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3-Methyl-N-Butylpyridinium Hexafluorophosphate

    • Product Name 3-Methyl-N-Butylpyridinium Hexafluorophosphate
    • Alias [3-mebupy][pf6]
    • Einecs 637-161-7
    • 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
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    Specifications

    HS Code

    933008

    Chemical Name 3-Methyl-N-Butylpyridinium Hexafluorophosphate
    Molecular Formula C10H17NPF6
    Molar Mass 309.22 g/mol
    Appearance Colorless to pale yellow liquid
    Density 1.15 g/cm3 (approximate)
    Boiling Point Decomposes before boiling
    Melting Point -12 °C (approximate)
    Solubility In Water Low solubility
    Cas Number 691283-15-7
    Purity ≥98%
    Refractive Index 1.430 (approximate)
    Storage Conditions Store at room temperature, tightly sealed and away from moisture

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

    Packing & Storage
    Packing 100g of 3-Methyl-N-Butylpyridinium Hexafluorophosphate, securely sealed in an amber glass bottle, labeled with safety and product information.
    Shipping 3-Methyl-N-Butylpyridinium Hexafluorophosphate should be shipped in tightly sealed, chemically resistant containers. Avoid exposure to moisture, heat, and incompatible substances. The shipment must comply with local and international regulations for chemical transport, including appropriate labeling and documentation. Handle with care to prevent breakage or leakage during transit. Keep away from food and strong oxidizers.
    Storage 3-Methyl-N-Butylpyridinium Hexafluorophosphate should be stored in a tightly-closed container, in a cool, dry, and well-ventilated area. Protect from moisture and direct sunlight. Keep away from incompatible substances such as strong oxidizing agents and acids. Store under inert atmosphere if possible to prevent hydrolysis or decomposition. Use appropriate personal protective equipment when handling to avoid exposure.
    Application of 3-Methyl-N-Butylpyridinium Hexafluorophosphate

    Applications of 3-Methyl-N-Butylpyridinium Hexafluorophosphate in Industrial Manufacturing

    3-Methyl-N-Butylpyridinium Hexafluorophosphate serves as a high-performance ionic liquid with established utility in technically advanced manufacturing sectors. Our chemical grade production focuses exclusively on downstream industries that require strict purity, stability, and compatibility with sensitive formulations. Below we detail application scenarios where manufacturers integrate this ionic liquid into proprietary processes, meeting specific compliance and performance demands unique to their value chains.

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

    Battery producers rely on this ionic liquid to enhance electrolyte conductivity, reduce volatility, and improve thermal stability in advanced lithium-ion cell designs, including those for electric vehicles and grid storage. Typical integration involves careful dosage optimization during the electrolyte blending step to maximize cycle life and safety margins under demanding charge/discharge regimes.

    Industry compliance standards

    • IEC 62660-2:2023 (Secondary lithium-ion cells for vehicle propulsion – Safety requirements)
    • UN 38.3 (Transport of Dangerous Goods - Lithium cells and batteries)
    • ISO 12405 (Automotive battery systems – Test procedures)
    • GB/T 31467.3-2015 (China national standards for Li-ion batteries)

    Typical usage ratio

    • 2–8% by weight of total electrolyte blend, adjusted based on required conductivity and temperature performance matrix

    Downstream process integration

    • Direct addition into non-aqueous electrolyte solvent blend following initial solvent purification and prior to cell filling step; remains stable through vacuum drying and cell assembly

    Final product types

    • Automotive lithium-ion battery cells and modules
    • Stationary energy storage packs
    • Consumer electronics rechargeable batteries

    2. Extraction Medium for Rare Earth Element Recovery

    Hydrometallurgical operations utilize this ionic liquid as a selective phase for solvent extraction of lanthanides and actinides, especially in processing spent catalysts and electronic waste. The ionic liquid’s high selectivity and chemical inertness support increased yields while minimizing organic solvent losses and tailings toxicity.

    Industry compliance standards

    • ISO 9001:2015 (Quality management in chemical processing)
    • REACH Regulation (EC) No 1907/2006 – chemical substance management and registration
    • GB 27631-2011 (China rare earth extraction environmental standards)
    • EU WEEE Directive 2012/19/EU (Waste electrical and electronic equipment)

    Typical usage ratio

    • 5–15% (v/v) of extraction phase, optimized per specific feedstock composition and element separation factor requirements

    Downstream process integration

    • Introduced as the primary or co-extraction phase after crude leach liquor clarification, prior to stripping and metal precipitation

    Final product types

    • High-purity rare earth oxide powders
    • Rare earth metal concentrates
    • Magnet alloy precursors

    3. Electroplating Bath Component for Gold and Platinum Group Metals

    Precision electroplating operations in electronics and specialty coatings use this ionic liquid to create non-cyanide, low-toxic electrolyte systems for gold and platinum group metals. Its stable anionic structure supports uniform metal deposition and improved bath lifetime, especially for microelectronic connectors and fine circuit features.

    Industry compliance standards

    • IPC-4552 (Performance specification for electrodeposited gold for electronics)
    • IEC 60068-2-58 (Solderability testing for printed circuit boards)
    • RoHS Directive 2011/65/EU (Restriction of hazardous substances in electronics)
    • DIN EN ISO 9001:2015 (Process and quality management for surface finishing)

    Typical usage ratio

    • 10–20% of total plating bath, subject to desired deposition rate and surface finish characteristics

    Downstream process integration

    • Mixed into metal salt solution at the bath make-up stage; ionic liquid remains active throughout temperature cycling and bath replenishment cycles

    Final product types

    • Fine-pitch gold-plated connectors
    • Platinum group metal-coated electronic substrates
    • Wear-resistant jewelry and watch components

    4. Antistatic Additive in Advanced Polymer Composites Manufacturing

    Polymer processors incorporate the ionic liquid into engineering plastic blends and composite resins to impart permanent antistatic properties without sacrificing mechanical integrity. Its stability up to high compounding temperatures and compatibility with a broad range of engineering thermoplastics support long-term antistatic performance in demanding industrial environments.

    Industry compliance standards

    • ISO 11469:2016 (Plastics identification and marking)
    • UL 94 (Flame retardance in thermoplastics)
    • IEC 61340-5-1:2023 (Electrostatics – Protection of electronic devices from electrostatic phenomena)
    • REACH SVHC (Substances of Very High Concern – polymer additives registration in EU)

    Typical usage ratio

    • 0.2–1.5% by weight of polymer matrix; dosed based on target surface resistivity and mechanical property retention

    Downstream process integration

    • Compounded with base polymer during extrusion pelletizing or direct dry blending before injection molding; compatible with high-shear mixing cycles

    Final product types

    • Static-dissipative equipment housings
    • Antistatic conveyor belts for electronics manufacturing
    • Packaging for semiconductor handling

    5. Reaction Medium in Suzuki and Heck Cross-Coupling Catalysis

    Fine chemical synthesis operations utilize this ionic liquid as a reaction medium for palladium-catalyzed cross-coupling processes, including Suzuki and Heck reactions. Its high thermal and chemical inertness enable improved product yields, suppression of by-product formation, and simplified product isolation compared to traditional solvents.

    Industry compliance standards

    • ICH Q7 (Good manufacturing practices for active pharmaceutical ingredients)
    • 21 CFR Part 211 (US FDA finished pharmaceuticals GMP)
    • Ph. Eur. 5.4 (European Pharmacopoeia – residual solvents)
    • ISO 14001:2015 (Environmental management in chemical synthesis)

    Typical usage ratio

    • Acts as sole or co-solvent at 40–80% of total reaction volume; optimized toward solubility of substrates and target catalytic performance

    Downstream process integration

    • Charged at the reactor charging step; remains stable through multi-hour thermal cycling and compatible with inline product separation operations

    Final product types

    • Active pharmaceutical ingredient intermediates
    • High-value specialty chemicals
    • Electronic grade fine chemicals

    6. Solvent for High-Temperature Supercapacitor Electrolytes

    Supercapacitor manufacturers utilize this ionic liquid as a core solvent in high-temperature electrolyte systems for devices operating above 80°C. Its unique thermal stability and electrochemical window enhance device cycle life, capacitance retention, and operational safety in applications demanding rapid charge/discharge rates.

    Industry compliance standards

    • IEC 62391-1:2023 (Fixed electric double-layer capacitors – Performance requirements)
    • RoHS 2011/65/EU (Heavy metal and hazardous substance restrictions in electrical components)
    • ISO 9001:2015 (Quality management for electrical component manufacturing)
    • UL 810A (Standard for electrochemical capacitors)

    Typical usage ratio

    • 40–90% of electrolyte solvent base depending on target device voltage and cycling resistance parameters

    Downstream process integration

    • Blended with conducting salt and co-solvents during the vacuum mixing and degassing phase preceding cell encapsulation

    Final product types

    • High-temperature supercapacitor cells
    • Automotive auxiliary power modules
    • Industrial back-up energy devices
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    Certification & Compliance
    More Introduction

    3-Methyl-N-Butylpyridinium Hexafluorophosphate: A Fresh Approach from the Manufacturer’s Bench

    Redefining Ionic Liquids for Today’s Chemistry

    We have watched the world of chemical synthesis shift under our own hands these past decades. From solvents and electrolytes to functional ingredients supporting advanced electronics, the demands on ionic liquids never stay still. Our 3-Methyl-N-Butylpyridinium Hexafluorophosphate—some know it by its shorthand, [3MBuPy][PF6]—carries our own commitment to reliable performance and practical handling. For many years, chemists here have evaluated how each molecular tweak pays back in real-life settings. Every batch reflects this experience.

    In synthesizing [3MBuPy][PF6], we zero in on both the purity and the control of ionic balance. Take this straight from our facility floors: these small details build stability into broader processes, especially where sensitive voltages, temperatures, or trace contaminants threaten results. We never found much use filing paperwork over claims like “highest grade ever”; instead, we focus on measurable realities. Residual halides? Tested down to the ppm. Moisture? Kept low through sealed, atmospheric controls and careful packaging at source. What leaves our plant tells its own story in long-term reliability.

    Our Direct Experience: Practical Provenance

    Every leader talks about quality, but we answer calls when a line stops due to unexpected impurities. That’s why we keep open records on each lot, traceable and always searchable by the client. We know regulators keep stepping up scrutiny on cation and anion combinations too, especially with applications in electrochemistry and catalysis. Our manufacturing team reports, without reservation, every solvent and intermediate that enters the kettle. Some buyers test us, running years’ worth of side-by-side batches from multiple suppliers. Either the numbers add up or they don’t.

    Few of us on the production team started in office chairs—we have backgrounds in laboratory troubleshooting, scaling kilolab reactions, and problem-solving for clients directly. Our facility’s controlled environments and redundant safety steps reflect those same hard-learned lessons. For every kilogram delivered, we’ve torn down and rebuilt filtration rigs, recalibrated reactors, and evaluated key performance signals against the shifting standards of global industry. Past experience tells us that once trace metals or byproduct salts appear, controlling them downstream is much harder than eliminating them at the source.

    Pushing Forward: Key Features in the Real World

    Expert users tell us that [3MBuPy][PF6] shows edge in several specific uses. Batteries and supercapacitors, for example, reward low-viscosity, thermally robust ionic liquids, and water contamination is a deal breaker. In high-performance chromatography, solvent front stability improves recoveries only when the background stays chemically quiet. And in catalysis, the cation structure of the pyridinium core (with its 3-methyl and n-butyl substitution) demonstrates consistently less side-product formation compared to comparable imidazolium or ammonium salts. We listen carefully and make adjustments batch by batch, rather than roll out a “one formula fits all” answer.

    In one recent year, a leading research consortium came to us for help troubleshooting persistent unwanted reactions in a series of nickel-catalyzed bond formations. Local competitors sold them broadly similar products, but with just enough anion instability and co-solvent carryover that subtle shifts undermined their yields. Through repeated side-by-side trials, their team confirmed that our batch—tracked from kettle sampling through packaging—facilitated cleaner conversions in both batch and flow chemistry. That case forced us to re-examine some process steps, adding extra purification. It isn’t cheap, but the results show in measurable reduction of side-reactions downstream.

    Another example came from an advanced battery prototype. Their engineers flagged persistent water pickup during transport and storage—even in a so-called dry room—hampering cell assembly and longevity. We countered by re-sealing our bulk containers at controlled humidity, then retrofitting outgassing steps. Retesting confirmed lower water content and reproducible cell discharge behavior, answering what recurrent mishaps on the user side kept ruining test cycles. These outcomes make our technical changes worthwhile; success of the end user feeds back into our own bottom line.

    Comparing with Other Ionic Liquids: What Matters

    Not all pyridinium salts are interchangeable. Some catalog-listed versions emphasize speed of delivery, sacrificing details of cation integrity or anion purity. Chloride and bromide contamination shows up downstream whether or not it seems measurable in the flask. As for imidazolium-based liquids, again, the core reactivity profile shifts the balance with either increased viscosity or altered electrochemical window. N-Butylpyridinium cations tend to hold up through more cycles and harsher conditions, especially with 3-methyl appended—the practical result is less decomposition and more predictable performance through high-temperature operations.

    Comparing to traditional organic or inorganic electrolytes, [3MBuPy][PF6] wins out in two vital domains. First, it features negligible volatility. This means lab air stays cleaner, and costly ventilations for risk mitigation run less frequently, slashing yearly operating expenses. Second, the ionic composition resists breakdown—no offensive odors, no visible residue left behind, and reliable electrochemical neutrality even under elevated voltages. These aren’t marketing boasts; they show up in quantifiable lifetime metrics, measured every time a cell completes its cycle count or a catalyst reservoir holds up under weeks of repeated stress conditions.

    We see many clients reconsider older solvent systems or electrolyte matrices, only to find them lacking for new demands. As the push for safer, more stable chemicals strengthens—driven by both customer safety teams and government mandates—the edge shifts toward next-generation ionic liquids. Extra additives or stabilizers aren't essential if the base product delivers on purity and formulation control out of the gate. In years past, the margin between “good enough” and “unacceptable” was wide. These days, the practical difference narrows, and tolerance for surprises disappears. Our focus on direct, in-house manufacturing (rejecting anonymous outsourcing) gives full transparency.

    Usage in Development and Scale-Up: Real Insights

    From a synthesis standpoint, [3MBuPy][PF6] adapts itself to both research and industrial settings. Research labs benefit from predictable boiling behavior and robust shelf life. Large-scale facilities see gains in material traceability, loss reduction, and consistent environmental controls. We constantly pressure-test our deliveries with customer trials, always inviting feedback directly to production leads. This cycle—batch, test, revise—leaves our team and clients more informed, supporting both incremental improvements and big leaps as chemistry evolves.

    Some research partners have taken our ionic liquid well beyond solvent duty: using it as a reaction medium for special transition metal catalysis, or as part of ionic liquid-polymer blends for advanced membrane materials. In those cases, the minimal water and trace impurities in the product mean less pre-processing, stronger guarantee of target outcomes, and lower failure rate. Scaling up, we support industrial users by collaborating on custom sizing, tailored storage solutions, and specialized bulk containers producing less downtime and waste. Teams operating on pilot or plant scale value the readiness to adapt container sizes and shipping methods, always prioritizing safety and regulatory requirements.

    We often participate in long-term studies, assisting on test method design or providing technical data, never shying from third-party audits or cross-lab blind tests. Over time, good manufacturing habits—clear labeling, comprehensive lot tracking, immediate issue response—pay off in far fewer rejected shipments and more robust, repeatable results.

    Packaging choices stem from practical lessons. For sensitive operations, we offer flame-sealed glass bottles to stop infiltration during storage. For volume users, industrial drums and lined containers withstand months of airtight holding and safe onsite dispensing. No one enjoys cleaning up leaks or contamination events, so rigorous pack-off validation with every run speaks louder than sales promises. Our logistic coordinators monitor global transit rules, adapting delivery modes to changing import and export documentation shifts, and always preparing for last-minute hiccups in customs or climate exposure.

    Environmental Responsibility from the Point of Synthesis

    Regulatory pressure worldwide grows heavier on industrial chemicals, and for good reason. We engage with every stage of our [3MBuPy][PF6] production to minimize byproduct and manage end-of-life handling. Solvent recovery, responsible disposal of any process waste, and a push toward lower-emission manufacturing all mark our daily habits. Within our own facility, closed-loop distillation steps and careful abatement systems reduce both emissions and workplace hazards. These details matter—regulators, neighbors, and end-users all watch, and so do our own teams, whose safety and pride rely on responsible advance.

    Technical staff everywhere know the movement toward green chemistry isn’t just a buzzword—rules only grow stricter and customers expect more. Our efforts to improve water and energy use intensity per kilo produced haven’t ended. Each audit delivers fresh ideas, whether from a seasoned plant engineer or a new operator. Our compliance teams sit shoulder-to-shoulder with production supervisors, updating procedures and never leaving assumptions unchecked.

    Some in the industry cut corners, re-labeling bulk commodity products and obscuring origins. We maintain full batch-record integrity, disclosing all known variables and flagging potential process contaminants. Competitive pricing never justifies reducing standards or obscuring traceability. From incoming raw materials to outgoing finished product, every step remains transparent to our clients, regulatory partners, and quality assurance staff.

    Future Pathways: Where Expert Collaboration Takes the Lead

    As industries adapt to battery innovation, synthetic chemistry advances, and more responsible manufacturing practices, materials like [3MBuPy][PF6] take a central position. The practical effects reach across many fields—labware cleaning, medicine development, circuit board assembly, specialized coatings, and more. Only by staying engaged with end-users, test laboratories, and regulatory agencies do we keep pace with expectations. Our own participation in international standards groups and research consortia keeps us advised on technical advances and early warning of upcoming specification changes.

    Markets never stand still—demand swells and fades in step with both technology shifts and new mandates. We keep capacity agile, continually expand testing protocols, and invest in upskilling the team. Technical support staff don’t occupy a far-off call center; they work steps from the production area, able to trace the entire process from reaction flask to outgoing shipment. When an application presents fresh challenges, we address them quickly. New use cases or application failures give us raw feedback we apply without delay.

    Looking outward, we see [3MBuPy][PF6] as more than a catalog entry. It’s the product of ongoing partnership between manufacturing, technical end-users, and regulators. Every successful delivery builds trust, not just transaction volume. Product stewardship remains part of our mission, never an afterthought. Technical documentation, real-time regulatory updates, and lifelong traceability—all come built in. This commitment earns repeated business and pushes us to do better every cycle.

    Team Insights: On-the-Ground Experience Shapes Quality

    Our team spans backgrounds in fine chemical synthesis, quality analytics, and industrial hazard management. We draw lessons from both textbook chemistry and years of hands-on troubleshooting. The blend of traditional expertise and constant retraining builds a culture steeped in accountability. We encourage full visibility at every job stage—whether loading reagents, checking reactor status, or instructing junior staff. Cross-training is the rule not the exception. The result: fewer errors, a stronger safety culture, and product with consistency year after year.

    From the viewpoint of the chemist in the plant, [3MBuPy][PF6] captures a philosophy: pay attention to details, own the process, and encourage collaboration, inside the factory and with end users. Each improvement in purity, packing, or technical data reporting directly supports the lab technician debugging a new reaction, the engineer assembling energy storage systems, and the environmental auditor reviewing supply chain impacts. We believe our approach matches the needs of today’s rapidly changing chemical world, always keeping both human and technical insight at the core of every production run.