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1-Cyclohexylpiperazine

    • Product Name 1-Cyclohexylpiperazine
    • Alias 1-CP
    • Einecs 212-195-9
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    502020

    Iupac Name 1-Cyclohexylpiperazine
    Molecular Formula C10H20N2
    Molar Mass 168.28 g/mol
    Cas Number 3318-23-8
    Appearance Colorless to pale yellow liquid
    Density 0.974 g/cm³
    Boiling Point 265-267 °C
    Melting Point -20 °C (approximate)
    Solubility In Water Moderately soluble
    Pubchem Cid 17325

    As an accredited 1-Cyclohexylpiperazine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 1-Cyclohexylpiperazine, 25g, is supplied in a sealed amber glass bottle with a tamper-evident cap and descriptive labeling.
    Shipping 1-Cyclohexylpiperazine is securely packaged in sealed, labeled containers compliant with all applicable regulations. It is shipped via certified couriers specializing in chemical transport, ensuring safe handling and timely delivery. Shipping includes relevant documentation such as Safety Data Sheets and customs declarations, with transit times varying based on destination and shipping method.
    Storage 1-Cyclohexylpiperazine should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizing agents. Protect it from heat, moisture, and direct sunlight. Ensure proper labeling and keep away from open flames or sources of ignition. Store at room temperature and follow all relevant safety protocols.
    Application of 1-Cyclohexylpiperazine

    Applications of 1-Cyclohexylpiperazine in Industrial Manufacturing

    As a direct manufacturer of 1-Cyclohexylpiperazine, we supply this intermediate to specialized sectors with tightly regulated quality and process standards. The following sections present real downstream industries where this compound integrates into established industrial and scientific workflows, detailing practical application specifics drawn from customer production and regulatory practice.

    1. Pharmaceutical Intermediate Synthesis (API Preparation)

    1-Cyclohexylpiperazine finds use in the pharmaceutical sector as a building block for the synthesis of certain active pharmaceutical ingredients, particularly within the class of piperazine-based therapeutics and research compounds. Our material enters at the intermediate stage in multi-step synthesis lines, designed for stringent reproducibility and batch-to-batch consistency under GMP controls.

    Industry compliance standards

    • ICH Q7: Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • EU GMP Part II: Basic Requirements for Materials Used in Pharmaceutical Production
    • 21 CFR 211 (US FDA) for finished pharmaceuticals
    • Customer-specified pharmacopoeia monographs or in-house analytical requirements

    Typical usage ratio

    • 0.2–1.0 molar equivalent relative to the target core structure per batch; specific ratio based on desired functionalization and yield optimization

    Downstream process integration

    • Introduced during the early coupling or ring-closure step, followed by further derivatization, purification, and isolation under solvent-controlled synthesis

    Final product types

    • Pharmaceutical research intermediates
    • Development-stage active compounds for CNS indications
    • Regulatory submission samples for toxicological and pre-clinical evaluation

    2. Specialty Polymer Modifier for Polyamide and Polyurethane Systems

    Some advanced polymer formulations incorporate 1-Cyclohexylpiperazine as a chain extender or end-capping agent to alter the molecular architecture of polyamides and polyurethanes. This use supports film flexibility, chemical resistance, and surface property modification in technical polymers for niche industrial end uses.

    Industry compliance standards

    • ISO 9001:2015 Quality Management in manufacturing processes
    • REACH (EC 1907/2006) Registration for chemical handling in the EU
    • ROHS 2011/65/EU: Restriction of Hazardous Substances (where applicable)
    • Specific automotive OEM or aviation polymer material specifications

    Typical usage ratio

    • 0.5–3.0 wt% based on total monomer input, optimized per target mechanical profile and regulatory allowance

    Downstream process integration

    • Charged directly into the polycondensation or polyaddition reactor after base monomer charging; participates in control of molecular weight and microstructure

    Final product types

    • High-durability polyamide films
    • Elastomeric polyurethane coatings
    • Technical molded parts for electronics or automotive assemblies
    • Surface-modified engineering plastics

    3. Organic Synthesis Intermediate in Agrochemical R&D

    R&D groups in agrochemical development utilize 1-Cyclohexylpiperazine as an intermediate for creating new piperazine-derivative scaffolds in the search for selective crop protection agents and regulated agricultural chemicals. Its structure allows for the introduction of tailored side chains under controlled laboratory-to-pilot scale workflows.

    Industry compliance standards

    • GLP (Good Laboratory Practice) OECD and regional guidelines for study integrity
    • ISO 17025: Testing and calibration norms for lab processes
    • REACH Registration and other local chemical notification requirements
    • Country-specific agrochemical R&D and import rules

    Typical usage ratio

    • 0.1–0.7 molar equivalents, selected based on molecular design of the target agent and synthetic efficiency

    Downstream process integration

    • Serves as a nucleophilic core in initial or mid-step alkylation/acylation and heterocyclization reactions for lead molecule generation

    Final product types

    • Experimental fungicide and insecticide candidates (not registered formulations)
    • Test batches for biological screening in controlled environments
    • Reference materials for analytical method development

    4. Corrosion Inhibitor Component in Metalworking Fluids

    Industrial lubricants, particularly those used in high-performance metalworking and cutting fluid operations, employ 1-Cyclohexylpiperazine in multi-component additive packages. It performs as a corrosion inhibitor, enhancing long-term stability in contact with ferrous and non-ferrous metals under harsh manufacturing conditions.

    Industry compliance standards

    • ASTM D4627: Evaluation of corrosion inhibitors in aqueous systems
    • ISO 9001:2015-process control for specialty lubricant blending
    • OSHA Hazard Communication Standard (29 CFR 1910.1200) for chemical safety labeling
    • Regional environmental release and discharge threshold regulations

    Typical usage ratio

    • 0.05–0.4% by weight of finished fluid; adjusted according to base oil type, alloy sensitivity, and long-duration test data

    Downstream process integration

    • Added at concentrate blending stage, dissolved or pre-solubilized into aqueous, semi-synthetic, or full-synthetic lubricating bases before packaging

    Final product types

    • Water-miscible cutting fluids
    • Machining lubricants for steel and aluminum components
    • Temporary metal rust preventives for storage and shipping

    5. Intermediate for Antifouling Coatings and Paints

    Industrial paint and coating manufacturers, particularly those producing antifouling coatings for marine applications, incorporate 1-Cyclohexylpiperazine as a chemical intermediate. It supports the synthesis of biocidal agents and crosslinkable species that reduce organism settlement and enhance underwater longevity of coated surfaces.

    Industry compliance standards

    • BPR (EU Biocidal Products Regulation) for treated articles
    • ISO 12944:2018 Protective paint systems for steel structures
    • U.S. EPA Registration for biocidal additive compliance
    • IMO Antifouling Systems Convention (AFS Convention) compliance for marine paints

    Typical usage ratio

    • 0.3–1.5 wt% of the total binder system, depending on desired rate of agent release and substrate coverage

    Downstream process integration

    • Employed during the in-situ synthesis or blending of coating additive packages, prior to dispersion in finished paint formulation

    Final product types

    • Marine antifouling coatings for ship hulls
    • Industrial infrastructure protective paints
    • Subsea structure coatings for pipeline and offshore platforms
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    Certification & Compliance
    More Introduction

    1-Cyclohexylpiperazine: Experience From the Production Floor

    Over the past decade, our teams have watched 1-Cyclohexylpiperazine work its way from research benches to regular use across chemical plants. Our technical staff handle this compound daily; the way it behaves during synthesis, storage, and shipment has become second nature to us. Because we operate the reactors, monitor purity, and control batches from raw starting material through to the finished piperazine derivative, we see more than just a data sheet or a price tag—we see how each characteristic actually plays out by the drum or the truckload.

    Understanding the Structure and Model: Why 1-Cyclohexylpiperazine Matters

    1-Cyclohexylpiperazine, with its cyclohexane ring linked to the nitrogen of a piperazine backbone, offers something a straight-chain piperazine doesn’t: bulk and flexibility at the same time. Technicians in the plant note that the presence of the cyclohexyl group affects not only physical texture but also the solubility profile during processing. Our standard product, produced at a technical grade that in-house chemists judge by both chemical purity and consistent chromatic signature, typically falls above 99% by GC after final polishing. Analytical teams test each lot using HPLC and NMR, techniques that remain standard in our lab for confirming identity and screening for residual materials.

    Unlike methyl, ethyl, or even phenyl analogs, the cyclohexyl ring on this piperazine provides a distinctive hydrophobic character. Lots from every reactor batch remain stable at room temperature for weeks, a feature that becomes apparent in real-world inventory management. Our operators point out that the compound has a higher melting point than simple piperazine, a trait rooted in the rigid ring structure. Powder or crystalline forms store reliably without agglomeration, even in humid conditions—a small but real help in day-to-day warehouse practice.

    Practical Application: How 1-Cyclohexylpiperazine Gets Used

    Chemists from pharmaceutical, agrochemical, and specialty sectors purchase 1-Cyclohexylpiperazine as a core building block. We started seeing regular demand from pharmaceutical development labs about eight years ago, where the cyclohexyl variant serves as a versatile intermediate. Its unique structure, acting as more than a linker, provides steric protection and electronic shielding during selective functionalization. In some synthetic routes, the extra bulk of the cyclohexyl group allows project chemists to control regioselectivity of downstream reactions. Our largest shipments head toward projects focused on CNS-active agents, as the ring structure modulates both uptake and metabolic stability.

    Custom manufacturers also order this piperazine for salt formation. We receive regular questions from partners developing active pharmaceutical ingredients on how our product behaves under salt-forming conditions; process chemists have found that cyclohexylpiperazine hydrochloride, for example, forms crystalline products suitable for direct tablet extrusion. We monitor these trends on the production side by periodically testing salt solubility, knowing full well that the way crystals grow from cyclohexylpiperazine salts differs from those formed by simpler analogs.

    On the agrochemical side, research clients select our 1-Cyclohexylpiperazine for its role as a synthon that can bridge polar and non-polar segments in new pesticide scaffolds. As a matter of routine, we keep liaison with synthetic teams at these partner companies, discussing by phone or email which solvents best dissolve our material or how much to expect in recovery based on current batch data. This everyday conversation shapes how we store, pack, and even grind the final lot before shipment. It’s not theory—it’s lived practice.

    Differences From Other Piperazines: Insights From the Production Chain

    We don’t just make 1-Cyclohexylpiperazine; our reactors also output a broad spectrum of substituted piperazines. We’ve learned through direct comparison where the cyclohexyl derivative stands apart, not from sales pitch, but from consistent plant-floor experience. It starts with upstream raw materials. Handling cyclohexylamine in synthesis demands strict control of reaction windows due to its higher boiling point and tendency to affect pressure even in closed vessels. The finished product separates cleanly from reaction mixtures thanks to its lower water solubility, making post-reaction workup smoother for plant operators. That single change in production translates to shorter cycle times and fewer purification steps downstream. Compare that with, say, 1-methylpiperazine, where water washes drag out trace impurities, a problem we’ve wrestled with batch after batch.

    Field reports from our customers, often shared by phone or site visit, highlight a surprising chemical resilience in the cyclohexyl product. Chemists observe less oxidation under standard storage—something we find on our own QC checks as well, since ambient warehouse conditions rarely compromise our typical lots. In contrast, piperazine rings carrying aryl groups tend toward slow discoloration, especially if seal on the drum fails for any reason. As people working hands-on with the material, those little differences matter; nobody wants to open a tote after three months in storage and find a batch gone yellow or damp.

    Another operational distinction relates to downstream reactivity. Cyclohexyl substitution raises the molecular weight, altering volatility compared to more volatile straight-chain analogs. Plant supervisors notice steadier evaporation rates and less fugitive loss, which not only cuts waste but also reduces air handling burdens—especially during warm summer production runs. By contrast, our technical teams report that highly volatile analogs often require batch reworking if ambient losses throw off the final assay.

    Reputation, Traceability, and Quality: Building Trust Batch by Batch

    It’s tempting to describe any specialty chemical in sterile technical language. From our end, the real measure comes from practical feedback from those who use and process our product throughout multi-stage syntheses. We take repeated calls from pilot chemists seeking larger trial quantities or reports on how a modification in upstream manufacturing affects the physical profile of the final intermediate. Few see how much time goes into continuous traceability: barcoded drums follow each batch from the production tank to despatch, QA logs track every analytic result, and process operators sign off at each stage. This isn’t a regulatory afterthought—it defines how we catch deviations before they cause headaches downstream.

    We run in-house studies on batch-to-batch consistency, a lesson driven home a half-decade ago after one deviation in melting point created costly rework for an end user. At our facility, line workers now test for water content, appearance, and chemical purity at several points, not just at dispatch. Safety-conscious chemists have also made us standardize our drum liners to avoid potential cross-contamination, a move driven by both regulatory guidance and direct plant experience.

    Because we control the raw materials, reaction conditions, and final packaging, long-term partners trust that the 1-Cyclohexylpiperazine arriving on site today matches both analytical specs and real-world handling characteristics sent last quarter—or last year. This consistency reduces troubleshooting, which is why business with technically demanding customers rarely drops off. Over time, that kind of trust grows batch numbers and volume, but more importantly, it reduces time-to-market for new downstream applications. Speed at scale comes from predictability in quality.

    Responsible Handling and Environmental Perspective

    On the production floor, safety realities shape everything from how we store cyclohexylamine through to final reactor cleaning. 1-Cyclohexylpiperazine doesn’t produce strong odors or generate hazardous volatiles under regular storage, so operators favor working with it over lighter amine analogs, which can require additional ventilation or extraction. The high flashpoint means plant supervisors rarely need to treat it with the same severity as the more flammable intermediates choking the typical batch reactor suite. All technical staff use gloves, goggles, and chemical-resistant clothing—no shortcuts there. Bulk storage stays in sealed drums or lined containers to prevent moisture pickup, and we schedule regular inspections of packaging as part of ongoing housekeeping. Any cleanup or site transfer depends on careful bag sealing to avoid dust loss, as our operators have learned.

    From an environmental angle, our wastewater management includes dedicated routes for amine derivatives, ensuring that plant discharge meets strict regulatory goals. Solvent recovery lines get priority, and we spin out cyclohexylpiperazine-rich fractions for redistillation on-site. This isn’t just a nod to compliance; it reflects real gains in yield and volume, letting us turn what would become waste into new feedstock. As a crew with decades of combined experience, our plant teams know that the less we send to the incinerator, the more resourceful the process—both financially and ecologically.

    Collaborating With Customers: Meeting Real Needs Beyond the Data Sheet

    Most purchase decisions don’t hinge on a product brochure. Customers in real labs ask tough questions about trace residuals, actual dust content, or how the powder flows through feeders—not just purity numbers. Our technical sales engineers regularly visit formulation plants and meet process chemists, listening to practical needs like whether our piperazine clogs metering pumps or how well it disperses in various solvents. We support those teams with quick batch samples, and sometimes even modify the milling process, to ensure a steady, free-flowing consistency.

    Word travels fast in the chemical industry. Good performance in early stage trials usually leads to larger, repeat orders. We learned, by working alongside contract synthesis firms, that reliability in delivery and predictable handling rank just as important as cost or technical scorecard. For several customers, our flexible lot sizes and willingness to adjust packaging schedules keep their production lines running through supply chain crunches. That kind of flexibility doesn’t show up in technical specs, yet it makes the difference in production-scale applications.

    Beyond routine supply, our R&D group maintains close dialogue with customers seeking to expand into new chemical spaces. They request more detailed impurity profiles, historical batch records, or specific crystal forms, especially for pharmaceutical applications. On occasion, they send us feedback from phase one or two pilot campaigns, offering real-world insight into how changes in processing parameters translate beyond the bench scale. This two-way communication becomes a practical tool for both parties—helping us adapt production, and helping customers accelerate their own development cycles.

    Practical Challenges and Solutions: Keeping Processes Straightforward

    No chemical manufacturing runs forever without issue. For 1-Cyclohexylpiperazine, we’ve encountered and solved the usual mix of practical bottlenecks. Moisture sensitivity sometimes causes slight caking if warehouse conditions shift, so a few years back we rolled out laminated liners and double-seal bags as the plant standard. A minor investment at our end eliminated downstream sieving for most bulk customers. For scale-up runs, controlling reaction heat release during cyclohexylamine addition required modifying reactor cooling, especially during summer. These tweaks grew out of day-to-day troubleshooting, logged directly by shift leaders and plant engineers—no one-size-fits-all fix existed, so the solution remains rooted in actual user feedback.

    We often field requests for different particle sizes or even custom blends. Our technical managers coordinate with milling and blending crew leaders, guiding the grind or blend by adjusting screen sizes, speed, and collection setup—right on the plant floor. Delivering a “tight spec” product reflects both equipment accuracy and learned operator skill, and neither works alone. Small batch trial runs give us a preview of downstream filtering performance; if the material binds during slurrying or forms overly dense cakes, we modify parameters and immediately re-test. Through that loop, process improvements come directly from the real-life needs of our customers and staff.

    Value Beyond the Molecule: Why Experience and Direct Production Matter

    For those who procure chemicals regularly, the difference between buying from a direct manufacturer and from a warehouse distributor shows up in speed, flexibility, and the depth of technical knowledge available. We don’t rely on old product spec sheets or abstracted certificates of analysis. What defines our offering is the experience we accumulate producing thousands of kilos, year in, year out, for clients with high stakes and little patience for missing shipments or unsolvable supply disruptions.

    Producing 1-Cyclohexylpiperazine at scale means understanding it far beyond basic physical and analytical descriptions. Every month, production, QA, and R&D meet to analyze cumulative feedback, covering problems, breakthroughs, and process stats. These meetings generate incremental change; a process step that cuts filter clogging, a tweak that lowers energy consumption, or a subtle shift in drying regimen. Each insight, large or small, ends up benefiting the next batch, the next customer, the next evolution in application.

    The advantage of dealing directly with a chemical manufacturer like us is about more than just fewer supply chain steps. End users tap into a unique source of technical, practical, and application insight that only comes from making and perfecting the product themselves. This experience, built on years of direct observation and real plant problem-solving, translates into practical reliability for both innovators developing new chemical pathways and those managing industrial-scale production of established products.

    How Our Production Focus Benefits Partnerships

    Throughout our years producing 1-Cyclohexylpiperazine, honest, on-the-ground feedback has been our best business tool. Process improvements—whether in improving batch purity or in packaging customization—spring from suggestions made by those who actually interface with the material at their own sites. Our role is to listen, adapt, and deliver not just chemicals, but actionable expertise. That approach supports everyone from small R&D teams building new molecules to major manufacturers scaling up synthesis lines for commercial output.

    We see repeat business not as a given, but as something earned through careful attention to every batch and by facing production realities directly. By working continually with raw materials, process conditions, operator know-how, and the honest input of those at the receiving end, our output remains reliable, trusted, and ready for new challenge. 1-Cyclohexylpiperazine will keep evolving in its uses and applications—and so will our approach to making it better.