reality of raw material variability, production constraints, customer feedback, and application results. Our doors remain open to continuous learning and honest dialogue with users, so every batch reflects what years of hands-on experience have taught us: reliable chemicals empower bold science.