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1-Decyl-3-Methylimidazolium Hexfluorophosphate

    • Product Name 1-Decyl-3-Methylimidazolium Hexfluorophosphate
    • Alias [C10mim][PF6]
    • Einecs 809-817-4
    • 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

    514854

    Chemical Name 1-Decyl-3-Methylimidazolium Hexafluorophosphate
    Abbreviation C10MIM PF6
    Cas Number 171058-17-6
    Molecular Formula C14H27F6N2P
    Molecular Weight 386.34 g/mol
    Appearance Colorless to light yellow liquid
    Melting Point −18 °C
    Boiling Point Decomposes before boiling
    Density 1.13 g/cm³ (at 25 °C)
    Solubility In Water Insoluble
    Purity ≥98%
    Refractive Index 1.433 (at 20 °C)

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

    Packing & Storage
    Packing 1-Decyl-3-Methylimidazolium Hexafluorophosphate, 100g, is supplied in a sealed amber glass bottle with a tamper-evident cap.
    Shipping 1-Decyl-3-Methylimidazolium Hexafluorophosphate is shipped in sealed, chemically resistant containers, compliant with international regulations for hazardous materials. It should be securely packaged to prevent leaks, labeled according to GHS/UN guidelines, and accompanied by a safety data sheet (SDS). Store and transport under cool, dry conditions, away from incompatible substances and direct sunlight.
    Storage **1-Decyl-3-methylimidazolium hexafluorophosphate** should be stored in a tightly sealed container, protected from moisture and air, in a cool, dry, and well-ventilated area. Keep away from heat sources, incompatible materials such as strong oxidizers, and direct sunlight. Always label the container clearly and store in accordance with local chemical safety regulations to prevent accidental exposure or decomposition.
    Application of 1-Decyl-3-Methylimidazolium Hexfluorophosphate

    Applications of 1-Decyl-3-Methylimidazolium Hexfluorophosphate in Industrial Manufacturing

    As a direct manufacturer of 1-Decyl-3-Methylimidazolium Hexfluorophosphate (C10MIM PF6), we supply this ionic liquid to leading industrial sectors where high chemical and thermal stability, non-volatility, and unique solubilization capabilities are essential. The following application scenarios summarize how downstream partners incorporate this material into demanding processes for value-added end products.

    1. Advanced Electrolytes for Dye-Sensitized Solar Cells (DSSC)

    Our ionic liquid integrates into dye-sensitized solar cell production lines, improving charge transport and boosting both stability and energy conversion efficiency under thermal load. Photovoltaic manufacturers optimize cell output by adjusting ionic liquid concentration in the electrolyte phase, benefiting from its non-flammable, highly conductive properties, and extended operational lifespan in both flexible and rigid PV modules.

    Industry compliance standards

    • IEC 61215/61646 (Photovoltaic Module Standards)
    • RoHS Directive (2011/65/EU) for hazardous substances reduction
    • ISO 9001-certified production traceability (where required by OEM framework agreements)
    • REACH (EC No 1907/2006) registration for raw material sourcing

    Typical usage ratio

    • Electrolyte formulations typically contain 10–30 wt% ionic liquid, with exact level determined by viscosity, ion transport needs, and device format

    Downstream process integration

    • Direct addition to redox mediator solutions before cell assembly—solubilized by mechanical stirring or ultrasonic agitation and combined with co-solvents and dye compounds; QC confirms homogeneity before module encapsulation

    Final product types

    • Dye-sensitized solar panels for building-integrated photovoltaics (BIPV)
    • Flexible power sheets for autonomous IoT sensors
    • Consumer portable charging devices
    • Laboratory device prototypes for energy research institutions

    2. Electroplating and Metal Surface Finishing

    In advanced electroplating baths, this ionic liquid acts as a key component for depositing metals such as copper, silver, and gold onto precision electronic components. Its use allows manufacturers to achieve uniform, defect-free coatings and reduced environmental vapor hazards compared to conventional organic solvents. The ionic liquid’s compatibility with pulse plating and nanocoating technologies underpins critical advancements in microelectronics and high-frequency device hardware.

    Industry compliance standards

    • IPC-4552A (Standard for Electroplated Finishes of Printed Circuit Boards)
    • ISO 14001 for Environmental Management
    • Restriction of Perfluorooctanoic Acid (PFOA) under EU POPs Regulation, using ionic liquids as a safer alternative
    • Local workplace exposure limits for hazardous substances (examples: OSHA PEL, EU Workplace Safety Directives)

    Typical usage ratio

    • Plating bath concentrations from 5–20 vol%, adapted according to targeted metal thickness and required surface properties in miniaturized devices

    Downstream process integration

    • Inline dosing into metal salt baths during electrolyte preparation phase—often with continuous monitoring of bath conductivity and temperature; compatibility tested with additives such as leveling agents and brighteners

    Final product types

    • High-density printed circuit boards (PCBs) for telecommunications
    • Microelectromechanical systems (MEMS) sensors
    • Connector pins for data transmission platforms
    • Medical device electrodes with anti-corrosion metallic films

    3. Cellulose Dissolution for Functional Membrane Manufacturing

    Producers of high-performance filtration media, packaging films, and biopolymer membranes use the ionic liquid as a solvent to dissolve cellulose efficiently, enabling film casting and fiber spinning without classical derivatization steps. The material’s strong hydrogen-bond-disrupting properties make it essential in closed-loop cellulose processing for specialty applications where solvent recovery and product purity must meet strict standards.

    Industry compliance standards

    • FDA 21 CFR 177.1520 (for certain packaging films in indirect food contact)
    • ISO 1833-16 (Quantification of cellulose in textiles—solvent method)
    • REACH Annex XIV registration for ionic liquids as process aids
    • ISO 9001 and GMP guidelines in controlled production zones

    Typical usage ratio

    • Cellulose dissolution protocols typically require 80–90 wt% ionic liquid with 5–10% cellulose input; water or alcohols may be introduced to tailor viscosity for spinning or casting

    Downstream process integration

    • Cellulose added to pre-heated ionic liquid under inert atmosphere and mixed until homogeneous; resulting solution filtered and cast or extruded into membranes, followed by regeneration (anti-solvent precipitation) and washing cycles

    Final product types

    • Ultrafiltration and nanofiltration membranes for water treatment
    • Gas separation films
    • Biodegradable packaging substrates
    • Ion-selective membranes used in battery separators

    4. Catalytic Media in Fine Chemical Synthesis

    Manufacturers of complex organic intermediates leverage the tunable solvent properties of this ionic liquid for transition metal-catalyzed reactions where high selectivity, minimal hazardous waste, and efficient product recovery are priorities. Used notably in N-alkylation, Suzuki coupling, and other name reactions, the material enables cleaner synthesis routes and supports catalyst recycling, aligning with growing restrictions on volatile organic solvents across global markets.

    Industry compliance standards

    • GMP Part II: Basic Requirements for Active Substances Used as Starting Materials
    • ICH Q7 (Good Manufacturing Practice for APIs)
    • REACH—manufacturer registration for use in catalyst environments
    • ISO 9001 for critical-to-process documentation and batch traceability

    Typical usage ratio

    • Synthesis protocols require 30–60 vol% ionic liquid, adjusted based on reactant solubility and reactor throughput rates

    Downstream process integration

    • Introduced into reaction vessels at the solvent charging step before addition of catalysts and substrates; separated post-reaction by phase extraction and recycled for subsequent synthesis cycles

    Final product types

    • Pharmaceutical building blocks with high purity
    • Polymerization-grade fine chemical monomers
    • Specialty fragrance intermediates
    • E-chemical precursors for OLED displays and technical coatings

    5. Electrochemical Gas Sensor Manufacturing

    Specialist sensor producers use this ionic liquid in internal electrolyte systems for amperometric and potentiometric gas detection. Its high ionic conductivity and negligible vapor pressure permit accurate detection of gases such as SO2 and NO2 over a wide temperature range during continuous operation, delivering consistent performance in industrial safety monitors deployed in harsh environments.

    Industry compliance standards

    • IEC 61508/IEC 60079-29-1 (Functional safety and explosive gas atmospheres standards)
    • ISO 17025 (Testing and calibration laboratories—sensor batch QC)
    • Restriction of hazardous substances compliance (EU RoHS 2)
    • UL 2075 certification for pre-calibrated industrial gas detection assemblies

    Typical usage ratio

    • Internal electrolyte formulations typically use 20–40 wt% ionic liquid, with the remainder composed of supporting ionic salts and sensing mediator compounds; exact composition optimized for target detection sensitivity and sensor longevity

    Downstream process integration

    • Metered filling into the sensor’s electrochemical chamber after membrane installation and before final electrical calibration; batch QC includes conductivity and moisture content verification

    Final product types

    • Industrial environmental gas sensors (SO2, NO2, H2S detection)
    • Fixed and portable safety monitoring instruments
    • Automotive emission analyzers
    • Process control gas detection modules in chemical plants

    6. Supercapacitor and Battery Electrolytes

    Energy storage device makers integrate this ionic liquid as a high-voltage, non-flammable electrolyte for next-generation supercapacitors and lithium ion-compatible cells. By incorporating the material into device electrolyte solutions, manufacturers achieve improved thermal and electrochemical stability during rapid charge/discharge cycles, a key requirement for automotive energy systems and stationary grid applications.

    Industry compliance standards

    • IEC 62660 (Secondary lithium-ion cells for automotive applications)
    • UN 38.3 (Transport of lithium batteries—testing protocol)
    • ISO 9001 and ISO 14001 manufacturing quality and environmental controls
    • RoHS/REACH (for avoidance of restricted and SVHC substances in electrolyte systems)

    Typical usage ratio

    • Electrolyte mixtures typically include 10–35 wt% ionic liquid, balanced with co–solvents (such as ethylene carbonate) and conductive salts; proportion tailored for device voltage class and cycle life demands

    Downstream process integration

    • Added during electrolyte formulation and vacuum degassing step; solution is later injected into assembled cell housing before final sealing and formation cycling

    Final product types

    • Supercapacitor banks for energy buffering
    • Lithium-ion battery modules for electric vehicles
    • Stationary storage systems for renewable energy grids
    • High-discharge rate e-mobility applications (power tools, drones, robotics)
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    Certification & Compliance
    More Introduction

    Meet 1-Decyl-3-Methylimidazolium Hexfluorophosphate: An Ionic Liquid with Practical Value

    Understanding Our Product—Directly From Our Production Lines

    Working on the chemical plant floor, crafting 1-Decyl-3-Methylimidazolium Hexfluorophosphate feels less like manufacturing a commodity and more like tuning a fine instrument for chemists and process engineers. Every batch we produce carries a unique fingerprint—defined by the purity levels, the handling of sensitive reagents, and the close oversight of crystallization and drying. Our team knows the nuances of this ionic liquid better than any distributor. This isn’t a bulk material stamped out in ton lots with no attention to what customers do in the lab or factory. It takes real diligence and hands-on understanding to keep water traces low and to minimize halide contaminants. Every shipment reflects months—sometimes years—of iterative improvements, production tweaks, and feedback directly from end users.

    We watch research trends and collaborate on industrial projects, keeping a practical focus on what matters to users. 1-Decyl-3-Methylimidazolium Hexfluorophosphate, known by us as [DMIM][PF6], brings to the market an ionic liquid that reliably delivers stable physical and chemical properties. This specialty compound doesn’t just tick technical boxes. Its long alkyl chain, combined with the hexafluorophosphate anion, gives it low volatility, strong hydrophobicity, and a wide electrochemical window. Our teams have solved the real problems of scaling—getting rid of residual starting imidazoles, dealing with hexafluorophosphate sources safely, and dialing in the washing steps to yield a product ready for immediate use by scientists tackling tough challenges.

    Reliable Specifications Backed by In-House Experience

    Our version of 1-Decyl-3-Methylimidazolium Hexfluorophosphate—Model DMIM-PF6—arrives as a colorless to pale yellow liquid at room temperature. Every batch we ship undergoes direct quality checks for water content (we keep it below 0.1%) and halides, two parameters that throw off electrochemical experiments. We don’t send out product that hasn’t met strict in-house protocols, because our customers depend on accurate, reproducible research. Analytical chemists in our plant run multiple rounds of NMR and ion chromatography, not just for regulatory compliance, but to spot subtle shifts that might affect solubility behavior or ionic conductivity.

    We know from customer feedback in specialty coatings and battery R&D that these small details matter. Product consistency is never just a number for us. Our operators tune reactor temperature, control vacuum drying time, and sample lots at every stage to avoid batch variance. Every ML of DMIM-PF6 carries documentation of its provenance and test history—a best practice we’ve developed only through hard lessons in quality control.

    Applications Forged by End Users, Not Marketers

    People in our company interact every week with clients who run electrochemical work, organic catalysts, separation processes, or green synthesis. Instead of talking up theoretical potentials, we see the direct impact of DMIM-PF6 in lithium-ion battery testing, as a medium for phase-transfer catalysis, and as a solvent for specialty extractions. Engineers from pharmaceutical R&D send us feedback on protein crystallization and reaction selectivity after switching to our material. Materials scientists have shown us that our ionic liquid supports efficient electrodeposition of metals and nanomaterials without decomposition. These real-world applications fuel our refinements. Every year, our teams work on incremental changes based on granular production insights—tweaking purity, packing, or protocols—so those end results keep improving.

    Battery companies in particular have leaned on DMIM-PF6’s broad electrochemical stability window and low vapor pressure. When clients run accelerated cycling at high voltages, our ionic liquid holds up without forming corrosive byproducts. That stability comes from our rigorous purification; we’ve learned from battery failures caused by halide contamination and act fast when even minor traces appear. Research labs appreciate its thermal stability and its ability to dissolve a wide range of organic and inorganic substrates. The broad solvent compatibility means less solvent switching, less fiddling with reaction parameters, and fewer wasted experiments.

    What Sets It Apart From Other Options

    Labs and manufacturers often ask why not to choose a cheaper imidazolium ionic liquid or a pyridinium variant. After years on the line, we’ve seen important differences. The decyl group increases hydrophobicity compared to shorter-chain homologues like 1-butyl-3-methylimidazolium hexafluorophosphate. That means less water uptake from the ambient air, which translates into a longer shelf life and superior performance for water-sensitive reactions. It’s particularly relevant for applications like supercapacitors and organic synthesis, where water can radically change the outcome—even trace levels alter charge transport or conversion yields.

    The hexafluorophosphate anion, compared to alternatives like tetrafluoroborate or chloride, offers greater chemical inertness under oxidative conditions. Over time, we’ve found clients get more robust results in high-voltage battery studies and nonaqueous electrochemical applications for this very reason. Some lower-cost products blend imidazolium salts that may contain cationic impurities, inconsistent chain lengths, or trace metallic residues. Our approach, shaped by years of process chemistry challenges, includes purpose-built purifications and post-reaction workups to solve these persistent issues. Any jump in yield tends to vanish without consistent feedstock and controlled processing.

    Compared to pyridinium ionic liquids, DMIM-PF6 brings a wider electrochemical window and tends to avoid detrimental ring-opening or dimerization side reactions. Over years of experience, the practical benefit is less maintenance on electrochemical setups and tighter experimental error margins in analytical labs. The cost per gram may be higher, but our regular clients recognize this means fewer reruns and wasted labor hours—calculations that drive real savings at scale.

    Quality Control That Reflects Real-World Challenges

    Quality assurance in our facility doesn’t stop with the certificate of analysis. Long experience has shown that sampling protocols, shipping temperature, and even the choice of vial liner all impact purity at point of use. For customers running large synthesis campaigns, small fluctuations in color, odor, or viscosity flag potential trouble. Over the years, we’ve figured out how to spot these early and prevent them from reaching your bench. For further peace of mind, random in-house retention samples get retested months after production. This real-life data shapes our storage recommendations and continuous improvement efforts.

    Over the last decade, as research has pushed ionic liquids deeper into scale-up and commercializ​ation, we’ve adapted by upgrading our reactors, switching to inert gas blanketing, and deploying vacuum packaging systems. End customers see these investments pay off not just as an abstract statistic, but in smaller error bars and fewer bottlenecks.

    Trust Built on Direct User Experience—Not Marketing Hype

    Our story with DMIM-PF6 didn’t start in a corporate boardroom with PowerPoint slides. It grew from hands-on troubleshooting by our chemical engineers and client-side development teams facing recurring hurdles—batch variability, contamination, waste disposal. Every tweak we’ve made, from solvent switchovers in the plant to new test protocols for in-process controls, has come in response to feedback from researchers and plant operators who actually use this product. For years, we’ve sat with users mixing up battery electrolytes, loading microreactors, and running membrane separations. Those conversations reveal which aspects of ionic liquid performance genuinely matter and which ones amount to box-ticking.

    Some clients work under strict purity demands, others push temperature extremes, and a few are pioneers in new green chemistry routes. By keeping manufacturing and client support under the same roof, our company carries a unified thread from synthesis to storage, right into field application. Our sales and production teams rarely speak in abstract “solutions”—they carry firsthand stories of process upsets, reliability improvements, and lessons learned the hard way.

    Sustainability From Manufacturing to End Use

    In the chemicals world, sustainability isn't a buzzword—it’s a balance of practical choices, regulatory demands, and client priorities. For 1-Decyl-3-Methylimidazolium Hexfluorophosphate, this translates to rigorous waste stream management, closed-loop washing, and solvent recycling wherever possible. Our processes have evolved to reduce the use of high-fluoride reactants, cut down acid-bath residues, and lower the use of non-renewable cleaning agents in post-synthesis purification.

    Environmental regulators increasingly look at not just end-product toxicity, but also at the full lifecycle of intermediates and waste. Because DMIM-PF6 doesn’t volatilize under ambient storage conditions, its environmental escape risk remains extremely low during handling and application. Bulk buyers depend on its storage safety, which comes from low flammability and high thermal stability—not just in hypotheticals, but tested every month in transport qualifications and on-site audits.

    Our plant operators regularly review process safety, audit high-pressure equipment used in fluorinated anion synthesis, and collaborate with environmental compliance teams on recycling and worker safety. For every ton shipped, we close out a comprehensive documentation package that covers traceability, audit history, and waste management data. These are concrete ways we keep production clean and in line with the evolving expectations of responsible users.

    Addressing Real Issues—From Scale-Up to Everyday Lab Work

    Clients count on more than technical specs—they need a reliable supply chain, technical support, and troubleshooting they can trust. Disruptions in raw material supplies have challenged every specialty chemical company in recent years. Years ago, we learned the cost of over-relying on single-source precursors, which led us to approve multiple grade sources for key reagents and implement real-time supply monitoring. If geopolitical risk, shipping slowdowns, or industrial action cause a shortage, our production managers have fallback stocks and clear reroute plans. This helps clients avoid sudden cost hikes or interrupted research timelines.

    We’ve also learned that scale-up from gram to kilogram lots introduces a fresh layer of complexity. Heat transfer differences, mixing kinetics, and even atmospheric controls matter much more at the production scale. Our process engineers run trial batches across different reactor setups before clearing a change for routine manufacture. The goal isn’t just yield, but the assurance that every liter reaching a client’s facility measures up to the same standards as our initial laboratory batches.

    Feedback loops remain our strongest tool for continuous product improvement. We’ve worked with clients facing sticky residues in microfluidic devices, haze in extraction runs, or surprise precipitation during solvent switches. By running those trouble samples through our own QC labs and sharing data transparently, we chase down root causes—be it trace byproducts from synthesis, new packaging interactions, or simple operator error during transfer. These real collaborations build deeper trust.

    Supporting the Next Generation of Innovation

    Innovation in ionic liquids keeps accelerating. DMIM-PF6 supports boundary-pushing work in fields like green solvents, advanced batteries, supercapacitor electrolytes, and precision catalysis. We keep pace through direct conversations with researchers redefining what’s possible—from tunable phase-separation techniques in pharmaceuticals to low-emission industrial separations. Our technical team maintains connections with leading universities and commercial developers, not as a sideline, but as a core input to our R&D pipeline.

    We’ve supplied material for funded projects targeting next-gen lithium-ion electrolytes, high-stability catalyst recycling solutions, and even quantum computing testbeds. In each case, our role extends beyond simply shipping product. Technical experts review application parameters, interpret unexpected data, and suggest workarounds when things veer off course. We also invest in post-market surveillance, gathering user data and feeding fresh insights into our process upgrades.

    Conclusion: Value Rooted in Real-World Results

    Every kilogram of 1-Decyl-3-Methylimidazolium Hexfluorophosphate we send out reflects years of cumulative know-how. Our focus on in-house control, customer dialogue, and direct responsibility ensures outcomes researchers and manufacturers can rely on. We treat each request—from lone academic researchers to multi-ton industrial production runs—with transparent documentation, accessible troubleshooting, and a readiness to adapt processes based on evolving client needs.

    DMIM-PF6 stands apart from the pack not because of buzzwords or marketing, but because years of practical diligence have honed its consistency, safety, and real-world effectiveness. From the reactors at our plant to the bench in your lab or process line, the most important feedback comes from people running the experiments—yours and ours included. That ongoing collaboration keeps us invested, attentive, and grounded in what actually drives chemical progress.