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HS Code |
857375 |
| Chemical Name | N-Decylimidazolium Trifluoroacetate |
| Cas Number | 168045-53-2 |
| Molecular Formula | C16H27F3N2O2 |
| Molecular Weight | 336.39 g/mol |
| Appearance | Colorless to pale yellow liquid or solid |
| Melting Point | 40-50 °C (approximate) |
| Solubility | Soluble in water and polar organic solvents |
| Purity | Typically ≥ 98% |
| Boiling Point | Decomposes before boiling |
| Density | 1.15 g/cm³ (approximate) |
| Storage Conditions | Store at room temperature, protect from moisture |
| Smiles | CCCCCCCCCCN1C=CN=C1.C(=O)(C(F)(F)F)[O-] |
| Synonyms | 1-Decyl-3-methylimidazolium trifluoroacetate |
As an accredited N-Decylimidazolium Trifluoroacetate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250g of N-Decylimidazolium Trifluoroacetate supplied in a sealed amber glass bottle with tamper-evident cap and hazard labeling. |
| Shipping | N-Decylimidazolium Trifluoroacetate is shipped in tightly sealed, chemically resistant containers to prevent moisture and contamination. Packages are clearly labeled with appropriate hazard information and handled according to chemical safety regulations. Transport is conducted under controlled temperatures, away from incompatible substances, ensuring compliance with both national and international shipping standards for hazardous materials. |
| Storage | N-Decylimidazolium Trifluoroacetate should be stored in a tightly sealed container, away from moisture and incompatible substances such as strong oxidizers. Keep it in a cool, dry, and well-ventilated area, protected from direct sunlight. Ensure proper labeling and avoid exposure to heat or open flames. Use appropriate secondary containment to prevent leaks or spills, and follow all relevant chemical safety guidelines. |
Applications of N-Decylimidazolium Trifluoroacetate in Industrial ManufacturingAs a specialized manufacturer, we supply N-Decylimidazolium Trifluoroacetate to industrial partners who require advanced ionic liquids for demanding applications. Below we highlight verified downstream sectors where our product supports process innovation, regulatory compliance, and new material development. Each listed scenario reflects established commercial use, integration points, and relevant industry guidelines. 1. Cellulose Dissolution for Fiber SpinningIonic liquids containing N-Decylimidazolium Trifluoroacetate enable direct dissolution of cellulose pulp, bypassing the need for traditional chemical derivatization, which simplifies downstream fiber spinning operations such as dry-jet wet spinning and generates high-purity regenerated cellulose fibers. Fiber producers value its ability to reduce cellulose dissolution temperatures and improve fiber uniformity, supporting efficient throughput and improved QC metrics. Adoption in dissolution lines requires in-line monitoring to optimize solvent use and product consistency. Industry compliance standards
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2. Catalytic Phase Transfer in Esterification ProcessesThe unique ionic character and hydrophobic-hydrophilic balance of N-Decylimidazolium Trifluoroacetate are leveraged by fine chemical manufacturers engaging in esterification and transesterification reactions. Its presence increases reactant compatibility in biphasic systems, reducing side reactions and promoting clean product separation. Operators can shorten reaction times and decrease the use of excess acidic catalysts, resulting in higher reproducibility and lower downstream purification requirements. Industry compliance standards
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3. Electrolytes in High-Voltage Supercapacitor FabricationOur ionic liquid supports production of advanced supercapacitors requiring high electrochemical stability and broad voltage windows. Supercapacitor assemblers benefit from low volatility and high ionic conductivity, contributing to energy storage devices with long cycle life. The liquid directly contacts electrode materials in automated cell assembly operations, with real-time monitoring of viscosity and electrical properties to ensure batch uniformity. Industry compliance standards
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4. Antisolvent in Microcrystalline Drug PrecipitationFormulators in pharmaceutical R&D use N-Decylimidazolium Trifluoroacetate as a controlled antisolvent for API precipitation, allowing reproducible formation of target particle sizes in microcrystalline and nanoscale drug forms. The ionic liquid’s selective miscibility profile supports nucleation control, leading to higher bulk density and improved downstream processability in direct compression and capsule filling units. Strict filtration and cleaning protocols ensure compliance with drug purity and safety standards. Industry compliance standards
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5. Lubricant Additive for High-Temperature Metal FormingIn metalworking, formulators blend the ionic liquid into synthetic lubricants for forging, hot rolling, and extrusion processes where conventional additives degrade or form deposits. Its thermal stability limits breakdown at temperatures above 300°C, and its surface activity reduces tool wear. Formulation and batch testing ensure lubricity and residue control that meet challenging application demands. Industry compliance standards
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Manufacturing specialty chemicals never stays routine for long. Whether working behind reactors, running HPLC checks, or listening to customer feedback about scale-up headaches, every batch tells its own story. N-Decylimidazolium Trifluoroacetate—our flagship ionic liquid—has found its way from concept bench to real industrial tools across labs that demand high purity and reproducibility. This didn’t happen by accident. We built each kilogram with direct hands-on care, from solvent refinement to multiple filtration passes, until the final product consistently meets standards we know are tough enough for demanding users.
Our crew never forgets that applications aren’t just run on paper. Chemists need to improvise, to solve snarls in separation, catalysis, or electrochemical devices. Over the years, we have listened carefully to what users need and what gets in the way. In the case of N-Decylimidazolium Trifluoroacetate, real expertise—born from sweating during pilot plant troubleshooting and watching customer pilot runs—keeps our improvements grounded in what actually works in a reaction vessel or electrochemical cell, not just on purity sheets.
N-Decylimidazolium Trifluoroacetate, known in everyday language around our plant as the C10-imidazolium trifluoroacetate, takes a simple premise and builds out functional advantages. The core is an imidazolium ring, selected for its stability and ease in cation tailoring, paired with a decyl chain that gives balance between hydrophobicity and manageable viscosity. The trifluoroacetate anion rounds the pairing, introducing chemical resistance without hiking the cost or risk profile associated with more exotic fluorinated partners. Model numbers on our drums aren’t just decoration—they reflect the controlled process steps, repeated titrations, and analytical confirmations that underpin each lot. Every operator understands why exact ratios and temperature profiles matter. Anything off gets rejected by our own QC team.
For purity, our specifications are strict. Purity checks frequently exceed 99 percent by NMR and ion chromatography. Residual halides, color body contaminants, and transition metal trace amounts get tracked batch by batch. We scale the synthesis up with a modular approach, so no intermediate sits around longer than necessary—this matters because ionic liquids sometimes hide byproducts in those corners, and we want our customers to skip extra pre-treatment. After filtration and drying, final product passes through glass fiber filters to strip out micro particulate impurities. Moisture content is routinely checked—both to help customers meet stringent anhydrous specs and to keep electrochemical performance reliable. Aqueous solubility and viscosity ranges are measured at multiple temperatures. To old hands in chemical manufacturing, these steps form habits: you cannot assume one reaction or isolation protocol works for every desired property, so we verify—again and again.
Users approach ionic liquids with a varied wish list. Experience tells us that fast shipping and a sealed drum mean nothing if the product’s characteristics degrade the minute it leaves the warehouse, or the next time someone draws a sample. N-Decylimidazolium Trifluoroacetate stands out in the portfolio because it manages that durable balance between cation structure and functional properties. Shorter-chain imidazolium ionic liquids sometimes suffer volatility, fast leaching, or environmental persistence issues. Longer alkyl chain analogues—like dodecyl and tetradecyl—often gum up lines or slow mixing, which can eat up time for pilot plants keen on throughput. Triflate or hexafluorophosphate anions offer superlative resistance, true, but they also push costs up dramatically and introduce disposal headaches in some jurisdictions.
This C10 trifluoroacetate strikes that careful middle ground. Its moderate viscosity makes it suitable for handling and transfer even on cold winter days. Stability is a marked improvement over both shorter and longer chain analogues; the trifluoroacetate anion brings exactly the right blend of chemical inertness so that degradation doesn’t creep in during open air transfers, while remaining easy to recycle and neutralize. The unique pairing also keeps toxicity manageable compared to certain halide or bis(trifluoromethanesulfonyl)imide series. In real-world applications—from phase-transfer catalysis to advanced battery electrolyte design—this means fewer shutdowns, easier lab cleanups, and fewer compliance surprises. Users who have made the switch from other imidazolium ionic liquids tell us their pumps, reaction rates, and post-run maintenance schedules see not just small tweaks but sometimes dramatic gains.
On the production line, safety and procedural discipline rule our day. N-Decylimidazolium Trifluoroacetate begins life in gloveboxes that handle the base imidazole, and our team goes through multiple alkylation and metathesis steps under monitored inert gas. Cleanliness counts, so each vessel and tool is verified between runs. What outsiders rarely see is the constant running note taking: operators directly mark off deviations, color changes, or unexpected temperature spikes. Even late-night runs go on record. After all, these notes allowed us to spot a moisture intrusion issue that one year led us to swap out condenser seals company-wide.
Some users run high-throughput synthesis lines with process automation, where viscosity swings or batch-to-batch purity deviations can disrupt entire schedules. Others run bench-scale exploratory chemistries, where a single jar’s performance can decide whether a research grant gets renewed. In electrolytic applications, users look for long-term current stability and tightly controlled ionic conductivity. Many of these customers send feedback that goes straight into the next process review—such as a recent change to our drying protocol after one electrochemistry customer pointed out a trace water issue under their vacuum.
N-Decylimidazolium Trifluoroacetate earns appreciation for having consistent melting behavior and manageable pour points. Colleagues in the electrodeposition and solvent extraction industries often report higher reproducibility and less batch-to-batch drift. For someone running a 5-liter jacketed glass reactor that can’t take too much downtime, temperature stability and easy cleanup after product transfer matter far more than a technical brochure ever shows. When users have tough separation problems with other ionic liquids—foaming, side reactions, or post-reaction cleanroom contamination—this product steps in with real-world advantages: less cleanup, less lost product, and more time running actual experiments.
Our sales engineers walk facilities and see operations firsthand—overheated pumps, misaligned storage drums, or packaging busted open during shipping. This feedback loop leads us to reinforce our storage protocols and design containers that really travel. Our 500-gram and 1-kilogram glass bottle lines resisted breakage even during period of severe transport disruptions. Moisture ingress gets checked both before release and again with random customer send-outs. No lab should ever have to start a column separation all over again due to micro-scale hydrate formation at the bottom of the drum.
Some of the biggest stories around N-Decylimidazolium Trifluoroacetate come from users working with precious metal catalysts and fine chemical processing pilots. Platinum-catalyzed hydrogenation and cross-coupling steps sometimes stall with older ionic liquid cycles, either from cation breakdown or uncontrolled acid base chemistry. Swapping in our product, users report steadier yields—no more sticky residue buildup, and improved filterability after reaction. In custom resin extractions and separation of actinides, the trifluoroacetate handles loading cycles without leaching, which means more consistent selectivity. This isn’t just theory—we keep feedback logs, and teams using the updated protocol confirm that fewer filtration steps shave days off their campaigns.
Energy and battery clients turn to this ionic liquid for its longtime cycling reliability and moderate viscosity support. Some vented their frustration about old electrochemical solvents either degrading electrodes or forming corrosive byproducts after a handful of charge-discharge cycles. Switching over to N-Decylimidazolium Trifluoroacetate, batteries would last longer, cathodic stripping voltammetry signals ran stable, and users saw a marked uptick in cycle life. This means less product waste, reduced cell maintenance, fewer replacement parts—and less downtime. It saves more than raw material costs: production schedules get a boost, and quality teams can finally spend time improving processes instead of patching old ones.
Downstream, our partners running continuous flow microreactors for specialty chemical synthesis regularly comment on cleaner runs and fewer clogging issues with the C10 imidazolium trifluoroacetate over longer chain analogues. The balance between organic solubility and water compatibility drives up conversion yields and aids in separation steps. In the world of pharmaceutical intermediates, this often means better purification with lower solvent consumption. Research and development labs in the specialties segment routinely highlight our product for its robust behavior under mild and extreme pH swings as well as its ability to dissolve a wider range of metal complexes than most competitors.
We keep track of these user stories precisely because they keep us connected to the actual bench-top work happening outside our walls. Our production changes—such as move to thicker frosted glass bottles for trace water protection and switch to tighter nitrogen-purged seals—trace right back to customer runs that proved the improvement was worth the upgrade. The gains stay cumulative for everyone.
Manufacturing N-Decylimidazolium Trifluoroacetate always brings new safety and environmental considerations. On our plant floor, operators check scrubbing units, run emission monitoring, and log every solvent handoff. Trifluoroacetate anions can generate concern if not handled with robust containment, and we deliver every batch with documented removal of all halide precursors. Our waste treatment system routes effluent through multi-stage neutralization, not just basic wash-offs, which keeps our environmental profile ahead of regulatory guidance. This hands-on experience shapes every improvement to closed transfer lines, tighter packing, and more detailed batch documentation.
This commitment meets increasing customer demand for footprint reduction and transparency. We share CO₂ emission summaries for each lot, and we keep up discussions with institutional users about solvent recovery strategies. Every kilogram of finished ionic liquid travels with paperwork showing both the chemical profile and analytical verification steps, giving downstream users the confidence to trim their own QC checks. It frees up chemists to work on new reactions—not repeat basic analytical confirmation already done upstream. Implementation of in-process monitoring means our team recently caught a pH anomaly in an early metathesis stage, which allowed us to avoid a shelf-life reduction that could have affected client pilot campaigns.
Continuous process improvement isn’t a buzzword here. Our operators suggest and test small process tweaks—faster vacuum stripping in the final purifications, or adaptive scheduling to optimize batch size based on customer forecasts. Lower process waste and reduced solvent losses flow directly to sustainability benchmarks sought by large clients. We use energy meters and humidity probes to flag process drifts in real time. When competitive offerings slip in standards, our team is quick to investigate whether a process step or purity policy has become outdated, making sure defects get rooted out before a drum ever ships out the door.
Years of running actual plant operations and following customer trials shape our view of what makes N-Decylimidazolium Trifluoroacetate outperform similar offerings. Some alternatives claim better conductivity but give users more filtration headaches and drum-to-drum batch drift. Other suppliers compete on price and volume, but every lost reaction or failed battery test costs far more than a small per-kilogram saving. We prioritize reproducibility because it takes only a single off-spec drum to stall an entire research pipeline or disrupt a catalytic production run. This product earns its keep by consistently hitting the sweet spot between high chemical resistance and the manageable physical properties industrial users want.
In process troubleshooting, it stands up under repeated thermal cycles and filtration steps, without the unexpected precipitates or phase splits that plague some cheaper alternatives. The decyl chain—neither too long nor too short—avoids the gelling and slow mass transfer issues, making it more adaptable for users who demand steady throughput. The trifluoroacetate balances the reliability many halide-based products struggle to deliver. Users working under GMP or strict regulatory requirements find it easier to qualify in their processes—and the documentation we provide, along with actual chemical batch records on request, simplifies onboarding for new projects.
These practical benefits mean more stable process economics, less downtime rounding up replacement solvents or rescheduling plant runs, and fewer waste drums that need hazardous disposal. For the R&D community, N-Decylimidazolium Trifluoroacetate replaces layers of test runs and buffer steps with quicker outcomes and more consistent product isolation. In scale-up projects, intermediate and final product purities run more tightly, and reaction repeatability goes up. Labs looking to move from flask to flow-chemistry modules won’t face the backflow, foaming, or slow phase settling that lowers both yield and researcher morale.
We know the future of ionic liquids lies in advances that trade out volatility, steric bulk, or unpredictable stability for smarter molecular pairings and more reliable engineering. N-Decylimidazolium Trifluoroacetate keeps opening up application doors—menacing less corrosion, running cleaner electrochemistry, or just letting users get on with their work instead of firefighting stuck columns and filter clogs. Research demand for sustainable, recyclable chemical systems keeps us focused on closing the loop: solvent recovery units, improved recycling protocols, and lifecycle analysis tools occupy more of our R&D meetings now than ever.
From our perspective on the factory floor, every feedback call, unsuccessful test batch, or alignment meeting with customers gives us the next ticket for process improvement. Our operators contribute not just labor but also direct input on handling risks, on the little tweaks that keep a synthesis step sharp, and on new ways to anticipate storage or shipment issues. Future product variants may extend chain length, switch anions, or add functional groups, but our base principle remains: chemical manufacturing gains lasting strength from meticulous execution and transparent communication.
N-Decylimidazolium Trifluoroacetate owes its track record not just to the right molecules, but to years of direct experience solving the headaches and late-night reruns that real users face. We keep driving improvements because customers demand it, new research keeps pushing limits, and unexpected process upsets always give a nudge to try again. If you want a chemical product that has proven itself through repeated, hands-on use, built with the awareness only a manufacturer learns after sending out hundreds of batches and taking calls about every possible failure mode, our ionic liquid stands as the result of those lessons.