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HS Code |
226197 |
| Chemicalname | 2-(1-Cyclohexenyl)Ethylamine |
| Molecularformula | C8H15N |
| Molarmass | 125.21 g/mol |
| Casnumber | 3986-55-0 |
| Appearance | Colorless to pale yellow liquid |
| Density | 0.917 g/cm3 |
| Boilingpoint | 214-216 °C |
| Meltingpoint | -10 °C |
| Solubilityinwater | Slightly soluble |
| Refractiveindex | 1.497 |
| Purity | Typically ≥97% |
| Synonyms | 2-(1-cyclohexen-1-yl)ethan-1-amine |
| Flashpoint | 84 °C |
| Storagetemperature | Store at room temperature |
As an accredited 2-(1-Cyclohexenyl)Ethylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle, 100 grams; screw cap with tamper-evident seal, chemical label with hazard warnings, product name, and batch number. |
| Shipping | 2-(1-Cyclohexenyl)ethylamine should be shipped in secure, sealed containers, protected from moisture and extreme temperatures. Ensure compatibility with packaging materials. Clearly label containers with hazard information. Transport must comply with local, national, and international regulations governing amines and chemicals. Use secondary containment and provide necessary documentation for safe and legal shipping. |
| Storage | Store 2-(1-Cyclohexenyl)ethylamine in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible materials such as strong oxidizers and acids. Keep the container tightly closed and protected from direct sunlight. Use appropriate chemical-resistant containers and ensure proper labeling. Observe standard procedures for handling amines, including using gloves and eye protection to minimize exposure. |
Applications of 2-(1-Cyclohexenyl)Ethylamine in Industrial ManufacturingAs the original developer and manufacturer of 2-(1-Cyclohexenyl)Ethylamine, we support a range of industrial partners with proven supply for critical downstream sectors. Below we detail application-specific integration across select mature markets, addressing practical regulatory adherence, formulation approach, process inputs, and targeted end products. 1. Pharmaceutical Intermediate for Antihypertensive APIsLeading pharmaceutical manufacturers specify this cyclohexenyl ethylamine derivative as a key intermediate in the synthesis of select antihypertensive active pharmaceutical ingredients, specifically targeting multi-step reactions involving amination protocols. Quality oversight and traceability remain paramount, with strict adherence to global standards throughout the conversion of this raw material to drug-quality intermediates and ultimately to regulated APIs commercialized under various cardiovascular therapies. Industry compliance standards
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2. Synthesis of Agrochemical Active CompoundsAgricultural chemical formulators use 2-(1-Cyclohexenyl)Ethylamine as a building block for certain herbicide and fungicide actives where selective amine reactivity is required. Integration focuses on ring-amine functionality for crop protection chemistry, where adherence to agricultural safety and environmental regulations is rigorously tested, and finished actives undergo full field residue and toxicology evaluation prior to commercial sale by downstream clients. Industry compliance standards
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3. Polyurethane Catalyst ComponentPolyurethane foam and elastomer producers utilize the reactive amine group as a catalyst or ancillary curative in specialty polymer systems requiring controlled reactivity profiles. By introducing this material at precise points in the formulation, manufacturers drive consistent polymer chain formation and improve fine cellular structure in finished foams—subject to rigorous in-process analytical and environmental controls accredited by global quality organizations. Industry compliance standards
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4. Modifier for Industrial Rubber CompoundingSpecialty rubber and elastomer compounders integrate 2-(1-Cyclohexenyl)Ethylamine to enhance vulcanization kinetics and modify mechanical properties of high-performance rubber blends, especially in tires and industrial rollers. Downstream QC teams monitor process input, ensuring compounded batches comply with national material standards for automotive and heavy industry, including traceable documentation from raw material receipt to final curing steps. Industry compliance standards
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5. Fine Chemical Precursor for Fragrance IngredientsFragrance and aroma producers rely on the selectivity of this amine in cyclohexyl-based skeleton construction for subsequent transformation into specialty musk and floral note ingredients. Downstream sites verify batch purity and low residual content to meet global IFRA and regional quality codes, with clear traceability from raw material sourcing through to blending and packaging for perfumery or flavor use. Industry compliance standards
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Every day in a chemical plant brings a new perspective on specialty compounds like 2-(1-Cyclohexenyl)Ethylamine. Our team has managed every step from raw material selection to the last filtration, so we see more than just an inventory item. This chemical doesn’t come off the line by accident; it grows out of a direct process built for reliability and consistency in an industry that doesn’t forgive guesswork.
2-(1-Cyclohexenyl)Ethylamine doesn’t just quietly fill a niche. You see its significance in the steady requests from research laboratories, pharmaceutical developers, and fine chemical synthesis companies. On the factory floor, teams run the reactor with cyclohexenyl derivatives and control amination conditions with the same hands that test purity, because any off-spec batch creates real costs—both in time and customer trust.
Unlike bulk commodity chemicals, 2-(1-Cyclohexenyl)Ethylamine always starts with the question: what grade does the end-user actually need? Our standard batch, for instance, delivers a minimum purity of 98%, based on years of feedback where a margin lower triggered downstream headaches for our partners. Each run is monitored for moisture, acid value, and residual solvents because our own chemists hate reruns caused by invisible contaminants.
Granule size and coloration can vary from one series to the next, a reminder that even small processing tweaks—say, the heat profile on a specific reactor—find their way into what the customer sees in the drum. In practice, some clients ask for tighter specification windows for applications in custom synthesis, others use standard grade in fields like intermediate production for agricultural chemicals.
Our experience producing 2-(1-Cyclohexenyl)Ethylamine traces directly into R&D pipelines for next-generation compounds. On the medical side, seasoned process engineers find that this amine’s structure makes it a solid scaffold for producing new pharmaceutical intermediates, especially those moving past the bench-scale phase. The molecule’s balance of cycloaliphatic stability and accessible amine functionality helps downstream chemists attach other key groups, whether they're building antihypertensive candidates or developing CNS-active agents.
Across other sectors, the compound steps into fine chemical manufacturing. We get regular orders from companies making specialty coatings or flavor and fragrance intermediates. Here, they prize consistent reactivity, predictable melting point, and the absence of interfering side-products—details that get baked into process SOPs and which only show up once you’ve moved real tons, not lab-scale vials.
Our production process centers on a tightly engineered catalytic amination. Skilled technicians charge reactors with carefully sourced 1-cyclohexene, run pressure-controlled hydrogenation, and oversee a direct alkylation with ethylamine. There’s no way to shortcut sample analysis and fraction collection. The last time anyone downsized quality checks, half a batch wound up non-compliant for pharmaceutical use. We keep processes lean but never at the expense of finished batch reliability.
We also fine-tune drying and storage—all the way down to drum linings—because residual moisture and trace metals undercut downstream reactivity. Every step reflects the reality faced by practitioners: if the packaging lets in too much air, users get degradation; if drums pick up chloride residues, users see ghost peaks in GC. Paying attention to these factory-level details protects value for every stakeholder relying on a genuinely high-integrity input.
Buyers shopping outside the primary manufacturing route sometimes encounter off-batch product. Maybe it’s got elevated aldehyde content, or there’s an extra isomer sneaking past QC. We’ve traced these issues back to uncontrolled sources or inadequate process adjustments after a plant shutdown. It’s easy to gloss over these failures in a specification sheet, but the pain lands with people who depend on this compound for experiments, clinical trials, or high-value synthesis.
Our approach replaces ambiguity with process data: every outgoing lot ships with batch COAs supported by real-time process logs, not just a photo of a test result. We maintain short feedback circuits with several recurring clients—when a batch gives unexpected results, we launch full process investigations, often sharing findings with the user and folding improvements into our next run.
Too often, lists of amine derivatives blend together. Yet the difference between 2-(1-Cyclohexenyl)Ethylamine and basic alkylamines sits upstream of any promissory TDS. Unlike linear amines or aromatic analogues, cyclohexenyl-based structures often deliver intermediate reactivity—reducing volatility concerns, raising stability, and allowing more predictable reactivity for routes needing controlled nucleophilicity.
Take direct comparisons with n-butylamine or benzylamine: the cyclohexenyl backbone here supports more robust reaction conditions for processes making fused rings or bridging groups. Our R&D staff often field questions on this and advise on process tweaks such as base selection or solvent adjustments to get the most from the product’s cyclic backbone.
In contrast, basic aliphatic amines swing toward higher volatility and handling hazards. Benzyl-substituted amines can show excessive side-reactivity in multi-step synthesis. Over a decade’s output demonstrates that for high-selectivity transformations, customers regularly stick with the cyclohexenyl-ethyl format to save time on purification and hit target yields in scale-ups.
Any factory operation faces daily tension between meeting ever-tighter specs and managing running costs. We watch regulatory changes around solvent emissions and handling requirements much like a lab follows an HPLC baseline—small moves ripple through the supply chain. Shifts in feedstock prices or logistics can eat margins if you haven’t locked in reliable, vetted sources. Laboratories upstream sometimes try alternate routes, chasing a cheaper per-kg rate. Enthusiasm can run out quickly after a few failed scale-ups or inconsistent NMR profiles.
The right response lives in relentless attention to process discipline. We cross-train technicians so a new hire dozens of kilometers from the main site still executes the same reaction conditions, and we invest in analytical support to confirm compliance batch by batch. Plant shutdowns and re-starts—sometimes driven by local infrastructure changes—get handled using predefined restart protocols specifically developed from prior incident analyses. The knowledge embedded in these protocols means the same vessel runs clean product whether on the first kilo or the hundredth ton.
Real value in specialty chemicals arrives through open dialogue with customers. When a client hits a purity snag or sees batch-to-batch drift in their application, our process team sits down and walks through recent logs. Sometimes it’s a subtle process change, a worn reactor gasket, or even an unnoticed atmospheric shift on a humid day. By hosting customers on site, we close feedback loops that allow for adjustments not just in process but in packaging, timeline planning, and logistics support.
We learn as much from application feedback as from textbooks or journals. The insight that some end users experience yield swings during scale-up pushed us to revisit our catalyst charging procedures and drying steps. One research customer reported new peaks in gas chromatography after switching from drums to IBC totes. Our operations team ran side-by-side storage studies and found that shipping duration influenced trace impurity levels—a factory-level realization invisible in a typical trading office.
Responsible manufacturing runs deeper than paperwork compliance. We integrate plant-level control systems for effluent treatment because we know that properly contained byproducts keep both the neighborhood and the next batch safe. We run everyday visual inspections of tank lines and containment areas—a single lapse can trigger contamination that takes weeks to resolve and costs more than routine vigilance.
Our staff training covers not just handling and emergency steps, but also environmental responsibility. Waste minimization in the distillation area took shape after frontline operators flagged opportunities to recover more process solvent. By acting on these suggestions, annual solvent use dropped and fewer drums needed offsite treatment. These stories don’t make headlines, but they build a reputation that outlasts any single batch.
Clients often share frustration when they’ve gone through too many intermediaries. When the source of 2-(1-Cyclohexenyl)Ethylamine isn’t clearly defined, troubleshooting problems extends into weeks or months. Our customers get to hear from actual line engineers and see real data from the same instruments that drive our internal quality decisions.
We keep documentation clear—down to batch-specific spectral data, water content, and impurity profiles—because the more transparent we are, the easier it is for clients to plan their own downstream processes. This kind of direct line means that if a new regulatory requirement arises or a customer needs a process tweak, nobody is left guessing whether the supplier can actually deliver.
Making specialty chemicals involves a constant cycle of monitoring, learning, and adjusting. Small process data—such as the effect of feed pump speeds on batch color, or the role of nitrogen overlays during storage—has led to changes in how we operate that directly improve product quality and reliability. Even the loading technique when charging the reactor’s amination stage plays a role in impurity formation; we keep daily logs so that repeat mistakes get caught before they escape as off-batch product.
Customer returns on questionable lots usually come with composition printouts and application background, giving us a chance to test new process controls in real time instead of relying only on theoretical models. We approach each report as a signal for process development, not merely a corrective chore. The result has been a consistently improving product that reflects years of applied experience rather than static, templated routines.
The chemical landscape doesn’t stand still. New synthetic targets, emerging fields in drug discovery, and more demanding environmental guidelines all shape what the next generation of 2-(1-Cyclohexenyl)Ethylamine production will look like. Instead of resting on legacy routines, we’ve invested in R&D partnerships and continuous training for the production crew—right down to equipment upgrades and enhanced process monitoring.
Demand for more eco-friendly processes and tighter impurity control continues to grow. We’re piloting recovery units for spent catalysts and assessing bio-based raw materials, not just for the headline benefits but to keep our business resilient against raw material supply shocks. The push toward greener chemistry also opens the door to more energy-efficient synthesis routes that could both serve the environment and reduce unit costs.
Working on the plant floor, you learn quickly that chemicals like 2-(1-Cyclohexenyl)Ethylamine reward operational discipline and punish shortcuts. Success comes from a mix of standard operating procedures, pride in craft, and respect for the compound’s quirks. We set up redundant purity monitoring and ask our quality control team to cross-check results; missing a suspicious IR band or underestimating a faint odor often foreshadows issues for the next customer.
Sharing these operational insights with partners boosts confidence. Some clients call directly during their own troubleshooting, seeking an unvarnished opinion about the process. These conversations often extend to advice on handling, safety, and disposal—practical support that a catalog listing never provides.
Spin a sample vial of 2-(1-Cyclohexenyl)Ethylamine under GC, and you learn quickly that every process step leaves its signature. From unexpected over-reduction byproducts to differences in amine content traced back to ammonia quench efficiency, real quality shows up in purity data, side-product profiles, and how the material feels and smells when poured from the drum.
Most laboratories won’t see the subtle effects of drum linings, storage temperature, or even fill times unless they’ve hit production snags. Our process engineers constantly check for early warning signals, from shifts in batch color to the strange presence of a trace oxide peak in IR. The people making the product day in and day out know that quality isn’t static—it’s the sum of hundreds of choices made well before the finished drum leaves the plant.
Some projects need more than the typical purity standard. When a client approaches us to develop a slightly different isomer ratio or purity cut, we analyze their method goals and lab feedback. Adjustments at the reactor level—such as time, temperature, catalyst dosage—become real opportunities to co-develop innovations. Client feedback prompted us to develop tighter moisture specs for a subset of pharmaceutical buyers, and in response, we redesigned our post-reaction drying and nitrogen-purged packaging system.
Building custom approaches relies on clear communication and a willingness to experiment safely within validated limits. We work alongside research teams during method development phases so new specifications reflect not just possibility but real, plant-level practicality.
Resilient, transparent sourcing grows out of hard-won relationships. End-users gain the most when they connect with the production reality behind their chemicals. Here, 2-(1-Cyclohexenyl)Ethylamine represents not just a chemical entity, but the final shape of process improvements, quality discipline, and a culture of technical engagement. Each drum we ship ties back to real work, feedback loops from the field, and the expertise of people who know every step from reactor charge to lab report.
By opening our process to scrutiny and inviting input across the technology spectrum, we stay aligned with our customers’ evolving needs. Over time, this approach doesn’t just make for smoother supply; it anchors a partnership that bears out in new product launches, speedier troubleshooting, and new opportunities for both sides of the business. We know that the next solution may come from a customer’s question or a frontline worker’s suggestion—and that’s how we keep pushing forward with 2-(1-Cyclohexenyl)Ethylamine and every product that follows.