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HS Code |
526842 |
| Cas Number | 746651-98-5 |
| Molecular Formula | C18H37ClN2 |
| Molecular Weight | 317.96 g/mol |
| Appearance | White to off-white solid |
| Melting Point | 92-96 °C |
| Purity | ≥98% |
| Solubility In Water | Soluble |
| Ionic Nature | Ionic liquid (imidazolium salt) |
| Boiling Point | Decomposes before boiling |
| Storage Conditions | Store at room temperature, tightly sealed, dry and away from light |
| Synonyms | 1-tetradecyl-3-methylimidazolium chloride |
| Hazard Class | Irritant |
As an accredited 1-Tetradecyl-3-Methylimidazolium Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250 g of 1-Tetradecyl-3-Methylimidazolium Chloride is supplied in a sealed amber glass bottle with a secure screw cap. |
| Shipping | **Shipping Description:** 1-Tetradecyl-3-Methylimidazolium Chloride is shipped in tightly sealed, chemical-resistant containers to prevent moisture absorption and contamination. The package is labeled according to relevant regulations and handled as a laboratory chemical, avoiding extreme temperatures and direct sunlight. Shipping complies with all applicable transport safety guidelines for non-flammable, non-toxic chemicals. |
| Storage | 1-Tetradecyl-3-methylimidazolium chloride should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from moisture and direct sunlight. Keep away from incompatible substances such as strong oxidizing agents. Ensure proper labeling and avoid exposure to extreme temperatures. Personal protective equipment should be used when handling to prevent contact with skin and eyes. |
Applications of 1-Tetradecyl-3-Methylimidazolium Chloride in Industrial ManufacturingAs the original manufacturer, we supply 1-Tetradecyl-3-Methylimidazolium Chloride for specialized industrial segments. Each application below reflects established downstream usage, with focus on compliant processing, technical integration, and real-world formulation practices at commercial scale. 1. Surfactant and Emulsifier in Enhanced Oil Recovery (EOR)Our material plays a crucial role as a cationic surfactant in chemical enhanced oil recovery formulations. It improves crude extraction by reducing interfacial tension between oil and water phases in subterranean reservoirs. Operating fields formulate surfactant flooding solutions with attention to brine compatibility and reservoir lithology, demanding precise quality monitoring and in-field blending protocols. Integration requires stable performance across varying salinity and temperature during EOR flooding, optimizing the mobilization of trapped hydrocarbons. Industry compliance standards
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2. Ionic Liquid Phase Transfer Catalyst in Fine Chemical SynthesisThe compound serves as an ionic liquid catalyst to facilitate phase transfer reactions in manufacture of specialty chemicals. Chemical processors leverage its ability to promote anion exchange without introducing halide impurities typical of organic solvents. Operators choose this material for batch and continuous reactors to enable high selectivity in alkylation, acylation, or nucleophilic substitution routes across biphasic organic–aqueous systems. Industry compliance standards
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3. Antistatic Agent and Additive in Polyolefin CompoundingPlastics compounders utilize our material as an antistatic additive in polyolefin masterbatches, including polypropylene and polyethylene grades for automotive, packaging, and electrical applications. Integrated early during pelletization, it imparts long-term static charge dissipation without migration, ensuring regulatory compliance for permanent antistatic performance in safety-critical molded parts. Industry compliance standards
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4. Electrolyte Additive in Electrochemical DevicesManufacturers of supercapacitors and lithium-ion batteries select this material for blending into liquid or gel electrolyte systems, targeting enhanced ionic conductivity and thermal stability under repeated cycling. Its long alkyl chain structure supports high-voltage operation and reduces flammability compared to conventional ammonium-based additives. Blending and post-mixing protocols follow tight moisture and impurity control, critical for cell performance in mass production. Industry compliance standards
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From decades in the chemical industry, we have watched ionic liquids move from specialized research labs to mainstream applications across sectors that demand both reliability and innovation. Our 1-Tetradecyl-3-Methylimidazolium Chloride represents years of adjustment and learning, both in terms of product purity and real-world performance. Behind every kilogram of this compound that leaves our plant, there are practical lessons gathered on production lines and in customer feedback rooms.
This ionic liquid, sometimes written as [C14mim]Cl, anchors a range of practical uses thanks to a tailored cationic structure and clear physicochemical characteristics. The tetradecyl tail distinguishes it among imidazolium-based analogs—offering both hydrophobic and hydrophilic elements, which opens the door to unique solvents and surfactant behavior. Its molecular flexibility stands out in actual lab and scale-up scenarios. Seasoned technicians and researchers searching for alternative phase transfer agents, surface modification aids, or green solvents frequently mention [C14mim]Cl because the balance between its structural stability and tunable reactivity has solved more than a handful of experimental headaches.
We manufacture 1-Tetradecyl-3-Methylimidazolium Chloride with an eye on real-world outcomes, not just theoretical properties. Bench chemists, process engineers, and research leads have shared concrete stories: this compound has pushed forward emulsification efficiency in catalysis, improved extraction selectivity of rare earths, and enabled gentler immobilization of biomolecules where harsher solvents would destroy target structures. Throughout repeated production cycles, we lock in batch consistency—not just for regulatory reasons, but because experienced chemists notice even subtle shifts in volatility or moisture content. Our product holds at least 99% purity, routinely confirmed by NMR, HPLC, and Karl Fischer titration for moisture. The melting point remains stable, which matters for dosing reliability, and our in-house viscosity data gives an edge to anyone looking at continuous-feed systems.
Not all imidazolium chlorides are equal. The tetradecyl group brings a distinctive set of benefits that become obvious only through repeated use. Many practitioners have noted that C2- or C4-substituted analogs work well in basic extraction or antistatic applications, but fall short in surfactant power or thermal stability when scaled up. In our line, the C14 chain adds a threshold of hydrophobicity that improves interfacial tension reduction—allowing users to form stable microemulsions that hold up under stress. This proves invaluable in biphasic catalysis, ionic liquid chromatography, and in the formation of lyotropic liquid crystals. Researchers working in nanomaterials synthesis or task-specific catalyst preparations see fewer side reactions and better product separations. The difference boils down to molecular structure, but it’s day-to-day use that reveals real separation and clean-up savings at plant scale.
We’ve watched this compound outperform shorter-chain imidazoliums for water-in-oil and oil-in-water emulsion jobs, especially where temperature swings threaten system stability or solvent evaporation leads to safety headaches. The chloride counterion brings the right balance—powerful enough in extraction, but not so strongly associating that it drives up viscosity or hampers downstream purification. This all matters to chemists who need to flush reactors clean or filter products at scale without residues gumming up filters.
Throughout scaling, the practical challenges always shape our process choices. Early on, we saw that batch-to-batch reproducibility made the difference between projects that stalled in the pilot phase and those that ran for years without incident. We introduced inline moisture controls and capillary GC for organochlorine impurities. More than just process improvements, these checks provided predictable consistency—removing the need for extra pretreatment or filtration at customer sites. This aligns both with productivity goals and responsible environmental management, as disposal volumes shrink and post-process solvent recycling becomes easier.
Colleagues in academic and industrial labs often share that our [C14mim]Cl finds regular use in three major domains: selective extraction, catalysis, and material processing.
In rare earth and heavy metal extraction, we’ve supported clients seeking to shift away from traditional organic solvents. Non-flammability and low volatility keep operations within safety targets. The long alkyl chain enhances phase separation, even in systems with high ionic strengths—giving stronger recovery rates and minimizing solvent losses on top of improved safety and environmental profiles.
Professionals working with homogeneous and biphasic catalysis use our compound to assemble task-specific ionic liquids. The tailored hydrophobic–hydrophilic balance supports the solubilization of challenging substrates while still allowing fast catalyst recovery and reuse. This brings practical savings in platinum-group catalyzed reactions and has unlocked new catalytic cycles in cross-coupling chemistries and small-molecule synthesis. Small changes—like improved mass transfer—can cut reactor times or decrease the need for hazardous co-solvents.
We have also partnered with materials scientists formulating advanced functional materials, such as mesoporous silica or conductive polymers, where [C14mim]Cl acts as a robust template or pore-directing agent. Our technical teams have trouble-shooted viscosity-related blocking in pilot reactors by adjusting process temperature and agitation, aiming for clean filtrations and lower downtime.
For surface modification, our ionic liquid outperforms legacy cationic surfactants and has enabled tougher corrosion inhibitors and anti-static coatings. Those running up against the incompatibility of shorter-chained imidazoliums with biopolymers have found [C14mim]Cl to be more forgiving, offering effective adsorption and functionalization with fewer downstream purification headaches.
Over many years of production and scale-up, we have worked hard to ensure both product safety and manageable environmental profiles. Users appreciate the much-reduced fire risk compared to standard volatile solvents—a clear advantage for any plant working with elevated temperatures or enclosed systems. Chloride-based ionics like this one possess relatively straightforward containment and cleanup requirements, requiring no specialized incineration. Still, any chloride salt will pose aquatic toxicity issues if released unchecked, so safe lifecycle management is always a priority. We coordinate with clients to support closed-loop handling and waste minimization strategies. For workforce safety, [C14mim]Cl brings lower inhalation and flashpoint risks than most petroleum-based alternatives, though proper glove and ventilation precautions always remain the rule.
Our operations drew on in-house experience with closed transfer lines and sealed storage tanks to cut worker exposure and minimize losses to atmosphere during filling and transfer. Field feedback led us to implement anti-static drum linings and custom drum closures to prevent both contamination and moisture pickup in transit—a reminder that no matter how refined the manufacturing, packaging can make or break user experiences.
Our plant applies a full suite of analytical techniques on every lot. Chemical shifts and impurity profiles aren’t just marketing words; on-site staff rely on timely NMR, GC, and HPLC data to confirm that every shipment meets its marks. We learned, over thousands of batches, that even minor spectral deviations can forecast filter plugging or color changes in end-use systems—so we pay attention where it counts. Experienced buyers, particularly those running precise chromatography or electron microscopy projects, trust our certificate of analysis not as a formality, but to guide their workflows. Open lines to our analytical staff help researchers problem-solve with real-time support when facing unexpected results or process deviations.
Running a chemical production facility means more than filling orders. Our technical team regularly workshops with users on formulation tweaks, system retrofits, and performance enhancement programs. Projects don't always succeed on the first try—sometimes, viscosity swings, color shifts, or unusual partitioning crop up due to small environmental variations. We draw on field reports, lab-scale troubleshooting, and scale-up trials to guide users toward optimal use. Where a different counterion or chain length might fix a bottleneck, our staff doesn't hesitate to share insights rooted in hands-on runs.
In markets ranging from advanced materials to separation science, strict deadlines and shifting regulatory targets test both reliability and flexibility. A supply chain built on dependable ionic liquids makes up the backbone of these sectors. From our vantage point, few compounds offer a comparable blend of safety, tunable behavior, and performance as 1-Tetradecyl-3-Methylimidazolium Chloride. As demand for sustainable, adaptable solutions grows, we expect this material to underpin new advances in green chemistry, catalysis, and functional surface modification.
We commit to continuous feedback loops—adapting particle sizing, moisture limits, and stabilizer additions in step with process and field experience. Clients tackling challenging synthesis or seeking to extend system lifetimes see real benefits in narrowing product variability and minimizing labor on pre-use treatment. Years spent on pilot lines and production floors have shown us: the right ionic liquid narrows the gap between concept and reality.
Experience has taught us that innovation is as much about communication as chemistry. Regular conversations with developers, formulators, and operators push us to refine both process and product. We avoid unnecessary upgrades or rebranding for the sake of novelty—our improvements come from measured, field-validated tweaks. Open technical discussions around 1-Tetradecyl-3-Methylimidazolium Chloride help distinguish signal from noise, keeping supply chains robust and cost-effective.
Our customers lead the way in the search for safer, greener, and more efficient processes—and so our job remains simple: supply 1-Tetradecyl-3-Methylimidazolium Chloride that works the same, month after month, and stays reliable as both chemistries and regulations evolve. If you ask experienced hands in the field, consistency and clarity always matter more than glossy claims. That's philosophy that shapes every batch we produce, and every specification we promise.
Years of manufacturing, troubleshooting, and refinement ground our approach to 1-Tetradecyl-3-Methylimidazolium Chloride. Each process and improvement draws from lab data and first-hand industrial lessons. We focus on what matters: batch-to-batch trust, knowledge sharing, and a readiness to tackle new process demands as partners, not just as suppliers. This is chemical manufacturing in practice—forging progress by making sure the fundamentals are always right.