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1-Allyl-3-Vinylimidazolium Dicyanamide

    • Product Name 1-Allyl-3-Vinylimidazolium Dicyanamide
    • Alias [AVIM][DCA]
    • Einecs 818-380-0
    • 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

    977851

    Cas Number 610386-46-8
    Molecular Formula C10H12N6
    Molecular Weight 216.25
    Iupac Name 1-allyl-3-vinyl-1H-imidazol-3-ium dicyanamide
    Appearance Colorless to pale yellow liquid
    Melting Point -
    Boiling Point -
    Density 1.08 g/cm3 (approx.)
    Solubility In Water Miscible
    Purity Typically >98%
    Conductivity High (ionic liquid)
    Odor Mild
    Storage Temperature Room temperature; keep dry and sealed
    Ph Neutral to slightly basic (aqueous solution)
    Synonyms 1-allyl-3-vinylimidazolium dicyanamide, [AVIM][DCA]

    As an accredited 1-Allyl-3-Vinylimidazolium Dicyanamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 500g of 1-Allyl-3-Vinylimidazolium Dicyanamide is securely packaged in an amber glass bottle with tamper-evident seal and labeling.
    Shipping 1-Allyl-3-Vinylimidazolium Dicyanamide is shipped in tightly sealed, chemical-resistant containers to prevent leaks or contamination. It should be transported in compliance with local and international regulations, in a cool, dry place away from moisture and incompatible substances. Appropriate hazard labeling and safety documentation accompany all shipments to ensure safe handling.
    Storage 1-Allyl-3-Vinylimidazolium Dicyanamide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from heat, sparks, open flames, and incompatible substances such as strong oxidizers. Protect from moisture and direct sunlight. Use appropriate personal protective equipment when handling, and ensure clear labeling to prevent accidental misuse or exposure.
    Application of 1-Allyl-3-Vinylimidazolium Dicyanamide

    Applications of 1-Allyl-3-Vinylimidazolium Dicyanamide in Industrial Manufacturing

    1-Allyl-3-Vinylimidazolium Dicyanamide is an advanced ionic liquid that serves as a specialized ingredient in modern industrial manufacturing. We supply this raw material directly to downstream sectors seeking efficient performance, compliance with up-to-date standards, and predictable processing in demanding chemical environments. Below are core application areas with detailed requirements and end-uses supported by our quality systems and technical expertise.

    1. Electrolytes for High-Performance Battery Cells

    This ionic liquid acts as a functional electrolyte additive in next-generation lithium and sodium ion batteries, especially where thermal stability and ionic conductivity are critical. Our material supports advanced non-flammable battery formulations designed for long cycle lifetimes and high energy density, with significant advantages in electric mobility and grid storage systems.

    Industry compliance standards

    • UN38.3 transport regulations for battery cells
    • IEC 62619 for secondary lithium battery safety
    • RoHS Directive 2011/65/EU on restriction of hazardous substances
    • REACH Registration (EC 1907/2006) for chemical safety

    Typical usage ratio

    • 3–8% by total electrolyte mass, adjusted according to targeted ionic conductivity, electrode compatibility, and cell design

    Downstream process integration

    • Directly mixed into electrolyte solutions during preparative blending before cell assembly
    • Integrated prior to cell filling and vacuum sealing steps in both pouch and cylindrical cell manufacturing lines
    • Adjusted in process based on in-line QC for viscosity and conductivity profile

    Final product types

    • Automotive lithium-ion battery modules
    • Stationary grid storage batteries
    • High-capacity sodium-ion storage cells
    • Consumer electronics powerpacks

    2. Solvent and Stabilizer in Polymerization Catalyst Systems

    This material functions as both an ionic co-solvent and a stabilizer in homogeneous and supported catalyst systems for specialty polymer synthesis. It ensures enhanced catalyst longevity, tuned microstructural control, and chemical resistance for polymers used in automotive and aerospace components.

    Industry compliance standards

    • ISO 9001:2015 quality management system for polymer production
    • ASTM D4065 for dynamic mechanical properties
    • GMP guidelines (if polymer used in medical or food packaging)
    • OSH Act for operator safety in catalyst handling

    Typical usage ratio

    • 2–6% of the total catalyst system, with adjustment based on polymerization kinetics and desired polymer architecture

    Downstream process integration

    • Added to catalyst precursor solutions prior to monomer introduction
    • Employed during in-situ polymer chain growth for precision molecular weight distribution
    • Included in catalyst recycling and separation sequence to maintain activity

    Final product types

    • High-performance engineering plastics
    • Elastomers for automotive seals
    • Fire-resistant aerospace composite matrices
    • Medical device base polymers (where permitted)

    3. Extractant for Precious Metal Recovery from Electronic Waste

    Our ionic liquid is utilized as a selective extractant for gold, palladium, and platinum group metals in hydrometallurgical recycling processes. Its unique selectivity and minimized volatile emissions benefit closed-loop recycling operations, meeting modern environmental and recycling directives common in electronics and jewelry scrap processing.

    Industry compliance standards

    • Waste Electrical and Electronic Equipment (WEEE) Directive 2012/19/EU
    • ISO 14001:2015 for environmental management systems
    • Local hazardous waste disposal regulations
    • REACH compliance for downstream effluents

    Typical usage ratio

    • 0.5–2.5% relative to solid feedstock, final dosage determined by metal content and process batch scale

    Downstream process integration

    • Blended into acidic or neutral leaching baths during reactor charge
    • Works as a phase transfer agent for ion exchange columns
    • Allows for selective stripping and back-extraction during purification

    Final product types

    • Refined gold and precious metal ingots
    • Palladium and platinum salts for catalyst manufacturing
    • High-purity jewelry alloys
    • Metal powders for electroplating

    4. Antistatic Agent and Conductivity Modifier for Advanced Coatings

    In specialty paints, coatings, and functional films, 1-Allyl-3-Vinylimidazolium Dicyanamide delivers efficient control of surface resistivity and static charge dissipation. Downstream partners benefit from uniform dispersibility and stable antistatic performance in sectors including electronics assembly halls and packaging for sensitive components.

    Industry compliance standards

    • IEC 61340-5-1 for electrostatic control in ESD protected areas
    • ISO 12944 for corrosion protection paint systems
    • REACH authorization for chemical agents in coatings
    • RoHS restriction for lead and mercury absence

    Typical usage ratio

    • 0.8–3.5% by resin or film weight, tuning based on required surface resistivity (E6–E9 ohms) and application thickness

    Downstream process integration

    • Dispersed into coating base prior to pigment addition
    • Milestone for QC: inline monitoring of film conductivity during extrusion or coating stages
    • Added as final antistatic layer or inter-coat for multi-layer films

    Final product types

    • Antistatic flooring materials for cleanrooms
    • Protective electronic device housings
    • Transparent conductive films for displays
    • Anti-dust packages for semiconductor shipping
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    Certification & Compliance
    More Introduction

    1-Allyl-3-Vinylimidazolium Dicyanamide: A Direct Perspective from the Manufacturer

    Understanding 1-Allyl-3-Vinylimidazolium Dicyanamide

    As the producer behind the synthesis of 1-Allyl-3-vinylimidazolium dicyanamide, I meet this compound at the intersection of innovation and daily industrial practicality. Within our shop floor, this ionic liquid moves from lab-scale vessels to bulk batches under strict controls, always with an eye on purity, thermal stability, and real-world reliability. This particular structure blends an allyl functionality with a vinyl group, both anchored firmly on an imidazolium ring, balanced by a dicyanamide anion. That unique combination shapes the performance traits we look for in sectors ranging from electrochemical devices, catalysis, and selective extraction, to polymer chemistry.

    Our Approach to Synthesis and Quality

    Synthesizing this compound involves handling reactive starting materials in carefully staged reactions. Imidazole rings receive substitutions under nitrogen atmospheres, with allyl and vinyl moieties introduced via alkylation. Dicyanamide incorporation requires exact pH control and fine temperature regulation. Each batch starts with raw material verification, including water content, purity, and reactivity, traced batch by batch through high-performance liquid chromatography and NMR spectroscopy. From the production tank, product heads direct to a vacuum line, where remnant solvents get stripped and color is checked against both visual and spectrophotometric benchmarks — yellowish, free-flowing and free of visible contaminants or crystallization. That difference, compared to third-party or offshored product, is clear in continuous color quality and a reliable absence of particulate.

    Specifications That Matter to Users

    On the floor, I see every shipment leave our site with the blessing of rigorous lot release criteria. We pack this ionic liquid in sealed aluminum or glass, depending on customer handling set-up. Minimum purity levels never fall below 98%, and water content checks in under 0.2%. These details make or break real-world use in sensitive polymerization and electroplating settings. For physical handling, the liquid stays pourable in a wide temperature range, which reduces transfer losses and eliminates clogging risk in dispensing pumps or automated systems. Dicyanamide-based liquids like this exhibit low viscosity and high ionic conductivity out of the drum; you pour it, pump it, and filter it — nothing sticks or gums up lines after months of storage. That matters most as process lines stretch longer and manufacturing windows get tighter.

    Why Chemists Choose This Product

    I have watched teams compare 1-Allyl-3-vinylimidazolium dicyanamide with more conventional tetraalkylimidazoliums and see savings in both processing time and downstream purification. Allyl and vinyl groups both open entry points for tailored functionalization, especially when making specialty polymers or composite materials. Polymer scientists value the way these groups let them attach the ionic liquid directly to growing polymer backbones, unlike plain imidazolium salts that just dissolve in the matrix. Copper plating lines run cleaner because of suppressed side-reactions, driven by the stability of the dicyanamide anion under electrochemical load. Extraction specialists use it for selective separation of rare earths and transition metals, citing greater selectivity and lower environmental impact because the whole system runs without volatile organic solvents.

    Handling, Storage, and Safety from a Manufacturer’s Experience

    In our warehouse, the single biggest issue is water uptake — ionic liquids pull in water if you let them sit unsealed for a few hours. Desiccant-packed storage and minimal headspace have become routine. That’s not marketing talk — leave a cap loose and water content creeps up, which will throw off an electrolytic cell, or crash a polymerization overnight. Some operators lean on dry nitrogen blankets across storage tanks to further slow down this effect. From a manufacturer’s perspective, we’ve built leak-proof packaging systems and re-tested post-storage samples for this exact reason. On the operator’s bench, nitrile gloves and splash goggles handle the job. Odor is mild, almost non-existent, so fume hoods aren’t mandatory, but they remain standard practice for clean handling. No solvent fumes, no skin burn risk, and all waste is non-halogenated, so incinerator and disposal costs stay low — these are differences users notice compared to older ionic liquids containing chlorinated or fluorinated anions.

    End Uses and Typical Customers

    Demand flows strongest from the battery research and catalysis sectors. I see most orders come from pilot-scale battery labs and chemical process R&D groups. These customers value high ionic conductivity for lithium-salt dissolution and pay close attention to crossover compatibility with both carbon and metal electrodes. Catalysts built around dicyanamide-based ionic liquids give more consistent results in C–C bond forming reactions, olefin metathesis, and cross-coupling — evidence that our clean product helps minimize unknown side reactions. University researchers and process chemistry departments push for single-lot purchases, confirming that batch-to-batch consistency really matters for experiment replication. Our top three buyers in the past year all asked for custom fill sizes, which we now support down to 10-gram samples or up to 20 kg lots on a single pallet.

    Comparison with Other Ionic Liquids

    Traditional imidazolium ionic liquids built on tetraalkyl chains or with BF4, PF6, or NTf2 anions tend to suffer from higher toxicity, regulatory red tape, and volatility issues. Our dicyanamide alternative sidesteps most problems seen in predecessors: no regulatory red flags for halogens or persistent fluorinated residues. The low viscosity helps with electrochemical setups, where resistance can slow battery performance or lead to uneven current distribution in a plating bath. The presence of both allyl and vinyl groups lets this ionic liquid serve as a reactive monomer, not just as a solvent, which means it can join a polymer network directly during radical or cationic polymerizations. Many customers used to buy simple dialkylimidazolium products, only to find unreacted monomer pooling out at the end of a batch, something that drops sharply when moving to the allyl-vinyl backbone.

    Environmental Impact and Sustainability

    Every manufacturer now faces closer scrutiny over sustainability. Producing 1-Allyl-3-vinylimidazolium dicyanamide gives us several advantages. No halogen waste streams get created, making our waste treatment simpler and safer for the environment. The product’s low toxicity and ready biodegradability reduce the risk of hazardous build-up if a spill occurs. Our process runs without the need for expensive scrubbing towers or solvent reclamation — just distillation and pressure filtration. That shortens the cleaning cycles and allows more frequent batch turnovers with lower utility costs. In the field, I’ve seen green chemistry researchers build protocols where this ionic liquid replaces volatile organics, reporting direct gains in both safety and laboratory air quality.

    Technical Support and Real-World Troubleshooting

    Working directly as a producer, the patterns of customer questions reveal a lot. Polymer plants call about setting the right temperature ranges for in-situ polymerization, often worried about side-reaction risks. We walk them through kinetic data collected in our own pilot reactors, showing how onset and endpoint temperatures match up with catalyst choice. Battery scientists chase data on cycling stability, which we’ve tracked up to several hundred cycles without breakdown, attributed in part to the stability of the dicyanamide anion. Extraction labs ask how to dry and recycle the ionic liquid phase; we point to slow evaporation at ambient pressure and standard rotary evaporation at gentle heat. Real-world knowledge accumulates with each batch we ship — frequent feedback has let us fine-tune the product to limit color instability, water pick-up, and annoying by-product formation. This approach delivers the consistency that eleven out of ten customers — from government labs to private plants — tell us is rare among other ionic liquid suppliers.

    Continuous Improvement and Traceability

    As producers, our gains come not just from running a tight ship, but from adapting to evolving lab and plant feedback. Over several years of production, we upgraded filtration units to trap micron-scale solids that could spoil performance downstream in catalysis. We developed tighter analytical protocols, with every lot tested by NMR, Karl Fischer titration, and ion chromatography for residual ions. Each product drum ships out with its batch-specific data sheet, so whatever application users have — plating, polymerization, extraction — they see numbers from their actual lot, not a generic spec. If questions arise about application-specific impurities or observed side effects, we run side-by-side NMR and mass spec comparisons on retained samples; that’s how we validate our supply chain end to end.

    Future Directions and Research Applications

    With more research shifting toward energy storage and high-efficiency catalysis, customers come in with ideas that push us past the old boundaries of ionic liquid chemistry. Internal R&D experiments have pointed out compatibility between this ionic liquid and a suite of transition metal and lanthanide ions, opening new avenues in rare earth separations. Polymer chemists explore block macromolecules built directly from the vinyl and allyl functionalities, aiming for electroactive or self-healing materials. Those connections, between customer ambition and chemical capability, keep our lab on its toes — new methods, new reactor set-ups, and new safety protocols all feed back into product quality. Unlike mass bulk sellers, we adjust to these demands by adding smaller-batch capability, extending shelf life through updated packaging, and setting up pilot-plant collaborations with customers.

    Practical Issues in Application

    Every real-world customer wants more than a spec sheet — they want products that solve specific process headaches. For polymerization, the crucial difference comes down to the vinyl and allyl groups. You can use them as sites for chain growth, which locks the ionic liquid directly into the polymer network. In processes like free radical or cationic polymerization, this approach sharply cuts migration and plasticizer bleed compared to non-functionalized ionic liquids. Electrochemists see higher current efficiency, since water content stays low and the anion resists hydrolysis under cycling conditions. An extraction specialist told me last year that this product’s low mutual solubility with common organic solvents let him run multi-stage metal extraction columns without crosstalk, boosting yield and lowering chemical consumption.

    Cost Considerations and Scale Flexibility

    Across five years of operation, our plant shifted batch sizes from 100 grams for research customers, up to drums for pilot manufacturing. That scale agility grows from our on-demand synthesis capability — one reactor can switch from small-lot, custom-tailored batches to 100 kg production with simple changeovers. This function trims waste, matches customer timelines, and lands us repeat contracts from process chemistry groups aiming to qualify new polyionic composites or battery blends without paying for bulk up front. Price per kilogram isn’t everything — it’s reliability and adaptability that keep customers coming back, especially for those prototype or scale-up phases where no two batches go into the same project.

    Closing Reflections

    Decades in the chemical manufacturing sector taught me that true value rests on consistent product, responsive support, and a willingness to learn from every batch. 1-Allyl-3-vinylimidazolium dicyanamide brings together all the best traits of an advanced ionic liquid: custom reactivity, reliable performance across electrochemistry and polymer fields, and minimized environmental cost. No magical promises or sweeping claims, just the accumulated knowledge of a team refining every process step to meet the challenges of modern applied chemistry. Every shipment speaks to a relationship — between synthesis and application, between manufacturer and researcher — and our ongoing focus stays on giving every customer a tool they can count on, batch after batch.