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N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide

    • Product Name N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide
    • Alias AMPip-TFSI
    • Einecs 810-504-1
    • 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

    402234

    Chemical Name N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide
    Cas Number 1406812-08-7
    Molecular Formula C12H19F6N3O4S2
    Molecular Weight 463.43 g/mol
    Appearance Colorless to pale yellow liquid
    Boiling Point Decomposes before boiling
    Density 1.37 g/cm3 (approximate)
    Solubility Soluble in polar solvents (e.g., water, acetonitrile)
    Melting Point -25 °C (approximate)
    Purity Typically ≥99%
    Storage Conditions Store in a cool, dry place; protect from moisture
    Conductivity High ionic conductivity
    Application Used as ionic liquid and electrolyte in batteries

    As an accredited N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 250g of N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide, sealed in an amber glass bottle with tamper-evident cap.
    Shipping **Shipping Description:** N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide should be shipped in tightly sealed containers, protected from moisture and light. Store and transport at ambient temperature unless otherwise specified. Handle as a potentially harmful chemical, following all applicable regulations for hazardous materials. Ensure compliance with local, national, and international shipping laws.
    Storage N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from moisture and incompatible materials such as strong oxidizers. Protect from light and direct sunlight. Use appropriate personal protective equipment when handling, and ensure labeling is clear and accurate to prevent accidental exposure or mixing.
    Application of N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide

    Applications of N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide in Industrial Manufacturing

    This page highlights the industrial applications of N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide, emphasizing real-world downstream sectors where this advanced ionic liquid supports formulation, processing, and performance, validated by international standards and industry-specific technical requirements.

    1. Electrolyte Additives for Lithium-Ion Batteries

    Cell manufacturers utilize this compound as a non-volatile, thermally stable ionic liquid electrolyte additive to increase battery lifespan, reduce risk of leakage, and widen operational temperature range. Its use supports high-voltage and high-energy cell chemistries in automotive, energy storage, and portable electronics. Our production observes electrolyte purity, moisture control, and metal contamination thresholds specific to cell assembly protocols.

    Industry compliance standards

    • IEC 62660 series for lithium-ion cells
    • UL 1642 Safety Standard
    • RoHS 2011/65/EU for hazardous substances
    • ISO 9001 for component quality management

    Typical usage ratio

    • 5-15% by weight in liquid electrolyte blends; adjusted based on targeted ionic conductivity and cell voltage requirements.

    Downstream process integration

    • Blending into base electrolyte (LiPF6 in EC/DMC/EMC) during solvent handling stage. Added prior to vacuum dehydration and cell filling to ensure homogeneity.

    Final product types

    • Electric vehicle lithium battery packs
    • Consumer electronics pouch cells
    • Grid-scale energy storage modules
    • Industrial backup power batteries

    2. Solvent Media in Organic Synthesis of Specialty Chemicals

    Pharmaceutical and agrochemical manufacturers incorporate this ionic liquid as a reaction medium for select nucleophilic substitution, oxidation, and alkylation transformations. The compound’s low volatility, tunable polarity, and inertness to strong bases/acids enable reduced solvent waste and facilitate efficient product recovery in closed-loop manufacturing.

    Industry compliance standards

    • ICH Q7A Good Manufacturing Practice Guide
    • REACH Regulation (EC) No 1907/2006
    • 21 CFR Part 211 (for pharma APIs and intermediates in the US)
    • ISO 14001 for environmental management

    Typical usage ratio

    • 10-80% solvent share in reaction system; tuning depends on substrate polarity and desired selectivity profile.

    Downstream process integration

    • Charged into jacketed reactors at solvent charging step. Enables homogeneous catalyst dissolution and improved mass transfer during controlled temperature or pressure operations.

    Final product types

    • Chirally pure pharmaceutical intermediates
    • Crop protection actives and advanced intermediates
    • High-value fine chemicals with green synthesis claims
    • Performance materials for coatings and optics

    3. Antistatic Layers for Flexible Electronics Films

    Manufacturers of flexible circuits and display films apply this salt in formulations for transparent, static-dissipative coatings. The ionic liquid’s conductivity and processability at low concentrations enable thin-film coatings that provide stable antistatic performance without sacrificing clarity or mechanical performance, critical in microelectronics lamination.

    Industry compliance standards

    • IPC-6013 for flexible printed boards
    • IEC 61340-5-1 for electrostatic discharge protection
    • ISO 9001 for process management in electronics fabrication
    • Restriction of Hazardous Substances (RoHS)

    Typical usage ratio

    • 0.1-1.5% by weight in coating or ink formulations, regulated by thickness, substrate, and end-use film resistivity target.

    Downstream process integration

    • Pre-mixed into aqueous or solvent-based ink prior to slot-die or gravure coating on PET/PC rolls; followed by thermal curing or UV crosslinking inline.

    Final product types

    • Flexible circuit protection films
    • OLED panel base substrates
    • Antistatic touch screen layers
    • Static-safe display interlayers

    4. Electrochemical Sensor and Actuator Components

    Producers of miniaturized sensors and ionic actuators use this salt as a core ionic conduction medium in polymer electrolytes. Its chemical stability under redox cycling, high ionic mobility, and electrochemical window support development of reliable, high-sensitivity sensor elements and low-voltage actuators for analytical, medical, or environmental instrumentation.

    Industry compliance standards

    • ISO 13485 for medical device quality systems (sensor devices)
    • IEC 61010 for electrical equipment safety
    • CE marking under relevant EU Medical Device Directives (MDD/MDR)
    • RoHS & REACH compliance for component regulations

    Typical usage ratio

    • 15-45% by weight in ion-conducting polymer electrolytes, chosen according to response time and target voltage window.

    Downstream process integration

    • Combined with polymer matrix during solution casting for membrane preparation, then laminated or patterned onto microelectronic substrates prior to encapsulation.

    Final product types

    • Wearable iontronic sensors
    • Biomedical diagnostic strips
    • Artificial muscle actuators
    • Gas and chemical environmental detectors

    5. High-Voltage Capacitor Electrolyte Formulations

    Electrical component manufacturers integrate this ionic liquid as an electrolyte in the production of advanced high-voltage supercapacitors, providing high breakdown voltage, enhanced thermal stability, and reduced self-discharge. The chemical’s defined ion transport characteristics serve critical roles in meeting reliability demands for grid, transportation, and backup power capacitors.

    Industry compliance standards

    • IEC 61071 for capacitors for power electronics
    • RoHS Directive 2011/65/EU
    • UL 810 standard for capacitors
    • ISO 9001 component QMS

    Typical usage ratio

    • 35-60% by weight in organic or ionic liquid-based electrolyte solutions; optimized according to cell geometry and target voltage stability.

    Downstream process integration

    • Direct filling into assembled capacitor cells under vacuum environment after electrodes stack and separator placement; degassing and sealing steps follow.

    Final product types

    • Power grid stabilization capacitors
    • Electric rail transit capacitors
    • Automotive hybrid power capacitors
    • Industrial UPS supercapacitors
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    Certification & Compliance
    More Introduction

    N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide: A Manufacturer’s Perspective

    Rethinking Modern Electrolytes with Purpose and Experience

    Growing demands in battery and electrochemical industries pushed our team of chemists and engineers to consistently challenge the status quo. Over years spent in the laboratory and on production floors, we encountered hurdles with stability, conductivity, and sometimes, elusive consistency in ionic liquids meant for tomorrow’s devices. This journey led us to refine and perfect N-Allyl-N-Methylpiperidinium Bis((Trifluoromethyl)Sulfonyl)Imide. Known among specialists as a next-generation ionic liquid, this product brings a robust set of properties developed for reliability and repeat performance.

    Refining a Molecular Approach: What Sets This Ionic Liquid Apart

    Skepticism runs deep among chemists evaluating new electrolyte candidates. Our own process demanded we see meaningful advances, not just incremental tweaks. Many early ionic liquids lacked true thermal stability and left users wrangling with fluctuating results or difficulties in upscaling for industrial needs. The N-allyl group combined with the piperidinium ring offered a distinct structure, bringing measurable improvements in viscosity and electrochemical stability. Years of feedback from partners working in supercapacitors, lithium-ion batteries, and specialty energy storage highlighted this point repeatedly.

    Other salts in this family often relied on ammonium or imidazolium frameworks. Those see early breakdown in strong field conditions, or produce drift in long-term storage. By moving to a N-allyl-N-methylpiperidinium system, we achieved lower volatility and better oxidative resilience. Chemically aggressive environments stressed the material but did not cause discoloration or gassing observed in competitor salts. That difference meant a great deal to technicians rebuilding prototypes week after week — they needed to trust the material, not just the numbers on a sheet.

    Specifications Shaped by Real Demand

    Field engineers and laboratory scientists relay more than theoretical concerns. They ask whether the material handles cycling in all seasons, how it holds up to freezing or unexpected surges, and if it fits into legacy or next-gen designs without compromise. Listening to those needs, we prioritized purity and consistency. Every batch begins with analytical verification of identity by NMR and FTIR, as the subtle structural differences greatly alter ionic conduction. Moisture content rarely strays above detection thresholds, which prevents hydrolysis—a notorious culprit in other salts. Typically, the product appears as a pale to colorless liquid at room temperature, with handling made simpler by the absence of significant odor or fume risk.

    Long before release, we stress-test for decomposition under both inert and oxidative atmospheres. Electrochemical windows stretch well beyond what conventional ammonium-based electrolytes allow, often exceeding 5 volts with negligible parasitic reactions in lab trials. This stability then translates to more reliable performance for customers working in high-voltage systems. Each delivery maintains low halide content, as halide-related side reactions have spoiled energy densities in numerous rival platforms.

    Contributions in Key Applications

    Battery developers seek electrolytes that increase energy density without sacrificing safety or cycling life. Attempts to run older liquids at higher voltages risked catastrophic failures — vented cells, exemplified by pressure ruptures and even fire. N-Allyl-N-Methylpiperidinium bis((trifluoromethyl)sulfonyl)imide provides a broad electrochemical window and proven compatibility with advanced anodes and cathodes. Paired with lithium salts, the product supports both broad temperature window and resistance against dendrite formation, two persistent causes of battery recalls and end-of-life failures in the field.

    Capacitor and supercapacitor experts found that piperidinium-based ionic liquids deliver higher ionic mobility than their cyclic ammonium predecessors. In repeated capacitance cycling, our customers reported less ESR growth and slower capacity fade. The low viscosity—difficult to achieve in highly fluorinated ionic liquids—gave measurable improvements in charge/discharge rates, translating to real-world gains in power density. Years after initial implementation, clients still return with positive notes on cell stability even under aggressive pulsed loading.

    Our product has also been integrated in electroplating baths for specialty metal deposition, particularly for applications where strong, stable electrochemical behavior is non-negotiable. Customers in precision plating found the product’s stability reduced contamination or edge growth that had marred older recipes. These users spoke about simplifying their process controls and reducing their need for constant monitoring and cleanup.

    Safety and Handling: Lessons from Our Shop Floor

    Routine handling experience influenced our manufacturing protocols and advice to customers. Unlike some imidazolium liquids that require special ventilation or reactive containment, this compound does not produce strong odors nor reacts unpredictably to normal atmospheric moisture. Our technicians noted that splash risks are still present—eye protection and gloves form the baseline, but the low-creep, non-volatile nature of the liquid meant no surprise vapor issues. These details mattered during product transfer and scale-up, where ergonomic and environmental risks often crop up.

    Incidents in the past, traced back to less stable ionic systems, taught us how small impurities spark costly interruptions. Rigorous filtration and in-line detection steps reduced recall rates and improved satisfaction for high-purity users, particularly those working in semiconductor industries. We invested in closed-loop filling lines to minimize any exposure and control batch-to-batch reproducibility. Field feedback continues to drive our quality improvements; we keep reports open and actioned, often improving intimately based on user suggestions.

    Comparisons with Ammonium, Imidazolium, Pyrrolidinium, and Beyond

    Our early development often defaulted to ammonium or imidazolium-based test cases because of their broad commercial availability and abundant literature. The ammonium platforms showed fast ionic mobility but disappointed with thermal robustness and oxidative endurance. Imidazolium-based candidates brought flexibility and were easier to process, but proved more susceptible to UV or thermal decomposition, generating impurities we could not remove at scale. For energy storage teams seeking longer calendar lives and higher energy densities, both platforms fell short during real-world trials. Repeated dry-downs brought phase separation or darkening, and conductivity lost pace with expectations.

    Pyrrolidinium-based alternatives arrive from a different corner of the chemistry world, with claims of better room-temperature fluidity and improved cathodic stability. These mixtures show benefits but, under strenuous field use, tend to increase viscosity at lower temperatures, slowing ion migration and freezing out electrolytic processes—absolutely a problem for cold-weather deployments and space-saving devices. Our N-Allyl-N-Methylpiperidinium backbone stayed fluid across a broader window, enhancing direct performance in cold storage and sub-zero operations.

    Some manufacturers pack formulations with additives to mask weaknesses of their base salt. This practice muddies long-term impurity profiles and complicates recycling or disposal. We kept our formulation straightforward, giving our customers a purer, more predictable substance for their own bespoke blends. As protocols shift toward greener and safer chemistry, these differences make integration simpler and future compliance less demanding.

    Production Journey: Moving from Lab Bench to Industrial Scale

    Few chemicals transition smoothly from glassware to ton-scale reactors. Batch consistency often suffers, and small synthesis glories can vanish on upscaling. We refined our preparation using continuous flow chemistry, eliminating disadvantages of batch exotherms and simplifying real-time quality controls. Data logging tracks every parameter, letting us recall production details for every kilogram. Adjustments took months, sometimes years: critical purity standards meant even tiny shifts in raw materials or atmospheric contaminants were rooted out. Internal teams often clashed in those early days, pushing for yield vs. purity, but experience settled arguments in favor of unrelenting quality.

    Reactor design optimized for this specific salt, not a generic vessel, lets us prevent unwanted byproduct formation—especially colored or volatile off-cuts from the allyl group. Our in-process monitoring ensures that each run meets the conductivity and stability benchmarks established, never dipping below performance data we gathered during field trials. The journey involved more trial and failure than trend articles cover. Early lots taught us to avoid standard scale-up shortcuts; instead, patient, slow ramping yielded the best results for critical performance.

    Sustainability, Waste Management, and Looking Toward Tomorrow

    Environmental footprints sit squarely in our planning, as the chemical industry’s scrutiny grows. Unlike fluorinated solvents from previous generations, this ionic liquid breaks down far less in environmental release scenarios, and its low volatility means emissions count stays low across production lines. Our own waste management practices include solvent recycling programs and off-spec product reprocessing, eliminating the largest vectors for emissions or environmental risk. The synthesis routes use economically available precursors, reducing reliance on difficult or hazardous upstream materials.

    We have worked alongside academic and private-sector partners to further test and model breakdown pathways. So far, the compound resists the most damaging photolytic and oxidative decomposition modes, minimizing the formation of persistent environmental toxins. No substantial waste streams or contaminated water byproducts emerge beyond standard salt and organic process solutions, which we treat on-site. Our environmental policies evolve as partner demands shift, and each step in our process anticipates stricter regulations tomorrow. Transparent disclosure and continual improvement anchor trust with clients focused on sustainable sourcing.

    Customer Support and Real-World Problem Solving

    Technical requests often go beyond datasheet limits: battery engineers ask how the salt handles rapid cycling, environmental teams want assurances about accidental release, and R&D chemists challenge us on scaling non-standard additives. Answers rarely come from books — instead, they grow from hands-on work and direct communication with our clients. We prioritize sample feedback loops, running joint test series with partners prior to full supply contracts so no assumptions slip through unchecked. This approach, honed over years, shortens development cycles and builds credibility far more than pushing out generic guidelines.

    Warranty claims or technical doubts rarely originate with the product itself. Instead, we see process confusion or cross-contamination on mixed lines. Knowing this, we built technical service into our model: trace reports, infield support visits, and long-haul partnerships that reach across years. Small but constant tweaks to advice—detail about mixing order, optimization of electrolyte blending, temperature ramping protocols—often unlock better value and save our clients millions over project lifetimes.

    For academic groups and startups, we offer collaborative forums, troubleshooting common issues that emerge as new chemistries move toward market. Consistent engagement helped our partners move from pilot plant missteps to successful commercialization. We believe that every lesson, even those learned the hard way, becomes an asset for the next generation of users. Transparency in what works and what still requires attention helps all sides build confidence in emerging electrochemical technologies.

    Continuing Innovation: Listening and Learning from the Laboratory Forward

    Chemical manufacturing, especially for specialty ionic liquids, sits at a crossroads where stability, performance, and responsibility intersect. Insights born in daily production struggles, late-night troubleshooting sessions, and open-door policy with our clientele have shaped the approach behind this electrolyte. Each batch we deliver reflects lessons from failed prototypes, stubborn contaminants, and odd field returns. By keeping a steady focus on performance, reliability, and clear value, we cultivated a product that meets demands of today’s electrochemical designs and adapts to evolving needs tomorrow.

    We see firsthand how battery and energy storage systems transform industries from transportation to emergency backup, and know our electrolyte solutions must perform under unpredictable, often harsh, environments. Listening to partners remains more valuable than any whitepaper. Daily dialogue drives subtle but critical refinements, from purity improvements and packaging upgrades to whole new product lines. By remembering the challenges we faced as chemists and engineers, we keep our process, safety, and support genuinely aligned with what matters in the real world.

    Conclusion: Commitment Beyond the Molecule

    Chemical manufacturing now demands both technical precision and collaborative mindset to support partners advancing better energy and industrial solutions. Our N-Allyl-N-Methylpiperidinium bis((Trifluoromethyl)Sulfonyl)Imide exemplifies this mindset, built by people who’ve learned from past limitations and embraced the rigor of direct customer challenge. The story of this ionic liquid, from its molecular design to its impact in critical applications, tells more than any isolated test result could. Every discussion with users sparks improvements large and small. We stand by an approach that places experience, adaptability, and honesty alongside technical excellence, knowing the future of materials science grows only stronger through meaningful partnership.