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HS Code |
128733 |
| Product Name | N-Hexylimidazolium Chloride |
| Chemical Formula | C9H17ClN2 |
| Cas Number | 171058-16-9 |
| Molecular Weight | 188.7 g/mol |
| Appearance | White to off-white crystalline solid |
| Melting Point | Approximately 120-130°C |
| Solubility In Water | Soluble |
| Density | 1.07 g/cm³ (approximate) |
| Purity | Typically ≥98% |
| Iupac Name | 1-hexyl-3H-imidazol-1-ium chloride |
| Odor | Odorless or mild odor |
| Storage Conditions | Store at room temperature, in a dry place |
| Ph 1 Solution | 5.0-7.0 |
| Synonyms | 1-Hexyl-3-imidazolium chloride |
As an accredited N-Hexylimidazolium Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250g of **N-Hexylimidazolium Chloride** is supplied in a sealed amber glass bottle with a tamper-evident screw cap and label. |
| Shipping | N-Hexylimidazolium Chloride is shipped in tightly sealed, chemical-resistant containers to prevent moisture absorption and contamination. The package is clearly labeled with hazard warnings and handled as per regulatory guidelines. It is transported under ambient conditions, avoiding extremes of temperature, and accompanied by safety data sheets and relevant documentation complying with shipping regulations. |
| Storage | N-Hexylimidazolium Chloride should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from moisture and incompatible substances. Protect it from direct sunlight and sources of ignition. Keep the storage area clean and follow local regulations for storing chemicals. Proper labeling and secure shelving are recommended to avoid accidental spillage or contamination. |
Applications of N-Hexylimidazolium Chloride in Industrial ManufacturingN-Hexylimidazolium Chloride finds wide acceptance across advanced chemical sectors due to its ionic liquid properties, surfactant behavior, and role in selective extraction processes. We manufacture this product for industrial partners driving process innovation in specialty markets. Below, we outline verified downstream application scenarios with key technical details relevant to procurement, formulation, and process integration. 1. Organic Synthesis CatalysisMany fine chemical and pharmaceutical producers use N-Hexylimidazolium Chloride as a phase-transfer or ionic liquid catalyst in complex organic syntheses. The imidazolium ring and alkyl chain structure promote favorable solubility for polar/nonpolar interfaces, enabling improved yields and cleaner workups in alkylation, acylation, and other transition-metal-catalyzed reactions. Chemical engineers select this material for repetitive batch synthesis where moderate Lewis acidity and cationic charge are beneficial, particularly in heterocycle construction or selective C–C couplings. Industry compliance standards
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2. Electrochemical Devices and Energy Storage FluidsAdvanced battery material manufacturers and supercapacitor producers utilize N-Hexylimidazolium Chloride as an ionic liquid electrolyte component. This raw material provides high thermal stability, wide electrochemical windows, and low volatility, making it suitable for safe high-voltage cycling in lithium-ion and sodium-ion cells. R&D teams optimize concentration to balance ionic conductivity and viscosity for energy storage prototypes and pilot-scale runs. Industry compliance standards
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3. Extraction and Purification in HydrometallurgyRefining complexes and specialty metal extractors employ N-Hexylimidazolium Chloride as a selective liquid-liquid extraction agent for rare earths, precious metals, and transition metals. The unique ionic pairing mechanisms allow operators to increase extraction selectivity, especially in the separation of lanthanides, platinum group metals, or from e-waste streams. Control of phase ratio and ionic strength ensures high purity and target recovery. Industry compliance standards
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4. Surfactant for Emulsion PolymerizationProducers of specialty polymers and latexes select N-Hexylimidazolium Chloride to help manage charge density and particle size during emulsion polymerizations, particularly where conventional surfactants fail to deliver stable colloids. Its unique ionic structure allows process control chemists to improve latex film formation, minimize coagulum, and achieve narrow particle distribution, critical for advanced coatings, resins, and high-spec adhesives. Industry compliance standards
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We’ve been synthesizing N-Hexylimidazolium Chloride for years in our facility. Over time, the compound has become more than just a line item in our catalog. Its value kept turning up across different industries—especially as demands for greener and more selective process aids grew. N-Hexylimidazolium Chloride holds a spot thanks to the properties its imidazolium cation brings to solvent systems, catalysis, and separation processes. What sets our product apart starts long before it leaves the drum; it begins in the lab and on the shop floor, where the difference comes down to the recipe and the discipline we apply to each batch.
Our process does not chase the lowest possible cost but rather keeps purity and reproducibility as non-negotiables. With ionic liquids like N-Hexylimidazolium Chloride, trace contaminants can shut down a synthetic scheme or poison a catalyst. Purity is never just a word in a specification for us; it’s a series of deliberate steps, from controlled temperature profiles during alkylation to multi-stage recrystallization and rigorous drying cycles. Each drum carries its batch record, tracking not only raw materials but reactor cleaning logs, anion exchange tests, and thermal stability results. For users running high-stakes catalysis, such as in pharmaceutical or specialty chemical settings, this consistency lets them plan with confidence that the performance last quarter matches what they’re buying today.
The fundamental chemical structure of our N-Hexylimidazolium Chloride remains rooted in the same C6-alkyl side chain and imidazole core every time. Our main model is produced in lots ranging from kilogram up to pilot plant scale. The product leaves our facility as a dry, off-white powder with moisture levels under 0.1%. Analytical verification drives every step: NMR, FT-IR, HPLC, and Karl Fischer titration give us both the big picture and fine resolution on chemistry, possible byproducts, and trace water. We know from years of customer feedback that users look straight at chloride content, water content, and the C6 linearity as the critical markers. In the end, we deliver those as assurances—not just numbers on a paper.
From where we stand on the manufacturing side, we see the journey of each drum—sometimes directly, sometimes only in feedback that comes months later. The most common application centers on N-Hexylimidazolium Chloride’s behavior as an ionic liquid. Customers often use it as a phase transfer catalyst. In nucleophilic substitutions, the hexyl tail keeps the salt in organic phases, enabling smoother reaction conditions with hard-to-dissolve substrates. It ends up in organic extraction schemes; for example, in separating heavy metals or rare earths from solution. In some labs, it finds its way into electrochemical cells as an electrolyte component, giving new options for conductivity tuning where purely inorganic salts fail.
We’ve also worked with teams in polymer chemistry who leverage its ionic nature for custom blends. They’ve reported improvements in compatibility and thermal stability that traditional quaternary ammonium or pyridinium salts couldn’t provide. Its use extends to analytical chemistry—helping to solubilize otherwise stubborn samples for NMR and other spectroscopic studies.
What surprises many newcomers is how tunable the compound is for research and scale-up. We’ve seen creative users employ N-Hexylimidazolium Chloride as a structure-directing agent in nano-porous materials synthesis, as well as in the formulation of antistatic coatings and lubricants. Each user drives the applications further, and, from our perspective, every phone call or email with feedback counts as R&D guidance for our next batch.
When buyers weigh N-Hexylimidazolium Chloride against other ionic liquids—such as N-Butyl, N-Octyl, N-Methyl, or N-Ethyl derivatives—the most obvious difference sits in the balance between hydrophilicity and lipophilicity. Our six-carbon model sits right in the sweet spot. Shorter chain imidazolium salts dissolve better in water but often lack the robust solubility in nonpolar media needed for organic synthesis. Longer chain homologues may compete in hydrophobicity, yet they tend to be more viscous. Our product pours easily at room temperature, and we’ve validated pour points, viscosity, and miscibility data from each batch.
Comparing to quaternary ammonium or phosphonium salts, N-Hexylimidazolium Chloride often delivers higher thermal stability and a lower tendency for decomposition under heat or strong bases. Our team has pushed thermal gravimetric analysis up to 230°C, and the material holds clear without decomposition tracks long before most ammonium salts start to break down. For applications sensitive to color or instability from minor degradation, this profile gives peace of mind.
Our regular customers in battery research, fuel cell development, and pharmaceutical synthesis echo a recurring theme: the chloride counterion grants more predictable reactivity than PF6- or BF4– based alternatives, with less worry about hydrolysis or byproduct formation. We’ve cross-compared the stability in air and moisture; even after prolonged bench exposure, the chloride salt remains free-flowing and uncontaminated.
Formulators who previously wrestled with hygroscopic or sticky alternatives often remark that our production keeps the powder dry and mobile. Stringent sealed packaging and in-line nitrogen blanketing come from years of feedback and QC measures. We developed our packaging workflow in response to those who lost time dealing with caked salts or off-spec powders, so what leaves our floor simply works.
Every conversation with users teaches us. One research partner flagged difficulty dissolving certain reactants with the standard grade, so we responded by developing a high-surface-area granule. This granulation involved months of work, tweaking the solvent removal during crystallization until we found a sweet spot between particle size, dust generation, and flow. The result: the same performance, but with improved processability in larger reactors and automation lines.
Several partners in the fine chemical and pharma sectors asked for a version meeting ICH impurity standards, especially for residual solvents and trace metals. We overhauled solvent purification steps, introducing a tighter filtration protocol and switching to certified low-metal glassware for post-synthesis handling. The result has been a marked drop in off-target NMR peaks and fewer reports of batch-to-batch variation, which matters greatly when a catalyst or additive enters a regulatory submission.
We do not see ourselves as just a supplier but as ongoing solution-finders. If a process line experiences an unexpected pressure drop during a run, we’ll scrutinize particle morphology and run sieve analyses to isolate the cause. Whether a team is after higher throughput, lower environmental impact, or better post-separation recovery, our team works side by side with theirs to hit the target.
Professionals in fine chemicals and electronics have told us about N-Hexylimidazolium Chloride’s role as a stabilizer for nanoparticles and dispersions. Each time someone finds a new application—say, in alkali recovery from industrial waste or as a component in ionic conductive membranes—their feedback loops directly to how we adjust production. The product’s ionic and amphiphilic structure opens multiple design windows that some conventional salts just can’t approach.
Custom ordering is not just a marketing point for us—it comes from years of small tweaks: tighter cutoffs on moisture, shorter turnaround between synthesis and filling, adjusted particle size distributions on request. Thanks to feedback from academic and commercial laboratories, we have learned where a typical bead fails, and adjusted our crystallization routines to give granules that disperse faster and dissolve without residue in solvents ranging from methanol to toluene.
Several inquiries from electrochemical researchers prompted us to deliver a batch with reduced chloride content. By employing silver/silver-chloride titration and pressure-filtered removal, we supplied a lot closer to an ionic defect than the market average, leading to new insights in membrane transport and selective ion exchange.
What the market sometimes misses in product announcements or distributor listings is the hands-on attention required to produce a reliable N-Hexylimidazolium Chloride. On our end, achieving reproducibility goes farther than just monitoring purity. Each synthesis comes with reaction exotherms and occasional quirks—say, a pump running slow, or a stirrer needing recalibration—that a spreadsheet never captures. Our chemists and operators recognize the look and feel of a batch that will pass all checks.
We do not outsource key stages. From alkylation to final crystallization, quality control remains in-house. With decades of combined experience, our team can spot the subtle shifts in viscosity or product hue that signal off-target synthesis. Our QC lines include not just modern spectrometers and titrators, but also experienced eyes—chemists who catch what machines sometimes miss.
For hazardous shipments, packaging is double-checked for seal integrity. Containers undergo nitrogen flushing, and secondary containment is tested against both physical and chemical leaks. A barcode tracks each package, so we pinpoint not just the batch but pour time and packing team. This attention removes the guesswork for our customers, who expect a product free of surprises.
Producing N-Hexylimidazolium Chloride is not always smooth sailing; every year brings new challenges. We’ve encountered unexpected shifts in raw material quality—such as higher water content in hexyl chloride or variable purity in imidazole supplies. We manage these setbacks by partnering directly with upstream ethylene and amine suppliers. Purchasing agents ask us why we refuse certain lots, and the real answer comes back to process reliability. Even a slight impurity that slips in can manifest later in precipitation during drying or off-odors that seasoned users pick up immediately.
Waste management remains a concern for any ionic liquid manufacturer. The chloride byproduct needs careful treatment and disposal under regulatory controls. We operate a closed-loop water washing system that captures and neutralizes chloride-rich effluent, allowing us to reclaim over 80% of process water. Solid waste is collected and tested for residual organics before off-site destruction, and each solvent type leaves a track in the batch records for full transparency.
Every step affects the next: if a reactor jacket fails, the next batch comes out yellow instead of white, requiring a full rework. That rework affects schedules downstream, so we’ve installed redundancy in our reactor controls. Even maintenance logs tie into product performance. This investment cuts downtime and reduces variation, speaking to the point that regulatory and customer needs drive upgrades, not marketing gloss.
Stringent traceability marks every aspect of our operation. Each batch of N-Hexylimidazolium Chloride carries a full production record, from reactor logbooks down to final product analysis certificates. Where import and transport regulations evolve, we adapt—not just by ticking boxes, but by designing processes to remain one step ahead of environmental and safety guidelines.
Trace metals, volatile organics, and photo-reactivity receive detailed screening not just at finished product stages but at each intermediate step. The reward is measurable: repeat shipments without the regulatory headaches that can plague buyers in high-compliance fields like pharmaceuticals and advanced materials.
From the operator scraping dried product from a glass tray to the supervisor signing final release, there’s an understanding that each detail counts—because one small misstep leads to costly rework for everyone down the line. Our SOPs, regularly reviewed by cross-functional teams, support both staff safety and material integrity.
Ingredient and process costs for N-Hexylimidazolium Chloride have shown volatility—raw material spikes and supply chain disruptions all impact bottom lines. We commit to sharing real-time feedback on market pricing and keeping our recurring customers aware of lead time shifts. Flexibility goes both ways; we know teams working on a deadline appreciate clear timelines and prompt answers. The fewer surprises, the better.
Unlike entities quoting from a catalog, we provide real-time insight into what each batch’s physical and chemical reality means for practical use. Pricing discussions do not hide behind minimum order quantities or teaser rates; we quote what it costs to make high-spec material, including the handwork and oversight each step requires. Several regulars return because rework, costly downtime, and off-spec batches from bargain products ended up costing them more than buying straight from the source.
Our technical staff stays available for troubleshooting, quick batch adjustments, and sample provision; we know that a direct chat about a failed solubility test or filtration clog solves more problems than a week waiting for a distributor’s chain of command. As a manufacturer, every question returns to us, so we learn where our product meets, misses, or exceeds expectations and use that knowledge to shape our next production run.
We see the scale-up journey unfold in an unvarnished way. New clients often start with a small packs ordered for feasibility studies. If the chemistry or process works out, they come back for pilot or full-scale drums. At every stage, the requirements change: granule size, surface area, color, and water content may demand tweaks. Delivering consistently, whether it’s a sample vial or a 100 kg drum, tests both our equipment and our attention to detail.
Our investment in staff training and process control—ranging from regular analytical method validation to hands-on operator training—carries visible results. Each new use case becomes a chance to demonstrate not only our material’s versatility but also our willingness to keep pace with lab and plant feedback. We rarely rely on outside contractors for core steps, preferring to control every stage ourselves for maximum reliability.
Not every experiment works—some trial runs and batch improvements have entailed weeks of investigation, days of downtime, and a few late-night troubleshooting sessions. At the end of it, the lesson remains the same: close attention to operator craft, reliable supplier relationships, and ongoing dialogue with end users make for better chemistry and business all around.
N-Hexylimidazolium Chloride production demands more than basic process chemistry. It’s an ongoing conversation—both with research partners developing tomorrow’s compounds and with industrial teams implementing new applications under changing regulatory and economic pressures. The value of our product derives from this conversation, where every challenge, complaint, or new idea ultimately shapes both our daily operations and our ongoing investment in quality and service.
We listen to market needs, readjust production as customer challenges evolve, and learn from every step on the factory floor. Our batch records, staff expertise, and real-world feedback create a feedback loop that helps us improve not just our own process but also the work of everyone using our N-Hexylimidazolium Chloride.