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1-Allyl-3-Methylimidazolium Dicyanamide

    • Product Name 1-Allyl-3-Methylimidazolium Dicyanamide
    • Alias [AMIM][DCA]
    • Einecs 634-719-8
    • 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

    209602

    Name 1-Allyl-3-Methylimidazolium Dicyanamide
    Chemical Formula C8H11N5
    Molecular Weight 177.21 g/mol
    Appearance colorless to pale yellow liquid
    Cas Number 64671-07-2
    Boiling Point Decomposes before boiling
    Melting Point -20 °C (approximate)
    Density 1.07 g/cm³ (at 25 °C)
    Solubility In Water miscible
    Purity typically ≥98%
    Flash Point >100 °C
    Ph neutral to slightly basic (in aqueous solution)
    Storage Conditions store at room temperature, keep container tightly closed

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

    Packing & Storage
    Packing A 100g amber glass bottle with a secure screw cap, labeled "1-Allyl-3-Methylimidazolium Dicyanamide" and safety information.
    Shipping **Shipping of 1-Allyl-3-Methylimidazolium Dicyanamide:** This chemical is shipped in tightly sealed containers, protected from moisture and sunlight. It is classified as a non-hazardous material for transport, but should be handled with care to avoid spills. Packaging typically conforms to international transport regulations and includes appropriate labeling for safe delivery.
    Storage **1-Allyl-3-Methylimidazolium Dicyanamide** should be stored in a tightly sealed container, protected from moisture and direct sunlight, in a cool, dry, well-ventilated area. Avoid contact with strong oxidizers and acids. Ensure the storage location is equipped for handling chemicals and labeled appropriately. Keep away from incompatible materials and sources of ignition to maintain stability and safety.
    Application of 1-Allyl-3-Methylimidazolium Dicyanamide

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

    As a direct manufacturer of 1-Allyl-3-Methylimidazolium Dicyanamide, we supply this highly stable ionic liquid to specialized chemical sectors with strict production requirements. Below, we outline its primary industrial applications, with key compliance criteria, recommended dosing, integration into downstream operations, and the principal products made.

    1. Lithium-Ion Battery Electrolytes

    This ionic liquid functions as a non-flammable electrolyte additive and co-solvent in advanced lithium-ion battery production. It enhances ionic conductivity, widens thermal stability ranges, and reduces explosion risk during charge-discharge cycles. Battery cell manufacturers incorporate it primarily in research, commercial, or high-safety battery lines.

    Industry compliance standards

    • IEC 62660 (Secondary lithium-ion cells for the propulsion of electric vehicles)
    • ISO 12405 (Electrical performance and safety testing for lithium-ion traction batteries)
    • RoHS Directive 2011/65/EU
    • REACH Regulation (EC) No 1907/2006

    Typical usage ratio

    • Use level ranges from 2% to 8% by weight in mixed organic electrolyte blends, adjusted to target ionic conductivity and reduce risk profile. Proportions may vary based on cell type and application temperature.

    Downstream process integration

    • Integrated during electrolyte mixing before wetting or filling steps in battery cell manufacture (usually after solvent purification, before the assembly line or dry room).

    Final product types

    • Electric vehicle lithium-ion cells
    • High-rate power cells for grid storage
    • Consumer electronics battery packs
    • Specialty safety batteries for aviation and defense

    2. Catalysis for Organic Synthesis

    1-Allyl-3-Methylimidazolium Dicyanamide acts as a reaction medium and homogeneous catalyst for nucleophilic substitution, cycloaddition, and transition metal-catalyzed processes. It provides unique solubility profiles for difficult substrates and boosts reaction selectivity, supporting pharmaceutical and agrochemical intermediate manufacture.

    Industry compliance standards

    • ICH Q7 GMP for active pharmaceutical ingredient (API) manufacturing
    • US FDA 21 CFR Part 211 (Finished Pharmaceuticals)
    • EU Regulation (EC) No 1107/2009 for plant protection product intermediates
    • Local chemical registration and safety compliance requirements

    Typical usage ratio

    • Typically used at 10–30% v/v concentration, based on the requirements for solubilizing reactants or replacing conventional solvents. Fine-tuning is required per reaction scale and reactant solubility.

    Downstream process integration

    • Added at the initial charging step in jacketed glass-lined reactors. Reactants and catalysts follow, with in-process monitoring for reaction conversion.

    Final product types

    • Pharmaceutical and veterinary drug intermediates
    • Custom specialty chemicals
    • Agricultural chemical intermediates
    • Fine chemical precursors for dyes and pigments

    3. Biomass Pretreatment in Lignocellulose Processing

    Used as a delignification agent and pretreatment solvent, this ionic liquid efficiently disrupts lignocellulosic structure in plant biomass to enhance downstream enzymatic hydrolysis. Cellulosic biofuel and biopolymer producers rely on its high selectivity toward lignin and cellulose dissolution while minimizing sugar degradation.

    Industry compliance standards

    • ISCC PLUS (International Sustainability and Carbon Certification for bio-materials)
    • EU RED II Directive (2018/2001) for sustainable bioenergy production
    • ISO 14001 (Environmental Management Systems)
    • National emission and waste treatment standards

    Typical usage ratio

    • Used at 5–20% by dry weight of biomass, depending on substrate type, targeted delignification ratio, and process temperature. Adjust according to lignin content and output yield targets.

    Downstream process integration

    • Introduced during the biomass feedstock pretreatment step, in either batch or continuous stirred tank reactor (CSTR) operations before enzymatic hydrolysis.

    Final product types

    • Second-generation cellulosic ethanol
    • Lignin-based biopolymers
    • Bio-based platform chemicals (e.g., furans, organic acids)
    • Purified microcrystalline cellulose

    4. Heat Transfer Fluids in Industrial Cooling Systems

    The dicyanamide-based ionic liquid serves as a high-performance heat transfer medium for closed-loop cooling systems, especially for electronic and precision manufacturing sectors. Its thermal stability and low volatility make it suitable for high-temperature and long-cycle operation, enhancing energy efficiency.

    Industry compliance standards

    • ASTM D5372 (Standard Practice for Evaluation of Thermal Stability of Organic Heat Transfer Fluids)
    • ISO 9001:2015 (Quality management systems)
    • Restriction of Hazardous Substances (RoHS) where applicable
    • REACH substance registration and workplace exposure limits

    Typical usage ratio

    • Filled at 100% concentration in specialized closed-loop systems or blended 30–70% with compatible fluids for mixed coolant formulations. The ratio depends on temperature range and specific cooling load.

    Downstream process integration

    • Charged directly into heat transfer loops during initial plant setup or fluid replacement cycles. Close monitoring for system compatibility and leak prevention is required.

    Final product types

    • Electronic cooling modules for semiconductor production
    • Laser cooling units
    • Industrial-scale heat exchangers
    • High-precision temperature-controlled manufacturing lines

    5. Antistatic and Conductive Polymer Manufacturing

    The ionic liquid modifies surface resistivity and provides long-term conductivity in specialty polymer compounding. It supports extrusion and molding processes for conductive films, foams, and antistatic packaging. Polymer producers value its compatibility with polyimides, polyethylene, and elastomers without degradation or migration.

    Industry compliance standards

    • IEC 61340-5-1 (ESD control)
    • ISO 4892 (Plastics—Methods of exposure to laboratory light sources)
    • UL 94 (Flammability of plastic materials)
    • REACH and SVHC declaration as required

    Typical usage ratio

    • Formulated at 0.3–2% by weight in polymer blends, optimized for the finished product’s required surface resistivity. Higher dosing possible for specialty high-conductivity grades.

    Downstream process integration

    • Premixed with polymer pellets prior to compounding or introduced during the extrusion process via side feeders. Homogenization ensures consistent conductivity.

    Final product types

    • ESD-safe packaging trays and films
    • Antistatic coated foams
    • Conductive polymer sheets for electronics
    • Flexible printed circuit substrates

    6. Electroplating and Metal Surface Treatment

    The use of this ionic liquid in electroplating baths enhances uniform metal deposition, reduces dendrite formation, and improves corrosion resistance on complex component surfaces. End users, especially in electronic and printed circuit board (PCB) sectors, benefit from its low toxicity and stable plating environments.

    Industry compliance standards

    • IPC-4552 (Electroless Nickel/Immersion Gold Plating Specification)
    • ISO 4527 (Electroplated coatings of nickel)
    • REACH Annex XVII (Limits on certain hazardous substances)
    • Local wastewater discharge and workplace exposure requirements

    Typical usage ratio

    • Added at 1–5% v/v in standard or modified electroplating baths. Adjusted based on desired metal layer thickness, surface area, and throughput requirements.

    Downstream process integration

    • Mixed with plating bath electrolytes during tank set-up or replenishment. Incorporated before component immersion and maintained under strict QC monitoring for bath stability.

    Final product types

    • Gold and nickel-plated electronic components
    • PCB contacts and edge connectors
    • Corrosion-resistant fasteners
    • Microscale printed metallic circuits
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    Certification & Compliance
    More Introduction

    1-Allyl-3-Methylimidazolium Dicyanamide: Real Production Experience, Real Chemical Value

    Bringing Real Solutions from the Plant Floor

    Every batch of 1-Allyl-3-Methylimidazolium Dicyanamide tells a story. Not one of mass-produced anonymity, but one rooted in daily manufacturing realities, tailored methods, and a respect for the chemical itself and the people who use it. Production always begins with the challenge of balancing purity, handling, and environmental responsibility. This ionic liquid doesn’t just occupy a small niche in the broad field of imidazolium salts—it opens doors to highly specialized processes where careful control proves crucial.

    How We Approach Synthesis

    Our process isn’t haphazard. We control every stage from sourcing imidazole derivatives to tracking downstream purity with reliable instrumentation. Imidazolium ionic liquids stand apart for their low volatility and high thermal stability—qualities that come into their own during high-demand applications like catalysis or advanced extractions. In reality, not all products bearing similar chemical names deliver the same performance at the bench or in the reactor. That’s why we avoid shortcuts that compromise the product, even if tighter controls slow down the pace. Customers relying on ionic liquids for electrochemical work or advanced separations can’t afford variability. One off-batch can set an entire R&D program back.

    Practical Benefits for Industry—and What Sets Us Apart

    1-Allyl-3-Methylimidazolium Dicyanamide, often recognized for its role in advanced material synthesis and electrochemical research, makes a clear mark in real-world settings. Compared with other common ionic liquids—say, 1-Butyl-3-methylimidazolium tetrafluoroborate or 1-Ethyl-3-methylimidazolium acetate—this compound brings unique chemical stability and selective solvation properties. Our team learned early that the dicyanamide anion offers superior performance in dissolving certain transition metal salts, opening up cleaner, more efficient reaction pathways.

    Through years of hands-on work, the difference shows up in reliability. Alternates based on fluorinated anions, for example, can lead to hazardous byproducts during thermal decomposition. Dicyanamide-based products, in our experience, mitigate those hazards and avoid expensive off-gas treatment. Customers focused on green chemistry and lab safety see an immediate benefit: you get thermal stability and functional versatility without the persistent worry over fluorine management.

    Built Tough for Electrochemistry

    The push for higher-performance electrochemical materials never lets up. Over the past decade, our chemists have collaborated directly with research labs and manufacturers looking to push current densities higher and minimize cell degradation. 1-Allyl-3-Methylimidazolium Dicyanamide holds up where others falter, supporting non-aqueous battery electrolytes and next-wave supercapacitors. The methyl and allyl groups on the imidazolium ring provide a balance—enough hydrophobic character to stabilize unconventional electrode materials, enough ionic mobility to keep the system practical. Competing products often force a trade-off between viscosity and conductivity; our customers report that our method walks that line cleanly.

    Nothing replaces data from real-world use. We’ve watched competitors struggle with variable batch consistency—color shifts, impurity spikes, unexplained precipitation. These things matter when running multi-week endurance tests on energy storage prototypes. A stable, clear ionic liquid keeps downtime and trouble calls low, which is why material scientists come back to us for repeat supply.

    Beyond the Lab: The Everyday Demands of Scale-Up

    Scale-up, in our direct experience, transforms a promising bench-top material into a new set of problems. Great ionic liquids can fail in production tanks; residue buildup, inconsistent moisture content, and minor impurity carryover can stall large-scale syntheses for days. We designed our plant based on feedback from such failures. Hygroscopicity, a major challenge with dicyanamide salts, needs full attention—tight glovebox transfers aren’t just for show, they protect both product yield and operator safety. We monitor for trace water and keep analytical records open for every lot. It’s not about selling another drum but building trust batch after batch.

    In the solvent or catalyst field, where a minor deviation in water content changes an entire outcome, these controls separate useful product from mere commodity. Users have told us directly that higher water content in competitor salts caused them costly repeat experiments and unreliable reaction endpoints. Here, a few tenths of a percent moisture can waste a week of development time.

    Building a Basis for Green Chemistry

    Our day-to-day experience matches the literature: Dicyanamide-based ionic liquids step up for green chemistry. Conventional organic solvents usually bring flammability risk, volatile organic compound emissions, or troublesome halide waste. Dicyanamide anions cut these problems down. We’ve supplied batches for applications ranging from cellulose dissolution to recycling precious metal catalysts, each demanding careful control of both composition and handling. It’s not marketing talk—the regulatory scrutiny over solvent disposal keeps tightening. By eliminating halogen content and minimizing harmful byproduct potential, we support safer, more sustainable industrial cycles.

    We’ve seen real success stories. Academic groups running biomass conversions reported cleaner workups and less corrosion in their equipment after switching to our material. The absence of toxic halogen byproducts made their downstream processing simpler and dropped their regulatory paperwork. In chemical manufacturing, these factors save not just money but also headaches.

    Real World Examples: What Users Tell Us

    Over the past years, we supplied this ionic liquid to a range of users—from battery start-ups to pharmaceutical intermediates producers. A few stories stand out. One partner, running continuous-flow organometallic reactions, could not get stable yields using common methylimidazolium chlorides. The switch to our dicyanamide-based product cut their catalyst fouling problem and doubled their on-stream time between clean-outs. Battery developers, constantly recalibrating for electrolyte stability, fed back that the lower presence of contaminants in our product cut their need for expensive pre-use filtration.

    Small-scale labs notice differences too. Teaching labs at universities discovered our product held up after repeated air exposure, staying clear and free-flowing long past the shelf lives quoted by competitors. This isn’t just chemical robustness, either—it’s a result of our disciplined packing and storage practices. Every time a bottle ships, we check for headspace humidity and secure seals to avoid moisture uptake in transit. Unpackaged, unnoticed factors like trucking in rainy weather or warehouse humidity can derail quality if you don’t sweat the small stuff.

    Specifications We Use—and Why They Matter

    Rather than reading off a long list of technical specs, it’s worth highlighting what specs mean in practice. Purity levels matter when working at the margins: a 99% product isn’t enough for precision electrochemical or catalyst applications where ppm-level impurities can poison a process. We push for higher purity, consistently tracked through independent HPLC and Karl Fischer moisture testing. Every batch owes its consistency to root-level manufacturing choices, not simply last-minute reprocessing or filtration.

    Some differences hinge on the counterion. Dicyanamide, compared to acetate or tetrafluoroborate, shapes both physical and chemical behavior. Dicyanamide-based ionic liquids show greater resistance to hydrolysis, lessened sensitivity to air, and significantly lower corrosivity—qualitative improvements that translate to fewer lost samples, cleaner glassware, and increased equipment lifespan on factory floors. Over time, the true cost isn’t measured only in purchase price, but in minimized materials loss and downtime reduction. Users aiming for long-term process integration—say, in membrane separations or as catalyst supports—gain more by sourcing ionic liquids that won’t degrade or clog their systems.

    Handling Practices Born of Experience

    Chemists on our floor trust their eyes and instruments. Glass reactors, lined barrels, and dry storage areas all serve to get product from line to drum without spoilage. Proper manual handling counts as much as process automation. Years back, an expensive batch failed because of overlooked container contamination—a lesson we never forgot. Every container, every transfer, every filling operation receives a double-check routine. We’ve learned from mistakes and reviews, always looking for ways to trim error and save our users rework.

    We keep our storage temperatures controlled, recognizing that ambient warehouse heat turns a good product into a shelf-burned liability. We use nitrogen blanketing for long-term storage and stress proper handling up and down our logistics chain. Simple process upgrades—real-time IR monitoring, sealed-bag packaging, and batch serialization—give users confidence that their material landed safely, ready for immediate use. We don’t rely on wishful thinking or vague process summaries—the proof lives in batch records and user feedback.

    Comparative Insight: 1-Allyl-3-Methylimidazolium Dicyanamide vs. Common Alternatives

    This product exists in a competitive landscape. Some users come from a background favoring chloride or tetrafluoroborate imidazoliums, appreciating stability in extraction processes or low viscosity for mixing. Still, each alternative entails costs and operational risks. For instance, chloride-based versions can corrode stainless steel process equipment and introduce trace chlorination into products. Tetrafluoroborate salts can slowly hydrolyze to release toxic HF—even small spills present a hazard, particularly when working at an industrial scale.

    Long-run trials show the dicyanamide variant offers smoother processability and less wear on process lines. If you’re running a weeks-long polymerization or catalyst recycling process, the fewer the system interruptions, the better. Plant operators, after trying many competitors, tell us they felt the difference not only in reaction outcomes but also in day-to-day housekeeping and maintenance costs. These testimonials shape our own refinements—each runs of 1-Allyl-3-Methylimidazolium Dicyanamide reflects lessons learned in environments where quality can’t be an afterthought.

    Supporting Modern Research—And Facing New Challenges

    The pace of chemical innovation only increases. Today’s researchers in nanomaterials, coordinated catalysis, or energy conversion need robust, reliable solvents and electrolytes. We see demand shifting from classic organic solvents toward ionic liquids, as regulatory and performance needs evolve. Dicyanamide anion brings potent synergy—a strong hydrogen bond acceptor, a stable non-halogenated moiety, and versatile coordination chemistry potential.

    As more labs tackle multi-step syntheses or scale-up green transformations, poor quality control creates expensive slowdowns. Labs report that off-color ionic liquids with variable viscosity or dissolved contaminants not only slow results but sometimes halt progress entirely. Those are setbacks we strive to eliminate—not by promising the moon, but by refining each lot with open eyes and useful feedback. Our technical staff field calls, swap data, and troubleshoot reactions at all hours, because process chemistry thrives on communication and shared knowledge. We keep examples on hand, share test runs, and learn what new methods demand from old products.

    Looking Forward: Continuous Improvement and Open Dialogue

    Chemical manufacturing isn’t a static achievement. We keep listening to plant engineers who need easier-to-handle containers and safer unloading procedures; we adapt when labs request even tighter handling specs for solvent-free or catalyst applications. Every request, every complaint, every late-night batch problem forms our roadmap for continuous improvement.

    Feedback from the field prompted us to review filtration protocols, shipping buffer arrangements, and analytical batch authentication. No process optimization stands in isolation; every product we ship carries the mark of collective attention and shared objective—quality, safety, usefulness, and environmental responsibility at every stage. In our shop, 1-Allyl-3-Methylimidazolium Dicyanamide isn’t just another catalog entry; it represents our investment in responsible chemistry and solid, trust-driven partnerships.

    Direct from Source to User—Why That Distinction Matters

    Countless chemicals pass through hands unseen by their original makers—bottled, rebottled, and diluted along the trade circuit. We stand as the actual producer. That distinction brings accountability, traceability, and the responsibility to deliver truth from our experience, not abstract promises from a reseller’s brochure. If something goes wrong, we don’t hide behind supply chain ambiguities—we investigate, fix, and communicate openly. Users benefit by dealing directly with a team possessing intimate knowledge of both process bottlenecks and potential workarounds.

    We’ve listened to stories about unwelcome surprises: materials arriving mislabeled, out of spec, or with odd contaminant loads. By manufacturing and quality-checking at source, we eliminate guesswork for our users. The goal is simple: supply a chemical that performs to promise, batch after batch, delivered with the transparency that lets researchers and factory chemists focus on their real work.

    Conclusion: 1-Allyl-3-Methylimidazolium Dicyanamide in Real Practice

    Chemical industry progress depends on a foundation of high-quality, well-characterized materials. 1-Allyl-3-Methylimidazolium Dicyanamide offers a compelling blend of stability, performance, and real-world practicality across a spectrum of advanced applications. From electrochemical innovation to green process development, our experience shapes each lot, guided by feedback from those who use it at the frontlines of science and industry. That focus—on day-to-day realities and continued improvement—gives our partners a material they can trust, iteration after iteration.