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1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer

    • Product Name 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer
    • Alias Poly(1-vinyl-3-butylimidazolium chloride)
    • Einecs 500-120-7
    • 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

    214264

    Product Name 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer
    Chemical Formula (C7H13ClN2)n
    Appearance white to off-white powder
    Molecular Weight variable (polymer)
    Solubility In Water soluble
    Density 1.2-1.3 g/cm3
    Odor characteristic, mild
    Ph Value approximately 5-7 (1% solution)
    Ionic Nature cationic
    Thermal Stability stable up to ~200°C
    Storage Conditions store in a dry, cool place, tightly sealed
    Hygroscopicity hygroscopic
    Monomer Structure vinyl and imidazolium functional groups

    As an accredited 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging for 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer is a 500g sealed, high-density polyethylene bottle with a tamper-evident cap.
    Shipping **Shipping Description:** 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer is shipped in tightly sealed, chemical-resistant containers to prevent moisture and contamination. Handle with care, protecting from heat and direct sunlight. Complies with relevant chemical transport regulations. Ensure proper labeling, and provide Material Safety Data Sheet (MSDS) upon shipment. Store in a cool, dry, well-ventilated area.
    Storage Store **1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer** in a tightly sealed container, in a cool, dry, and well-ventilated area away from direct sunlight and moisture. Avoid exposure to strong oxidizing agents and incompatible materials. Use appropriate personal protective equipment when handling. Ensure the storage area is equipped to contain accidental spills and is compliant with local chemical safety regulations.
    Application of 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer

    Applications of 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer in Industrial Manufacturing

    1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer serves specialized functional roles in advanced industrial manufacturing environments. Our material enhances critical steps in downstream sectors where antistatic, conductive, or selective ion transport properties are required. As the direct manufacturer, we ensure strict quality control from polymerization to final shipment, supporting our clients in meeting stringent end-use application standards.

    1. Antistatic Agent for Engineering Plastics Compounding

    Compounding operations in electronics and automotive sectors require reliable antistatic additives to minimize static accumulation during molding and finished parts handling. Our polymer offers persistent ionic conductivity within thermoplastic matrices, reducing surface resistivity in molded housings, connectors, and precision manufactured parts. The polymer disperses effectively in polycarbonate and ABS blends, enabling consistent antistatic characteristics without compromising mechanical integrity in critical end-use environments subject to ESD regulations.

    Industry compliance standards

    • IEC 61340-5-1 (Protection of Electronic Devices from Electrostatic Phenomena)
    • ISO 11469 (Plastics Identification and Marking)
    • RoHS 2011/65/EU (Restriction of Hazardous Substances)

    Typical usage ratio

    • 0.5% to 2.0% by weight in thermoplastic compounds, adjusted based on polymer matrix conductivity and target surface resistivity.

    Downstream process integration

    • Dosed with other additives during high-shear melt compounding or twin-screw extrusion; effective at pelletization and ready for subsequent injection molding or extrusion forming.

    Final product types

    • ESD-safe electronic housings
    • Automotive connector casings
    • Precision engineering equipment covers
    • Static-dissipative transport trays

    2. Membrane Material for Electrochemical Separation Technologies

    Membrane manufacturers utilize our homopolymer to formulate selective ion-exchange layers for desalination, electrodialysis, and battery separator markets. The cationic imidazolium structure ensures high ionic mobility and controlled swelling performance in water-based and organic electrolyte environments. This enables robust current efficiency and prolonged operational lifespan under repeated cycling or aggressive chemical exposure, supporting downstream integration into energy storage, water purification, and chemical process plants.

    Industry compliance standards

    • ASTM D8407 (Electrochemical Performance of Membrane Electrode Assemblies)
    • NSF/ANSI 61 (Materials for Drinking Water System Components)
    • EPA 40 CFR Part 141 (Safe Drinking Water Act Regulations)

    Typical usage ratio

    • 30%–65% by weight in composite membrane formulations, tuned according to permeability and mechanical strength required by end-use design.

    Downstream process integration

    • Dissolved or dispersed in membrane precursor solutions; cast or coated onto inert substrates during roll-to-roll lamination lines before crosslinking or final assembly.

    Final product types

    • Electrodialysis cell membranes
    • Desalination plant ion-selective barriers
    • Flow battery separators
    • Electrochemical reactor liners

    3. Antimicrobial Coating Additive for Industrial Surface Treatments

    Businesses specializing in industrial surface coatings add our polymer as a functional additive to develop antimicrobial layers for metal, glass, and polymer substrates exposed to high-traffic or medical environments. The imidazolium cation structure disrupts microbial cell membranes, reducing the viability of bacteria and fungi even under persistent wear. Formulation chemists achieve long-lasting antimicrobial action with minimal impact on gloss, adhesion, or solvent resistance, facilitating direct application in cleanroom panels and medical device housings.

    Industry compliance standards

    • ISO 22196 (Measurement of Antibacterial Activity on Plastics and Other Non-Porous Surfaces)
    • EU Biocidal Products Regulation (BPR, Regulation (EU) 528/2012)
    • ASTM G21 (Resistance of Synthetic Polymeric Materials to Fungi)

    Typical usage ratio

    • 0.2%–1.0% by weight in waterborne or solvent-based coating formulations; percentage set based on targeted log reduction and durability demands.

    Downstream process integration

    • Blended during premixing of binder phase; remains stable throughout high-shear dispersion and is compatible with most standard industrial coating application methods (spray/flood/roll).

    Final product types

    • Hospital equipment housings
    • Industrial wall panels and flooring
    • HVAC duct interior coatings
    • Refrigeration system interior liners

    4. Conductive Ink Binder for Printed Electronics

    Producers of printed circuit elements and RFID tags employ our homopolymer as a binder or ionic conductor within conductive ink matrices. The polymer forms cohesive, flexible films with homogenous ionic mobility, supporting consistent electrical performance on plastic, glass, or metal substrates. This functional property proves indispensable in screen-printing or inkjet processes producing low-voltage circuits, flexible displays, and smart label antennas, ensuring mechanical resilience and reliable electronic data transfer.

    Industry compliance standards

    • IPC-6012 (Qualification and Performance Specification for Rigid Printed Boards)
    • IEC 61189-2 (Test Methods for Printed Board Assemblies)
    • REACH Regulation (EC) No 1907/2006

    Typical usage ratio

    • 10%–30% by weight in total ink binder phase, adjusted based on ink viscosity and substrate adhesion requirements.

    Downstream process integration

    • Dispersed into conductive ink base during mixer phase prior to addition of particulate silver, carbon, or nanomaterial fillers; maintains stability in both solvent-based and aqueous ink systems during screen, flexo, or inkjet printing.

    Final product types

    • Printed RFID tags
    • Flexible display circuits
    • Pressure and touch sensor substrates
    • Printed wiring for smart packaging

    5. Flocculation Agent for Oil & Gas Wastewater Treatment

    Wastewater treatment operations in upstream and downstream oil and gas segments depend on cationic polymers to clarify produced water and refinery effluents. Our homopolymer achieves rapid charge neutralization and efficient agglomeration of dispersed solids, heavy metals, and colloidal oils, improving sludge dewatering and reducing organic load prior to biological treatment stages. Its thermal stability allows high-temperature operation in challenging environments such as produced water re-injection processes and refinery separation units.

    Industry compliance standards

    • API RP 45 (Analysis of Oilfield Waters)
    • 39 CFR 136 (US EPA Wastewater Analytical Methods)
    • ISO 5663 (Water Quality – Extraction for Chemical Analysis)

    Typical usage ratio

    • 5–50 ppm as an active dosing rate, subject to real-time adjustment according to feed water total suspended solids and ionic content.

    Downstream process integration

    • Injected into rapid-mix zones upstream of clarifiers or solid-liquid separators; dosage optimized based on jar test results and online turbidity monitoring.

    Final product types

    • Clarified injection water
    • Sludge cakes for disposal or further processing
    • Refinery pretreated water
    • Effluent suitable for discharge or reuse applications
    Free Quote

    Competitive 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

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    Certification & Compliance
    More Introduction

    Introducing 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer: A Manufacturer’s Perspective

    Real Experience in Chemical Production

    Every day in the plant, you hear certain names called more than others, depending on what’s headed out the door or coming to life in a reactor. Among the newer items commanding our focus, 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer has carved out a steady demand, not because it carries the echo of trendy buzzwords, but because it solves problems that traditional polymers can’t touch in certain applications. Speaking directly from our floors and our test benches, this homopolymer brings possibilities that weren’t real options for our partners just a few years ago.

    What Sets This Polymer Apart

    1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer is a specialty ionic liquid-based polyelectrolyte. In practice, that means you’re dealing with a truly ionic backbone—in contrast to common polyacrylates or polyvinyl alcohol derivatives, which keep ionic content low or rely on pendant groups. Formulators in industries from electrochemical engineering to corrosion inhibition are not grabbing this material for novelty; they come back because handling and outcome shift in their favor. The cationic polymer structure brings features like tunable hydrophilicity and impressive anti-static behavior, and those aren’t things you can fake with conventional recipes.

    From Reactor To Result: What We’ve Learned

    There’s a marked difference between reading about a polymer and seeing it form—clear, viscous, dust-free, and without the cloudiness or particulation problems that can haunt older formulations. Working with this homopolymer, we’ve watched it integrate well with aqueous, polar organic, and mixed-phase systems. Many of our partners come in needing a polymer for demanding electrochemical setups, where ionic transport and stability under voltage are more than theoretical talking points—they drive the final product’s value. Even a modest addition of our 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer can help fine-tune ionic conductivity or bring non-volatility to the table for battery and supercapacitor electrolytes, where every percentage point in performance counts.

    Specifications That Matter

    Model and molecular parameters shape results. In our environment, controlling the polymerization process allows us to offer products with adjusted molecular weights, viscosity profiles, and chain length distributions—features that impact exactly how this polymer interacts at a molecular level with additives, solvents, ions, and matrices. For standard batches, we keep the weight-average molecular weight in a range proven by direct application experience in lab and pilot scales. Our QA data reflects consistency not just for numbers on a datasheet, but for actual gelation behavior, clarity in solution, and shelf stability.

    Charge density here shows up, not just as a chemical fact, but as a lever in the hands of application chemists. The imidazolium chloride functionality uniformly distributed along the chain guarantees a persistent positive charge, which developers working in coatings, membranes, and antistatic films can control to a much higher degree of precision than with random copolymerization approaches.

    Stepping Beyond Generic Alternatives

    If you’ve worked with commodity cationic homopolymers—poly(diallyldimethylammonium chloride) or related quaternary ammonium polyelectrolytes—you already know their strengths and the moments when they fall short. 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer brings new tools: its unique structure resists hydrolysis, even under aggressive pH or high salinity conditions. Stability in elevated temperatures or under shear far exceeds that of many legacy materials, especially in mixes where solvent or pH change is routine.

    Because the backbone never carries crosslinkers or excessive secondary components, process purity is straightforward. Downstream users don’t report problems with cloudiness, incompatibility, or wasted batches due to unknown extractables. This isn’t just our claim as manufacturers—the feedback from clients troubleshooting their own scale-up confirms it.

    How It Performs in the Field

    Water treatment specialists, battery research teams, and coating formulators don’t take risks with expensive devices and substrates. They prefer materials they can trust for true-to-form ionic strength, consistent molecular weight, and reliable bulk suspension. Our production knowledge, built on scale-down and scale-up validation, lets us talk openly about what to expect from this polymer in demanding uses. Electrochemical research labs, for example, have used this homopolymer to build polyelectrolyte membranes with negligible resistance drift and high durability under repetitive cycling.

    Paint and coating specialists often reach out for surface charge control or dispersant features. They don’t waste barrels of pigment finding out if a new additive will lead to flocking, edge defect, or haze: early-stage R&D and pilot lines have shown that when this polymer acts as a dispersant, it can outperform typical amine-derivatized products, especially under humid or high-voltage processing environments.

    Handling, Process, and Reliability

    Production teams look for clean, repeatable behavior on the floor—a resin batch that dissolves just as expected, without sticky inconveniences or residue left behind in mixing vessels. Our own teams have steered the process away from hydrated byproducts and issues like phase separation: you open a container, and you get a stable powder or solution that performs every single time, storing reliably and blending quickly. If someone needs a specific concentration or solvent-system compatibility, we have handled those requests, working directly with application chemists to tweak the product without introducing mystery additives.

    Safe handling and user-friendly packages come from warehouse experience. Nobody wants to lose a day to clumped, moisture-bound polymers or mysterious clogs in process lines. Our product leaves in moisture-controlled, sealed containers so that every delivery stands ready for immediate use.

    Appreciating the Value of True Cationic Polyelectrolytes

    Many markets have settled for modified commodity polymers that add a few ionic groups and call it enough. With 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer, production, performance, and field application all benefit from the intrinsic full-chain charge. We have seen firsthand that this isn’t about chasing trends—it’s about delivering performance that standard cationics can’t, especially in settings where stability, ionic strength, and chemical clarity outperform the old benchmarks.

    Researchers and process engineers tell us how much time and material savings they see when they can count on a standard product to meet the tightest viscosity and reactivity specs, especially for sensitive industrial membranes or conductive coatings. The ability to tune solubility—by adjusting molecular weight during synthesis—delivers more than lab-scale flexibility: it handles industrial volumes where solvent cost, temperature profile, and filtration step all matter on the bottom line.

    Direct Feedback From the Field

    Speaking to other chemical manufacturers, it’s clear: changes in demand or performance expectations come fast. Just a decade ago, labs might have been content to use any cationic polymer. Now, customers ask granular questions about charge density, shelf life, and downstream processing. We’ve worked directly with clients who use this polymer for polyelectrolyte multilayers, supercapacitor electrolytes, and anti-static film coatings. They report major reductions in quality rejections when shifting from older quaternary ammonium products.

    Every time we ship a batch, we ask for—and study—feedback. If a customer finds that their process needs a higher or lower molecular weight, we address it by adapting synthesis parameters. If downstream color or optical properties in clear coatings matter, we track those characteristics in our QC. This loop of direct application data versus production control lets us guarantee not just paperwork compliance, but honest-to-goodness performance in all target applications.

    Challenges Still Worth Solving

    No genuine perspective ignores the headaches and limits. Large-scale reactors need careful control: imidazolium polymers can pick up trace metallic contamination if equipment isn’t passivated or if minor residuals stick around in the feed. In scaling up from pilot to commercial runs, temperature control and stirring speed have a bigger effect on final viscosity and distribution than datasets on similar monomers would suggest. We had to adjust filtration protocols to make sure the final product stays clear of particulate matter—and even minor tweaks to antisolvent workups can alter the handling feel and solubility.

    Partners facing challenging downstream mixing environments sometimes need help with solvent compatibility or pH tolerance. Some coatings developers run accelerated UV tests looking for premature yellowing and haze, and our ongoing R&D tracks these endpoints on every lot. Rather than chasing every theoretical use, we focus on refining the production technology to provide reliable, tweakable end materials that answer these evolving demands.

    Environmental and Regulatory Considerations

    From costly mistakes in the early days, we know that ignoring environmental risk comes back to bite both producer and end user. Through careful controls over monomer handling, emissions, and waste, we avoid the traps that generic or offshore imidazolium suppliers notorious for resin cloudiness and batch-to-batch inconsistency face. Our team has worked with environmental consultants and regulatory advisors to ensure production safety and compliance with evolving standards.

    Our aim is always to keep byproducts, trace contaminants, and volatile constituents out of the final polymer, not just for client satisfaction, but to lower environmental load at every stage. We’ve invested in refining reaction protocols and solvent recycling, keeping both workplace safety and downstream product purity at the center of every process adjustment.

    Meeting Demanding Application Needs

    Most of the end users reaching out for this polymer work in boundary-pushing applications. Whether the need is for battery separators with extremely low leak rates, or medical device coatings with stable surface charge, these customers cannot risk a bad batch or unreliable shelf life. We’ve built our response protocols for rapid feedback, application support, and honest reporting—sharing not just the successes, but the data on long-term aging, chemical compatibility, and actual use.

    Membrane engineers report sharper selectivity and sustained transmembrane performance for desalination and water purification when using our polymer, compared to blends based on polyacrylamide or quaternary ammonium monomers. Labs working with ionic liquid electrolytes find lower resistance drift and fewer precipitation issues than with mixed systems using less stable cationic polymers. In anti-static applications, especially in sensitive electronics manufacturing, the controllable charge density allows surface resistivity to hit target levels every time, reducing defects and downtime.

    Ethical Manufacturing and Quality Assurance

    Customers rely not just on the polymer itself, but on the trustworthiness of the production process. Our QA teams run routine and batch-specific checks—purity, molecular weight distribution, colorimetry, pH compatibility—transparently reported for client review. We keep lines of communication open with clients and downstream users, gathering not just regulatory compliance results but real-world feedback to strengthen both product and process.

    In moving from early lab synthesis to repeatable industrial production, we’ve documented every failure and solution: where a viscosity spec slipped, or where an early batch showed unacceptable trace chloride that wouldn’t work in sensitive electronics. This commitment goes beyond paperwork—our own process chemists and application partners vet every improvement before it reaches full production. Integrity in chemical manufacturing is a lived value, not a slogan.

    Where We See the Technology Headed

    As demand grows for more robust, adaptable, and high-performance polyelectrolytes, 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer is increasingly recognized not as an experiment, but as a dependable workhorse. Battery developers are chasing cycle stability, electroplating shops are fighting pitting and surface charge irregularity, and water purification systems demand precise charge balance and low residuals. Each of these requirements benefits directly from a reliable, cationic, imidazolium-based polymer, not as an add-on, but as a backbone material.

    Looking ahead, we continue to push on molecular design—refining weight, monomer purity, and process scalability. We expect the market to drive more use in advanced membrane systems, solid-state electrolytes, dispersant technology, and specialty coatings, especially as end users move away from generic commodity chemicals. Those who depend on polymer performance know that a trace impurity or an off-spec batch can cause weeks of losses. We keep learning from our clients’ innovations and adapting our process, not just for productivity, but for the kind of material reliability that changes what’s possible downstream.

    Summary From the Plant Floor

    As one of the few manufacturers producing 1-Vinyl-3-Butyl Imidazolium Chloride Homopolymer at scale, we keep both hands on the science and boots on the plant floor. Feedback, process control, and real experience drive every production batch. In our work, we see clearly where this polymer outperforms old standards, and where close attention to detail safeguards both user and final product. We don’t write about features; we report what the crews, chemists, and clients experience day by day. For real-world, high-performance applications, we deliver a quality you can measure, track, and build on, batch after batch.