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HS Code |
343768 |
| Chemical Name | 1-Decyl-3-Methylimidazolium Dicyanamide |
| Abbreviation | [C10mim][DCA] |
| Cas Number | 616481-43-9 |
| Molecular Formula | C14H24N6 |
| Molecular Weight | 276.38 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Melting Point | -40 °C (approximate) |
| Boiling Point | Decomposes before boiling |
| Density | 1.01 g/cm3 (at 25 °C) |
| Solubility In Water | Miscible |
| Ionic Nature | Ionic liquid |
| Viscosity | Approximately 100-200 cP (at 25 °C) |
| Thermal Stability | Stable up to ~250 °C |
| Conductivity | Moderate ionic conductivity |
| Flash Point | >100 °C |
As an accredited 1-Decyl-3-Methylimidazolium Dicyanamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 1-Decyl-3-Methylimidazolium Dicyanamide, 100g, comes sealed in a high-density polyethylene (HDPE) bottle with a secure screw cap. |
| Shipping | **Shipping Description for 1-Decyl-3-Methylimidazolium Dicyanamide:** Ship in tightly sealed containers, protected from moisture and incompatible materials. Store and transport at room temperature. Avoid exposure to heat or open flame. Handle under appropriate safety protocols. Confirm chemical’s classification with shipping regulations (e.g., DOT, IATA, IMDG) before transport to ensure compliance. |
| Storage | 1-Decyl-3-Methylimidazolium Dicyanamide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from moisture, heat sources, and direct sunlight. Keep away from incompatible materials such as strong oxidizing agents. Use in a chemical fume hood if handling in bulk, and ensure the storage area is equipped with proper spill containment and safety equipment. |
Applications of 1-Decyl-3-Methylimidazolium Dicyanamide in Industrial ManufacturingAs a dedicated manufacturer, we supply 1-Decyl-3-Methylimidazolium Dicyanamide to global industrial partners requiring certified, reliable ionic liquids for demanding chemical processes. This section details its established use in mature, regulation-compliant downstream sectors, focusing on precise integration into customer-specific processes. 1. Advanced Electrolytes for High-Performance SupercapacitorsThis ionic liquid serves in the formulation of non-volatile electrolytes for energy storage, delivering enhanced thermal and electrochemical stability for next-generation supercapacitor production. Its low volatility and high ionic conductivity allow for increased device safety and lifespan under extreme charge-discharge cycling, responding directly to the technical needs of energy storage OEMs operating within regulated markets. Industry compliance standards
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2. Reaction Medium for Selective Organic SynthesisChemical manufacturers use this ionic liquid as an aprotic solvent medium for complex heterocyclic transformations, particularly in pharmaceutical intermediate synthesis and fine chemical process routes. Its unique solvation characteristics favor specific reaction pathways, supporting higher yields while meeting safety and environmental requirements for GMP-compliant facilities. Industry compliance standards
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3. Electroplating Bath Component for Metal Surface FinishingSurface finishing plants employ this ionic liquid as a conductivity booster and plating bath stabilizer in specialized metal deposition applications. Its unique properties permit uniform deposition of metals like copper and silver, supporting fine coating definition, improved corrosion resistance, and increased bath life under controlled manufacturing conditions for electronics and aerospace parts. Industry compliance standards
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4. Solvent and Stabilizer in Polymeric Membrane FabricationMembrane technology manufacturers implement 1-Decyl-3-Methylimidazolium Dicyanamide as a functional additive for forming and stabilizing asymmetric polymer membranes intended for filtration and separation. Its interaction with polymer matrices enhances pore uniformity, thermal resistance, and long-term membrane performance, which is critical in food-grade, pharmaceutical, and industrial water applications. Industry compliance standards
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5. Antistatic Additive in High-Performance Coating FormulationsCoatings formulators incorporate this ionic liquid as a permanent antistatic agent for advanced industrial paints and varnishes applied to electronic housings, cleanroom surfaces, and packaging films. Its stable ionic properties dissipate static charges on treated surfaces and ensure durable antistatic behavior even under fluctuating humidity and abrasion, aligning with stringent material performance specifications. Industry compliance standards
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Competitive 1-Decyl-3-Methylimidazolium Dicyanamide prices that fit your budget—flexible terms and customized quotes for every order.
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Every chemist in this industry stays on the lookout for materials that solve real processing bottlenecks, not just through tradition, but with visible gains in outcomes. In our line, substances like 1-Decyl-3-Methylimidazolium Dicyanamide earn continued use on actual results, not trends. We've spent years scaling up this ionic liquid, known for its potent solvating capabilities and stable profile in challenging environments. Its origins spring from a thoughtful combination of a long-chain alkyl imidazolium cation and the dicyanamide anion, creating a set of physical traits that drive innovation in both established daily operations and new research pushes.
We produce this product with a purity standard consistently above 98%, guided by extensive batch testing and tight process control. It has a pale to colorless liquid appearance at room temperature. Viscosity, density, and thermal stability all come out of our reactors with a narrow window, because irregularities—no matter how minor—show up right away on instrument readouts and eventually in client systems. Hydrophobicity and thermal resistance outperform short-chain imidazolium salts, thanks to that decyl tail which adds flexibility for formulation across multiple solvent environments.
The dicyanamide anion brings its own punch. In every production run, this anion’s structure offers remarkably low viscosity compared to alternatives like tetrafluoroborate or hexafluorophosphate. Less viscosity means easier transfer, swifter mixing, and minimal clogging or phase separation, even in upscaled pilot plant scenarios. Those qualities matter far more than textbook property tables since clogging a pump or fouling an electrode cell mid-batch eats hours and turns schedules upside-down.
Some ionic liquids stay confined to the research literature or specialty glassware. Our practical advantage comes from seeing how 1-Decyl-3-Methylimidazolium Dicyanamide stands up to repeated use. Electrochemistry outfits rely on its wide ionic liquid window and conductivity—clean measurements, high reproducibility, and resilience against moisture all translate to fewer false starts and reliable baseline readings. For extraction and separation chemists, the combination of chain length and dicyanamide anion enables effective partitioning with lower toxicity concerns compared to legacy salts.
Polymer synthesis crews appreciate the liquid’s roles as both an antistatic agent and a solvent for high-performance films. Heat resistance keeps polymer properties intact above 200°C, extending the working envelope for specialty membranes and advanced elastomers. We see the rising demand for safer alternatives to volatile organic solvents, and this ionic liquid steps into that slot without raising operational hazards or maintenance headaches.
Customers often come in requesting a general ‘imidazolium ionic liquid’ and miss out on the ways different anions or alkyl tails turn one product into a completely separate beast for practical purposes. The decyl chain in our compound does more than shift numbers on a viscosity chart. It significantly raises the hydrophobic character, making extraction from non-polar matrices more straightforward—always valuable for teams working in natural product isolation, rare-earth separation, or when tackling new sources of industrial feedstocks.
Some competitors stick to conventional anions like chloride, which carry high risk for metal corrosion and hydrolysis under heat. Dicyanamide avoids these corrosion issues, which shows in the longer service lives for equipment and tools when compared to using chloride- or even PF6-based salts. Those anions also generate troublesome byproducts or leach unwanted ions into sensitive processes. Based on our real processing data, dicyanamide-based liquids run cleaner, especially in closed-loop setups where system longevity and ease of recycling make or break the economic argument.
Electrochemical device labs have adopted this ionic liquid for sodium and lithium batteries. The stable liquid phase and wide thermal window allow R&D teams to stretch testing timeframes, often discovering electrolyte blends that hold up dozens of hours longer than those based on more common imidazolium salts. Researchers confirm that electrode interfaces remain free from unwanted deposits. Even after repeated cycles, the cell internals stay cleaner, translating into better life-cycle results.
As a solvent for homogeneous catalysis, this ionic liquid lets process engineers run transition metal-catalyzed reactions at elevated temperatures, boosting rates and selectivity. Reduced volatility brings obvious safety benefits, but we’ve also noticed operators commenting on easier cleanup post-reaction—no more dealing with the sticky residues often left behind by conventional polar aprotic solvents. Our production teams have collaborated with high-throughput screening chemists to optimize loading, solvent recovery, and recycling protocols. Feedback shows less downtime and improved yields, especially in esterification and alkylation chemistries.
This industry rewards products which prove themselves through scale, not marketing. Our own plants use ionic liquids in cleaning and separation tasks, and we adjust synthesis approaches based on the actual life cycle in use. Customers regularly report extended maintenance intervals for pumps and valves, and they remark on gains in worker safety by reducing airborne solvent loads. Industrial hygiene audit logs reflect lower VOCs and a small but steady decrease in annual waste-handling costs.
Our hands-on tradition tracks product consistency through robust process control. Each batch undergoes quality verification with NMR, FTIR, and Karl Fischer water content analysis. We never ship on just HPLC or melting point data alone, because even one off-spec lot disrupts downstream users and damages the trust we work hard to build. This approach means users can determine operating parameters and expect the same behavior year after year. Teams relying on batch blending and continuous-feed processes avoid those expensive stops for root-cause troubleshooting and recalibration.
Some industrial buyers question why they should pay a premium for this product instead of using shorter-chain analogs like 1-Butyl-3-Methylimidazolium salts. The decyl variant’s superior hydrophobicity and wider liquid range answer those questions in procedures requiring precise solvent selectivity. By moving to a longer chain, customers see sharper phase boundaries, making post-reaction separation easier—yielding purer products and simpler solvent recycling. These differences play out in real-time: teams cleaning up a post-extraction phase can often skip additional washes and solvent switches.
Dicyanamide-based liquids, compared to PF6 or BF4 salts, offer measurable safety advantages. Dicyanamide does not generate hydrofluoric acid even under severe conditions, avoiding a notoriously destructive and hazardous byproduct. Cooling water circuits, heat exchangers, and glassware show fewer etching marks. Less corrosion equals longer asset life and fewer costly replacement cycles. Environmental release assessments demonstrate low aquatic toxicity and straightforward waste management due to faster breakdown when neutralized.
Like with any specialty material in the chemical sector, lack of familiarity leads some to apply broader solvent or ion-exchange practices that don’t quite fit. We often work with teams transitioning from volatile organic solvents or chloride-based salts. They discover that this ionic liquid’s behavior around water, polar substrates, and certain metals contains subtle but important distinctions—it’s not a drop-in replacement for every scenario. Overdilution with water can drop the performance edge, and excessive heating with moisture can still introduce degradation risks.
We advocate for partnering during process design. Our technical staff routinely customizes blending protocols, mixing rates, and solvent ratios for each use case. New users can depend on our in-process documentation, troubleshooting records, and the lessons gained from prior installations. Many first-time users find it helpful to run small-scale pilots, tracking changes in yield, purity, and waste. This approach highlights both best uses and any required corrective tweaks, removing guesswork before hitting full throughput.
Modern regulations call out even modest risks from halogenated byproducts or metal corrosion. We’ve staked our product line on compounds that reduce these exposures at all steps, from delivery through final waste. Long-chain imidazolium salts like ours, coupled with dicyanamide anion, avoid most ‘forever chemical’ scrutiny thanks to relatively rapid breakdown under realistic treatment conditions. We monitor all incoming data on aquatic impacts, worker exposure limits, and regulatory shifts, sharing those findings in technical bulletins and regular user updates.
Our commitment runs beyond mere compliance. Each production lot is tracked for composition and possible residuals; end-users receive not only an independent verification but also ongoing support navigating changes in disposal or handling standards globally. We encourage responsible handling, continual in-house monitoring, and closed-loop recovery where feasible. These steps have earned the product wider acceptance in markets concerned about environmental stewardship, from advanced materials manufacturers to research agencies under national clean-chemistry mandates.
A manufacturer’s long-term relationship with a material comes from tackling everything that goes wrong in scale-up runs. Sometimes a new process throws up phase separation issues. Over time, we’ve recorded blending rates, mixing orders, and optimal settling times to fix cloudy bottoms and stubborn emulsions—lessons no mere brochure could offer. Other times problems come down to deposits on reactor walls or unexpected changes in color index. Adjustments in temperature ramps, solvent ratios, and controlled air exclusion clean up these artefacts, restoring product clarity and purity.
Our technical service teams reach out after delivery, not just before. Every challenge our customers bring—be it a pump fouling in a battery pilot program or purity drift in an extraction rig—adds to our data pool and improves our processes too. Processing data ends up written into next month’s production, so that all users benefit from every solved problem, turning each batch into a better iteration. This collective experience anchors us in the market and results in higher adoption rates with fewer negative surprises in onsite use.
The research sector regularly uncovers new applications for ionic liquids. Our material now finds roles in everything from enzyme stabilization in biocatalysis to functional coatings for electronics. We track physicochemical data and field reports closely, identifying performance boundaries where the product excels or needs modification. Our in-house pilot facility allows us to simulate customer runs—adjusting for new catalysts, alternate substrates, or evolving regulatory thresholds—well before any formula adjustment moves to commercial lots.
Process innovation isn’t just a marketing phrase for our team. Plant engineers and formulation chemists operate a feedback loop, where trial runs and full-scale batches produce side-by-side data for review. This keeps inconsistency out of bulk shipments and helps us recommend minor changes (in temperature range, solvent loading, or storage container type) at a level of specificity that shortcut costly downtime for our industrial clients.
Many of our clients want more than an off-the-shelf product. They value our decades of experience in bespoke chemical engineering, which complements the intrinsic properties of the ionic liquid. Collaborations in energy storage, catalysis, and specialty separations show the product’s adaptability when paired with fine-tuned engineering. It’s these partnerships, drawing on proven material reliability, that help manufacturers stay ahead. Our long-term data and firsthand application experience turn theory into actionable advantages, supplying customers with not only the right product, but also the context and support they need to deliver project goals.
On each project, we share comprehensive mixing and dosing guidance learnt from hundreds of runs. Customers benefit from blend ratios that avoid waste, loading capacities that maximize separation efficiency, and response plans for unexpected variances. This tight feedback cycle grounds our support teams’ process improvements, reinforcing customer confidence in both everyday and critical production runs.
Commodity chemicals don’t always require high-touch manufacturing. But specialty materials like this ionic liquid rely deeply on production consistency, analytical rigour, and customer feedback. Each successful run in a customer’s plant boosts not only our reputation, but also contributes back to the evolving technical base supporting the entire industry. Batch credentials, real-life troubleshooting, and transparent analytics highlight the value of dealing directly with the manufacturer rather than resellers or brokers.
Our workshop and production floor aren’t just places for scaling up molecules; they serve as living records of what works, what wears out, and what demands change. Every solvent transfer, reactor cleaning, and blending session pushes us to deeper understanding, connecting the performance benchmark to actual user delivery. This iterative approach translates into a better working environment for both us and our customers, developing a partnership centered on genuine long-term improvement.
Whether you’re navigating electrolytes for cutting-edge batteries, solvent systems for precision separations, or new polymer recipes, 1-Decyl-3-Methylimidazolium Dicyanamide brings a proven tool into your lineup. It’s not just a line on a data sheet or an item in inventory; it stands as a reliable, flexible enabler based on direct manufacturer experience and grounded operational results. For teams seeking stable material supply, dependable quality, and real-world technical insights, this ionic liquid offers both the science and the track record to make a difference day in, day out.