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N-Ethylpyridinium Tetrafluoroborate

    • Product Name N-Ethylpyridinium Tetrafluoroborate
    • Alias NEtPyBF4
    • Einecs 249-762-3
    • 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

    390678

    Chemical Name N-Ethylpyridinium Tetrafluoroborate
    Molecular Formula C7H10BF4N
    Molar Mass 195.96 g/mol
    Cas Number 143262-34-8
    Appearance White to off-white crystalline powder
    Solubility Soluble in water and polar organic solvents
    Melting Point 85-89 °C
    Density 1.22 g/cm³ (estimated)
    Purity Typically ≥98%
    Storage Conditions Store in a cool, dry place, tightly closed
    Hazard Statements May cause skin and eye irritation
    Synonyms 1-Ethylpyridinium tetrafluoroborate

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

    Packing & Storage
    Packing 25g of **N-Ethylpyridinium Tetrafluoroborate** is supplied in a sealed amber glass bottle with tamper-evident cap and labeling.
    Shipping N-Ethylpyridinium Tetrafluoroborate should be shipped in tightly sealed containers, protected from moisture and incompatible substances. It must comply with local, national, and international regulations for chemical transport. Handle with care, avoiding physical damage. Proper labeling, documentation, and packaging are essential to ensure safe and compliant delivery to the destination.
    Storage N-Ethylpyridinium Tetrafluoroborate should be stored in a tightly sealed container, protected from moisture and light, in a cool, dry, and well-ventilated area. Avoid exposure to incompatible substances such as strong oxidizers and acids. Ensure proper labeling and keep away from heat sources or ignition. Store at room temperature, and follow standard laboratory safety protocols for chemical storage.
    Application of N-Ethylpyridinium Tetrafluoroborate

    Applications of N-Ethylpyridinium Tetrafluoroborate in Industrial Manufacturing

    N-Ethylpyridinium tetrafluoroborate supports advanced industrial processes through its unique ionic properties. As a direct manufacturer, we supply this compound for specialized downstream sectors where strict compliance, precision in formulation, and controlled integration ensure performance, safety, and regulatory adherence.

    1. Electrolytes for Capacitor and Battery Manufacturing

    In the energy storage industry, this ionic salt serves as a conductive additive within electrolytic solutions for high-performance supercapacitors and lithium-ion batteries. Its thermal stability and wide electrochemical window maintain charge transfer efficiency and cycle durability, critical for compact devices facing rigorous charge-discharge regimes. Manufacturers routinely blend it with organic solvents, relying on controlled mixing conditions and closely monitored purity levels to prevent contamination and potential device failure.

    Industry compliance standards

    • IEC 62660-2 (Secondary lithium cells and batteries—Safety tests)
    • UN 38.3 (Transport safety testing for lithium batteries)
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances)
    • ISO 9001:2015 (Quality Management System for Process Control)

    Typical usage ratio

    • 1–3% w/w of total electrolyte solution for battery systems
    • 0.5–2% w/w for supercapacitor electrolytes
    • Adjust upwards based on solvent viscosity and desired ionic strength

    Downstream process integration

    • Addition during electrolyte solution preparation under inert atmospheric mixing
    • Filtration and degassing step prior to cell filling for impurity removal
    • Final inclusion before vacuum sealing in cell assembly line

    Final product types

    • Lithium-ion battery packs for electronics and automotive use
    • Supercapacitor modules for grid stabilization, power tools
    • Hybrid capacitors in renewable energy storage systems

    2. Electrochemical Catalysis for Organic Synthesis

    High-purity N-Ethylpyridinium tetrafluoroborate acts as a supporting electrolyte and phase-transfer agent in paired electrochemical reactions. It supports efficient charge separation and selective catalytic processes, especially in C–H activation and oxidative coupling syntheses. Researchers and industrial producers value its extremely low water content and consistent ion mobility, which are necessary to minimize by-product formation and ensure high reaction yields in batch and flow reactor configurations.

    Industry compliance standards

    • REACH Regulation (EC No 1907/2006) for chemical registration and use
    • ISO 17025 (Testing/calibration laboratory competence)
    • GMP guidelines for manufacturing active pharmaceutical intermediates (where relevant)

    Typical usage ratio

    • 2–8 mmol per 100 mL solvent for most electroorganic transformations
    • Optimized experimentally to balance conductivity with substrate solubility

    Downstream process integration

    • Charging the electrolyte into synthesis vessel before substrate addition
    • Electrolysis under controlled potential/current density
    • Removal of supporting electrolyte via crystallization or aqueous extraction, followed by drying

    Final product types

    • Active pharmaceutical ingredient (API) intermediates
    • High-value fine chemicals, including aromatic and heterocyclic compounds
    • Agrochemical building blocks for further derivatization

    3. Ionic Liquid Preparation for Green Solvent Systems

    The material provides a pyridinium cation source for synthesizing tailored ionic liquids used in extraction, catalysis, and environmentally conscious process media. Its predictable anion-cation interaction properties enable design of ionic liquids with specified viscosity, polarity, and thermal profiles. Downstream users select this salt for its batch consistency and trace impurity control, which translate to reproducible performance in scale-up extraction of heavy metals or biomass components.

    Industry compliance standards

    • OECD Guidelines for the Testing of Chemicals (Biodegradability & Ecotoxicity assessment)
    • REACH Regulation (EC No 1907/2006) for manufacturer/importer use
    • Local wastewater discharge limits applying to process solvents

    Typical usage ratio

    • Exact stoichiometric amount for stepwise cation/anion metathesis
    • Yields 100% conversion when reacted with appropriate tetrafluoroborate source
    • Residuals monitored below 0.1 mol% post-purification

    Downstream process integration

    • Batch blending with base-organic cations in reactor to form ionic liquid
    • Washing and vacuum stripping to remove starting material traces
    • Direct usage or further functionalization for application-specific ionic liquids

    Final product types

    • Task-specific ionic liquids for extraction processes (rare earths, precious metals)
    • Solvent systems for biomass fractionation or refining
    • Catalytic media for green chemistry and renewable feedstock upgrades

    4. Electrodeposition Additive in Metal Plating

    Within the specialty electroplating sector, this quaternary pyridinium salt functions as a brightening and leveling agent in non-aqueous or mixed aqueous plating baths. It modifies the deposition layer morphology and inhibits dendritic growth, vital for integrated circuit (IC) lead frame production and precision metal foil fabrication. Plating engineers monitor additive concentration rigorously to minimize defects and ensure uniform metal thickness, as even small deviations impact downstream assembly line efficiency and final product qualification rates.

    Industry compliance standards

    • ISO 4527 (Electroplated coatings—Testing for porosity)
    • IPC-4552 (Performance specification for electrodeposited coatings on printed circuit boards)
    • RoHS and REACH related to permissible process chemicals

    Typical usage ratio

    • 0.1–1 g/L bath concentration, based on metal type and desired deposit characteristic
    • Process monitoring via titration or HPLC every 4–8 hours of production

    Downstream process integration

    • Dosed with other brighteners at bath preparation stage
    • Continuous adjustment during electrolysis to maintain specified ratio
    • Post-plating rinsing to ensure removal from metal surface

    Final product types

    • IC lead frames with micro-fine gold or silver deposition
    • Metal foils for battery current collectors
    • High-precision connectors for electronics

    5. Additive in Sensor and Electrochromic Device Fabrication

    N-Ethylpyridinium tetrafluoroborate supports the formulation of polymeric and nanocomposite electrolytes for advanced sensor and electrochromic displays. Its ionic mobility and compatibility with polymer matrices optimize switching speed and coloration stability, important in automated tinting glass and flexible sensor arrays. During formulation, compound purity and particle size consistently influence device transparency and electrical uniformity, while precise dosing secures repeatable assembly yield on automated lines.

    Industry compliance standards

    • IEC 60747-5 (Semiconductor devices—Discretes and integrated sensors)
    • IEC 62692 (Electrochromic devices—Performance measurements)
    • ISO 14001 (Environmental management for electronic device manufacturing)

    Typical usage ratio

    • 0.5–2% by mass in polymer electrolyte formulations
    • Adjusted via thin-film conductivity and transmittance test results

    Downstream process integration

    • Solution blending with conductive polymer precursors
    • Deposition via slot die or spray technology on glass or flexible substrate
    • Thermal or UV curing to fix ionic content in polymer network

    Final product types

    • Electrochromic smart glass panels for building facades
    • Wearable electronic sensors
    • Display modules for information and control devices
    Free Quote

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    Certification & Compliance
    More Introduction

    N-Ethylpyridinium Tetrafluoroborate: A Manufacturer’s Perspective on Purpose-Driven Chemistry

    For those of us who craft N-Ethylpyridinium Tetrafluoroborate, each finished batch reflects more than chemical synthesis—it speaks to our resolve to meet modern industry needs with consistency and confidence. Behind every package of this salt lies hours of process design, raw material screening, and thoughtful optimization to reduce both impurities and batch variability. We understand why labs come directly to the source for charged pyridinium salts: trace moisture, discoloration, or inconsistent melting points lead to unreliable reactions or batch failures. These headaches don’t just hit the wallet—they undermine promising research and industrial ambitions.

    About the Product: From Reactors to Research Benches

    Our N-Ethylpyridinium Tetrafluoroborate—model NEP-BF4, available in lot sizes from 100g up to 10kg—stands out for those demanding clean, highly soluble ionic salts. We designed this product specifically for use in organic electrolytes, specialty synthesis, electrochemical cells, and phase-transfer catalysis. Its water-white crystalline form with minimal dusting signals a tightly controlled drying process and careful handling right through packaging. Picking the right starting materials, especially the pyridine and ethyl bromide, ensures we keep halide impurities out to preserve downstream yields and prevent side reactions. Throughout the synthesis, our operators keep a close eye on color uniformity and any signs of thermal runaway, factors often overlooked but well known to influence downstream performance.

    We have seen research grind to a halt because of inconsistencies in physical form or overlooked trace contaminants from non-specialist sources. That’s why our production lines build in additional purification and quality steps—vacuum drying, moisture control protocols during transfer, and repeated small-batch recrystallization—to meet tight specifications. Tests on each lot verify both the BF4 content and absence of hydrolyzable impurities, so every jar supports repeatable results in the lab.

    Critical Uses and the Principle of Reliable Supply

    There is growing demand for ionic salts in emerging battery chemistries—the steady shift away from traditional lithium hexafluorophosphate has put pressure on supply chains for robust, non-reactive ionic components. In our experience, N-Ethylpyridinium Tetrafluoroborate’s resilience against hydrolysis and high thermal stability offer clear benefits in battery electrolytes that must withstand tough conditions without degrading. Chemists rely on its stable, non-nucleophilic tetrafluoroborate counterion to minimize side products, which is crucial in new redox-mediating systems and organic electrolytes now driving the next generation of capacitors and sensor arrays.

    Outside batteries, we see steady interest in this salt from organic chemists exploring challenging coupling and substitution reactions. Its ability to promote phase-transfer catalysis—without introducing water or nucleophiles—delivers unique selectivity in difficult aromatic substitutions. Many peer-reviewed syntheses cite N-Ethylpyridinium Tetrafluoroborate to boost yield or reduce purification headaches because it’s chemically gentle yet effective, avoiding byproducts linked with more reactive or less stable counterions.

    The Difference: Only Specialists Capture the Full Picture

    Chemicals advertised as “the same” often differ in purity, flowability, particle size, and handling stability—details overlooked by non-manufacturers. Our plant teams measure every production run for water and residual halide down to parts per million. Why so strict? During scale-ups, even small differences cause uncontrolled side reactions, fouled equipment, or unstable formulations. We have solved cases where others’ products, made with less rigorous controls, led to crystallization failures, impure crystals, or impalpable product loss during filtration.

    Clients ask about cost—our answer draws on lived experience. Cheaper, poorly characterized lots save little if batches clog lines, force rework, or shut projects down. Laboratories that scale up from unreliable product quickly discover bottlenecks from solid caking or unpredictable reactivity. We counter these risks by tailoring our drying, sieving, and packing workflow. Our hands-on process prevents static cling, allows rapid dispensing, and ultimately cuts process downtime that would bleed project schedules.

    Another common concern: reproducibility during research. Academic and industrial chemists tell us they felt forced to repeat experiments or remove unexpected impurities after trying lesser alternatives. With our production data and real-time tracking, users rest easy knowing their batch matches specifications run to run. Years of feedback from battery and catalysis customers guided these controls—our upgrades go straight into product improvements, rather than marketing alone.

    Comparing to Alternatives: What the Details Show

    Some shops offer similarly named salts with broad or ambiguous specifications, while dealers sometimes blend Chinese, European, and local product under a single invoice. In contrast, our team tracks every step: raw material source, in-process checks for off-odor or uneven color, and end-stage quantification. Our processes follow global best practices but apply in ways that scale—a difference that becomes clear to researchers facing mid-project disruptions. In electrochemistry, even slight differences in salt purity or water content alter conductivity and cell stability. Small residuals—halides or decomposition products—shorten cell lifetime or shift electrode response, as confirmed in recent academic studies.

    The choice of N-Ethylpyridinium over N-Methylpyridinium or N-Propylpyridinium isn’t trivial either. The ethyl group balances solubility and melting point, allowing users to handle and dissolve the salt efficiently at standard lab temperatures, yet still access the steric modulation needed in advanced organic reactions. The BF4 anion brings unmatched stability compared to weaker perchlorates or fussier hexafluorophosphates, especially in wet cycles or high-voltage applications. Unlike halide-based salts, our NEP-BF4 doesn’t promote unwanted nucleophilic displacement, a concern brought up by medicinal chemists and pilot-scale pharma groups.

    Choice of supplier also matters; our lab teams don’t just pass along drums purchased abroad. Instead, they control every phase, detect upsets before product ships, and accept responsibility for any deviation. This hands-on approach gives process engineers, researchers, and even undergraduate labs confidence from the outset.

    Why Specification and Batch Data Matter

    We’ve had calls from technical directors troubleshooting downstream instabilities. In most cases, it traced back to materials with incomplete batch records or missing impurity data. Our workflow generates certificates with every lot, including water (Karl Fischer titration), halide assays, and spectral validation (NMR, FTIR), produced by in-house analysts who actually see every run. We noticed competing products relying on generic testing or third-party batch codes—those shortcuts raise uncertainty at scale.

    Our clients in high-value electronic materials, battery laboratories, and academic synthetic groups benefit from this rigor. For example, battery engineers saw their shelf life double after eliminating product with trace halide contamination. When phasing out hexafluorophosphate in supercapacitors, they switched to NEP-BF4, tracking lower gas formation and fewer leakage events under thermal stress.

    In fine chemical manufacture, our salt’s consistent melting point (typically 120-124°C, always verified) offers chemists an internal check on both processing and compound identification. Unusual results get flagged fast—if you synthesize lots large enough, you know outliers come at the worst moment. By offering transparent lot data and parallel checks, we pave the way for fewer surprises.

    Looking Forward: Meeting Changing Industry Needs

    The push for greener, less hazardous laboratory and production materials puts added pressure on ionic salts like N-Ethylpyridinium Tetrafluoroborate. Our clients aim for minimal environmental risk and easier disposal; BF4-based salts answer that call better than outdated perchlorates or rare-earth fluorides. As global research circles set stricter purity requirements—especially in pharmaceuticals, organic electronics, and energy storage—suppliers must build nimble, tracked workflows that spot issues quickly and deliver traceable product on schedule.

    We have seen firsthand that lean, integrated manufacturing allows rapid scaling while avoiding the dead end of quality compromises. Our teams make use of automated moisture tracking, direct process feedback, and real-time imaging to catch material upsets early. If an operator sees a change in color, flow, or particle shape, the lot stops for review—a policy born from hard lessons, not just regulations. Regular feedback from users directs our future upgrades, so improvements focus on traceable performance, not just regulatory gloss.

    Supporting Researchers and Engineers Who Rely on Consistency

    Feedback from users—synthetic chemists optimizing catalysts, battery materials teams benchmarking cell stability, scale-up operators fighting filter clogging—shapes every improvement we make. One group, trialing a new redox-active organic material for next-gen batteries, pinpointed minor salt-associated side reactions as their primary obstacle. By working together, cross-validating results, and tightening our own batch controls, both our teams reduced error bars, achieving more consistent coulombic efficiency and longer test cycles.

    Such field-driven cycles of improvement ground us in real laboratory and pilot plant needs. Many peers in the chemical supply chain chase temporary demand spikes, losing touch with evolving application requirements that deepen over time. By contrast, closer, transparent service gives our partners the confidence to publish, patent, and scale up, knowing what enters their flask or cell is exactly what’s on the label—and nothing more.

    Beyond the Bottle: Sustainability and Integrity

    Even in specialty chemicals, sustainability and transparent stewardship are more than buzzwords. Our technical staff makes careful choices at every juncture—blending cost, recyclability, and process safety. For N-Ethylpyridinium Tetrafluoroborate, we avoid chlorinated solvents in favor of greener alternatives for both intermediate and final product washes, cutting hazardous waste without raising costs for end users. All steps factor in both long-term operator safety and downstream impact, values reinforced by the community of professional chemists and engineers who rely on our work.

    We document our environmental controls because responsible chemistry requires transparency from all partners up and down the supply chain. This ensures that our salt supports not only technical precision but also the continued innovation and socioeconomic progress of those we serve.

    Real-World Solutions and Learning from Experience

    Problems don’t get solved in a vacuum. Years ago, a client’s automated dosing system jammed from unexpected static in off-spec competitor salt; it ground their pilot plant project to a halt. After switching to our product line, with its robust antistatic protocols and controlled particle sizing, they reported zero dispensing failures for over a year of continuous operation—saving both money and time.

    These experiences inform every aspect of our development path, from sourcing and infrastructure to training programs for operators. We update our drying, blending, and sieving procedures based on user feedback and evolving technical demands. When a pharma partner warned of shelf-life drops after switching suppliers, we tracked it back to poorly controlled drying—fixing the root rather than blaming the symptom. Over years, this led to a system where practically every kilogram of NEP-BF4 can be traced from raw material to packed bottle, with minimal unexpected downtime or risk of recracking open batches.

    Designing chemical processes for minimal disruption, lower waste, and high-performance outcomes means never coasting on reputation or batch averages. Our role as a manufacturer is to anticipate these details—catching problems early, offering guidance, and investing in upgrades that help laboratories, scale-up teams, and production plants stay ahead of changing needs.

    Summary of Key Advantages

    Our N-Ethylpyridinium Tetrafluoroborate stands unique not through marketing but from a culture of responsibility to users who demand exact results. Deep process control—from raw material selection through end-stage drying and batch sealing—means our salt delivers high, repeatable purity, robust solubility, absence of wetting or caking, and reliable handling no matter the production scale. Research and industrial partners who have switched report fewer lost batches, better consistency, and easier troubleshooting, which in turn accelerates both discovery and commercialization cycles.

    Meeting these needs requires manufacturing focus, ongoing user engagement, and a willingness to adapt processes on the fly based on what the field learns. For any group seeking a dependable, high-performance ionic salt to enable better batteries, precision synthesis, or innovative electrochemical devices, working with a true producer delivers both confidence and real-world progress—benefits reflected in every batch we send out.