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Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide

    • Product Name Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide
    • Alias BEDMAS Tf2N
    • Einecs 821-528-0
    • 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

    662363

    Chemicalname Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide
    Abbreviation BEDMA-TFSI
    Casnumber 99790-86-6
    Molecularformula C13H19F6N2O4S2
    Molecularweight 478.42 g/mol
    Appearance White to off-white solid
    Meltingpoint 85-90°C
    Solubility Soluble in water and polar organic solvents
    Density 1.33 g/cm³ (approximate)
    Ionicliquid Yes
    Application Electrolytes, ion-conductive materials, research
    Storageconditions Store in a cool, dry place, tightly closed
    Ph Neutral in aqueous solution
    Smiles CC[N+](C)(C)CC1=CC=CC=C1.[N-](S(=O)(=O)C(F)(F)F)(S(=O)(=O)C(F)(F)F)=O
    Refractiveindex nD 1.42 (estimated)

    As an accredited Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Supplied in a 25g amber glass bottle with a screw cap, labeled with chemical name, formula, hazard pictograms, and handling instructions.
    Shipping Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide is shipped in tightly sealed containers, under cool and dry conditions. It is classified as a specialty chemical and may require transport as a non-hazardous compound, but with caution to avoid moisture and contamination. Appropriate labeling and documentation must accompany each shipment for regulatory compliance.
    Storage Benzyl(ethyl)dimethylammonium bis(trifluoromethanesulfonyl)imide should be stored in a tightly sealed container under an inert atmosphere, such as nitrogen or argon. Keep it in a cool, dry, and well-ventilated location, away from moisture, heat, and incompatible materials. Store at room temperature or as directed on the manufacturer's label, and protect from direct sunlight and strong oxidizing agents.
    Application of Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide

    Applications of Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide in Industrial Manufacturing

    Benzyl(ethyl)dimethylammonium bis(trifluoromethanesulfonyl)imide supports critical manufacturing sectors requiring advanced ionic liquids and high-performance conductive additives. As a direct manufacturer, we have optimized our product for consistent results across specialized chemical processes in energy storage, advanced coatings, catalysis, and electrochemical manufacturing.

    1. Electrolyte Component for High-Performance Lithium Batteries

    Our material serves as a key ionic liquid and electrolyte additive in lithium battery cell assembly, enhancing thermal stability and electrochemical window in next-generation lithium-ion and lithium-metal battery systems. Battery producers incorporate it at precise formulation stages to achieve target cell stability and discharge profiles required by automotive and grid-scale energy storage applications.

    Industry compliance standards

    • IEC 62660-2 (Secondary lithium-ion cells for the propulsion of electric road vehicles – Safety)
    • UN 38.3 (Transport of Dangerous Goods – Lithium Batteries)
    • ISO 9001:2015 (Quality Management Systems for battery manufacturing)
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances)

    Typical usage ratio

    • 1% – 8% by weight in mixed organic electrolyte systems; varies based on target conductivity and viscosity adjustments for specific cell designs.

    Downstream process integration

    • Dissolved directly into electrolyte blends during battery cell formulation, prior to electrolyte filling and cell assembly.

    Final product types

    • Automotive lithium-ion cells
    • High-energy pouch batteries
    • Stationary grid storage modules
    • Specialty lithium-metal prototype cells

    2. Antistatic Agent in High-Performance Polymeric Coatings

    Processors in electronic enclosure, semiconductor, and display film industries utilize our specialty salt as a stable antistatic additive for advanced polymer systems. Its tailored ionic nature supports long-term surface conductivity while maintaining the mechanical properties of the host polymer matrix, meeting performance and safety specifications for sensitive equipment.

    Industry compliance standards

    • IEC 61340-5-1 (Electrostatics – Protection of electronic devices from electrostatic phenomena)
    • UL 94 (Flammability standard for polymeric materials)
    • ISO 14644-1 (Cleanroom standard for controlled environments)

    Typical usage ratio

    • 0.2% – 1% by weight, with exact proportion determined by target static dissipation rate and polymer compatibility testing.

    Downstream process integration

    • Pre-mixed into polymer masterbatches or applied in coating emulsions just before extrusion, molding, or film casting steps.

    Final product types

    • ESD-safe housings for electronics
    • Cleanroom panels and flooring
    • Transparent display films
    • Polymer packaging for sensitive devices

    3. Ionic Liquid Phase Transfer Catalyst in Organic Synthesis

    This compound operates as a phase transfer catalyst and reaction medium in complex organic synthesis, supporting the development of specialty fine chemicals and pharmaceutical intermediates. It facilitates selective anion exchange and enables reactions under mild conditions, minimizing by-product formation and ensuring high-purity outputs in downstream pharmaceutical and agrochemical formulation.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • 21 CFR Part 211 (US cGMP for Finished Pharmaceuticals)
    • REACH Regulation (EC) No 1907/2006 (Registration and evaluation for use in chemical synthesis)

    Typical usage ratio

    • 5 mol% – 15 mol% relative to substrate, adjusted by substrate reactivity and desired reaction completion time in batch or flow reactors.

    Downstream process integration

    • Introduced to reaction vessels at the catalyst charging step; removed via downstream aqueous or solvent washes and recycled where process design allows.

    Final product types

    • Chiral pharmaceutical building blocks
    • Custom agrochemical actives
    • Advanced intermediates for fine chemicals
    • High-value specialty organics

    4. Electroplating Additive for Functional Metal Finishing

    Metal finishing operations include this ionic compound in electrolyte baths for non-aqueous and hybrid electroplating, supporting uniform metal ion deposition and improving surface conductivity. It enables the production of corrosion-resistant, low-defect coatings on automotive, aerospace, and precision engineering components where standard aqueous plating processes underperform.

    Industry compliance standards

    • ISO 12683 (Electroplated coatings – Functional tests for corrosion)
    • SAE AMS 2418 (Coatings, Nickel, Electroplated, Engineering)
    • ISO 9001:2015 (Quality Management in surface finishing plants)

    Typical usage ratio

    • 0.5% – 3% by electrolyte volume, calibrated according to target deposition rate and current density during bath formulation.

    Downstream process integration

    • Added at the electroplating solution preparation stage; monitored and maintained throughout the plating cycle for consistent surface characteristics.

    Final product types

    • Precision electronic contacts
    • Automotive connector pins
    • Aerospace actuator components
    • Wear-resistant engine parts
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    Certification & Compliance
    More Introduction

    Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide: A Manufacturer’s Perspective

    Introduction: Working with a Reliable Ionic Liquid

    In the landscape of advanced synthesis and specialized formulations, the demand for well-characterized ionic liquids has steadily expanded. Blending experience and dedication, manufacturing Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide, known in the field by its model designation BEDMABTI, has shown value through versatility and stable performance. Product characteristics such as purity, moisture content, and ion-exchange ability make a difference across application scenarios in both research and industrial environments. The stories behind our batches, customer partnerships, and problem-solving efforts have shaped how we approach quality and innovation for this compound.

    Why Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide Stands Out

    Handling synthesis at scale gives a close view of subtle differences that only show up during real-world application. This ionic liquid, made with a benzyl(ethyl)dimethylammonium cation paired with the widely recognized bis(trifluoromethanesulfonyl)imide (NTf2) anion, sets itself apart for several reasons. Traditional ammonium salts might rely on halide or tetrafluoroborate anions, but these alternatives often face hydrolytic instability or undesired reactivity, especially at high temperature or in the presence of sensitive reagents. NTf2 grants pronounced hydrophobicity and thermal stability. Our experience producing hundreds of kilograms of BEDMABTI has confirmed extended shelf life and resistance to moisture compared to more basic ionic liquids. In practical use, this means lower risk of unwanted degradants and easier handling under ambient conditions.

    From Raw Materials to Final Product: Control at Every Step

    Starting from raw benzyl and ethylamine derivatives, each batch moves through precise quaternization and metathesis routes. Among the key steps, strict control over stoichiometry and the removal of chlorinated byproducts matter most, because trace impurities cause unexpected problems downstream. Purification, washing, and vacuum drying play a larger role than lab-manual summaries suggest. Most researchers will notice residues or discoloration much later if these steps falter, causing declines in conductivity and interfering with catalysis or separation tasks. In our facility, batch consistency has always depended on a robust finishing protocol. Feedback from colleagues in pilot plants and end users in analytical labs regularly points to these details as the reason they specify our BEDMABTI instead of lower-purity options.

    Recognizing Performance in Application

    The uses of BEDMABTI reflect the broad appeal of advanced ionic liquids. Electrochemical cells, phase transfer catalysis, specialty solvents, and high-voltage battery electrolytes have benefited from unique ion-pair interactions and non-coordinating anion support. Observing our material in demanding organic synthesis—such as nucleophilic substitutions and transition metal catalysis—shows reproducible yields and stable color, both signs that the matrix is not contributing background signals or contaminants. In battery development, technicians often share that the NTf2 anion resists electrolysis more effectively under long cycling, lengthening both device stability and safety.

    Scientists and engineers sometimes start with more basic ionic liquids for early-stage experiments, but for final product validation, purity calls the shots. We frequently receive requests for low-halide and ultra-dry grades. Meeting these means tight manufacturing protocols, not just nominal purity claims. We set specification thresholds for residual halides under 50 ppm and water content below 100 ppm, tested by ion chromatography and Karl Fischer analysis. These technical goals align with what our customers say they require for successful scale-up and regulatory compliance.

    Solubility and Handling: Lessons Learned From Real Operations

    Some competitors have presented similar ammonium-based ionic liquids, and too often, customers face solubility or crystallization variances between batches. Preparing literature samples seldom requires a manufacturer’s attention to filtration, mixing, and bulk storage. Once larger drums of BEDMABTI are in use, unexpected precipitation, slow phase separation, or tough residues during solvent exchange can halt a production line. Drawing from years of supporting batch and continuous-flow users, we design process steps to yield a product clear of microcrystalline domains and dissolved salts. Consistent pouring, smooth blending, and predictable viscosity at room temperature directly correlate with diligent process control.

    Users have reported ease of integration with acetonitrile, DMSO, and select glymes, which is no accident. Leaving byproducts behind through thorough phase separation and carefully staged solvent removal addresses the root cause of haze and sediment. Reactivity with trace moisture and alkaline impurities, if not tightly managed, causes changes in appearance and, more importantly, alters reaction pathways. In battery and electrochemical use, even subtle compositional drift can suppress ionic conductivity or promote side reactions. Our quality checks focus not just on paperwork compliance, but on anticipating issues that affect the people mixing and applying the product on a day-to-day basis.

    User Safety and Environmental Impact

    Manufacturers play a role in the safe, responsible development of chemicals. History has taught harsh lessons about unanticipated side effects—environmental persistence, toxicity, and handling hazards. BEDMABTI, like other ionic liquids, allows for non-volatile, low-flammability processing compared to traditional organic solvents. NTf2-based salts, while less hazardous than aromatic hydrocarbons or halogenated solvents, still call for attention to chronic aquatic toxicity and the accumulation of perfluorinated compounds. Our process imposes strict waste capture and neutralization protocols, monitored per local regulation and international best practices. Suppliers who do not take chemical stewardship seriously risk both worker safety and downstream ecological harm.

    Direct communication with downstream users helps us refine our packaging, labeling, and transportation methods. Drumming and tote-filling routines prevent leaks and cross-contamination, and our logistics team adapts procedures to climate and distance so that no load arrives compromised by exposure or accidental mixing. Our technical staff walks every step before product leaves the plant—discussing best practices for spill containment, clean-up, and personal protective equipment. Building trust with users means relying not just on paperwork, but on real-world training and follow-up when challenges arise.

    User Experience and Feedback: Everyday Solutions

    The laboratory and plant environment both present their own hurdles. In the lab, weighing capabilities and sensitivity to atmospheric CO2 affect how easily a chemist can handle BEDMABTI. Over time, users found that common bench mistakes—leaving bottles exposed, storing near strongly basic materials—cause slow darkening or subtle changes in performance. Sharing those stories back with manufacturing lets us select containers, closures, and liners that minimize exposure and offer real protection from the environment. Customers have requested more detailed technical notes on how to open, portion, and re-seal containers; our team develops these guides based on actual user photos and feedback.

    In industrial settings, feedback centered on pump selection, residue minimization, and cleaning between campaigns. Early on, some customers saw increased pump wear due to under-specification of seals for ionic liquid exposure; now, equipment guidance includes compatibility lists and instructions for safe flushing. Process operators who spoke up about difficult cleanouts prompted a change to more dispersible grades—steps which reduce downtime and enhance safety during changeover. Our technical outreach extends beyond the order form—field engineers visit client sites, train new users, and gather data on long-term storage impacts, using these insights for ongoing improvement.

    Comparing BEDMABTI to Other Ionic Liquids: Details That Matter

    The market features many ammonium and phosphonium-based ionic liquids. Those with halide anions (such as chloride or bromide) show good early performance but often degrade in electrodes, form precipitates with silver or lead, and fail high-purity standards for pharmaceuticals or electronics. Tetrafluoroborate salts, though stable in inert environments, will slowly release fluoride with exposure to moisture, corroding glassware and eroding precision parts. BEDMABTI, by pairing the stable NTf2 group with a flexible benzyl(ethyl)dimethylammonium cation, bridges the gap. It offers improved inertness, robust physicochemical properties, and retains the synthetic compatibility of quaternary ammonium systems.

    Several fluorinated ionic liquids share NTf2 as an anion, but the cationic side tends to dictate performance. Shorter chain or symmetrical ammoniums lower viscosity but may restrict solubility or boost volatility. Higher molecular weight phosphoniums, while heat-resistant, come with cumbersome handling and high production costs. Users in catalysis and separation science have noted that BEDMABTI supports robust solubilization of organics and ionic substrates without excessive foaming or residue buildup. Over many cycles in batch reactors and continuous flow platforms, performance remains stable as new products enter the market—a fact supported by third-party validation in academic and industrial publications.

    Specifications and Quality Culture—More Than Just Certificates

    Not all “high-purity” claims withstand careful examination. The BEDMABTI specification includes target ranges for density, melting point, water content, and non-volatile matter. Yet actual testing, batch scanning by NMR and IC, and record-keeping make the difference between theoretical purity and trust, particularly once a customer points out a repeat issue from a different supplier. Each lot comes backed not just by a certificate, but by a transparent production record and retained sample archive. Manufacturing sites conduct parallel analysis, so feedback and retests flow into both quality systems and process updates. Sudden color shifts or off-spec batches spark corrective action meetings, not excuses.

    Supply interruptions and raw material price swings often challenge chemical manufacturers. By maintaining steady relationships with upstream producers and investing in redundant purification and packaging lines, we can sustain output levels that researchers and companies rely on. During the global logistics crunches of recent years, plenty of customers turned to us after others failed to deliver. Reliable stock, responsive technical advice, and willingness to troubleshoot at the user’s bench differentiate a manufacturer from a trading house or simple reseller.

    Regulatory Attention and Long-Term Trends

    Global attitudes toward specialty chemicals have shifted—environmental impact, traceability, and end-of-life fate now carry more weight in R&D and procurement. BEDMABTI remains one of the more robust choices for organizations managing international compliance as regulatory agencies focus more on persistent organic pollutants and fluorinated contaminants. Leading jurisdictions have created detailed registration frameworks for ionic liquids; as manufacturers, our documentation supports these requirements with batch-level breakdowns, impurity profiling, and safety review. Advocacy groups and industry customers now ask pointed questions about long-term environmental health, prompting data collection and safer design initiatives. Through dialogue with both regulators and research partners, our manufacturing practices continue to evolve, and product stewardship adapts to the next generation of scrutiny.

    Many organizations choose BEDMABTI for bench-scale validation, then invest in larger quantities for pilot or production runs. This transition exposes any hidden weaknesses—be they package leaching, contamination risk, or shelf-life decline. By tracking each order’s journey from synthesis to delivery and follow-up, we help customers meet compliance demands, but also improve real-world reliability. No solution lasts without attention to both ends of the supply chain—and true partnership starts before any drum leaves the plant.

    Facing Common Challenges: A Manufacturer’s Responsibility

    Chemical manufacturing never stands still. New regulatory restrictions, shifting customer requirements, evolving application methods, and competitive innovations keep pressure on both processes and people. BEDMABTI must live up to expectations not just during procurement, but throughout storage, handling, and in every batch of the end application. Waste reduction, improved energy usage, and responsible packaging now form part of every product review. Environmental fate, recyclability, and options for downstream remediation factor into both design and ongoing process changes.

    Our chemists and engineers pay attention to real outcomes—how a batch performs in chromatography, how residue cleans after a pilot campaign, or what feedback arrives from an overseas laboratory. Local office visits and industry conferences give rare chances to see how our effort fits into the bigger picture. Learning from new tests in fast-evolving spaces, such as green separations, energy storage, and bioprocessing, keeps us alert to weaknesses and opportunities. The measure of a good manufacturer rests in this curiosity and commitment to improvement, not the simplicity of a data sheet or catalog listing.

    Often, customers switching from off-spec or inconsistent sources find direct comparison enlightening. Smooth blends, reliable performance, and transparent documentation remove friction from project timelines. The fastest, loudest claims on paper fade with repeated problems in scale-up or process reliability. Trusted feedback, field pilot support, and a willingness to address problems early have cemented ongoing relationships, even as both applications and expectations broaden year after year.

    Conclusion: Building Long-Term Value Together

    Several decades of manufacturing advanced ionic liquids like Benzyl(Ethyl)Dimethylammonium Bis(Trifluoromethanesulfonyl)Imide have shaped a responsive way of working grounded in facts, observation, and partnership. Customers use BEDMABTI in creative, demanding, and ever-changing applications—from bench chemistry to full-scale production. We listen to what works and, just as seriously, where improvement is required. Success means predictable, robust product, honest documentation, and hard-earned trust at every step. For those seeking a well-made, thoughtfully supported ionic liquid, our doors remain open and ready for the next challenge.