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1-(1-Hexyl)-Piperazine

    • Product Name 1-(1-Hexyl)-Piperazine
    • Alias 1-hexylpiperazine
    • Einecs 629-875-8
    • 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
    VTB
    Specifications

    HS Code

    832150

    Chemical Name 1-(1-Hexyl)-Piperazine
    Molecular Formula C10H22N2
    Molecular Weight 170.3 g/mol
    Cas Number 53126-69-3
    Appearance Colorless to pale yellow liquid
    Boiling Point 256-258 °C
    Density 0.882 g/mL at 25°C
    Refractive Index 1.456
    Solubility Miscible with water and organic solvents
    Purity Typically ≥98%
    Smiles CCCCCCN1CCNCC1
    Storage Conditions Store at room temperature, tightly closed
    Flash Point 110 °C
    Melting Point -18 °C
    Synonyms N-Hexylpiperazine

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

    Packing & Storage
    Packing The 1-(1-Hexyl)-Piperazine is packaged in a sealed 100g amber glass bottle with a tamper-evident screw cap and safety label.
    Shipping 1-(1-Hexyl)-Piperazine is shipped in sealed, chemical-resistant containers to prevent contamination and leakage. Packages comply with international regulations for chemical transport, including labeling and safety documentation. It is typically shipped by ground or air freight with temperature and hazard controls, ensuring safe and secure delivery to the destination.
    Storage **1-(1-Hexyl)-Piperazine** should be stored in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. Keep the container tightly closed when not in use. Protect from moisture and direct sunlight. Store at room temperature and follow all relevant chemical safety guidelines to prevent accidental exposure or degradation.
    Application of 1-(1-Hexyl)-Piperazine

    Applications of 1-(1-Hexyl)-Piperazine in Industrial Manufacturing

    1-(1-Hexyl)-Piperazine serves as a key intermediate and functional additive in multiple specialized chemical production chains. Our proprietary synthesis and quality control standards ensure maximum utility and traceability for global industrial clients. Below, we outline established downstream segments relying on this compound for their regulated manufacturing requirements.

    1. Active Pharmaceutical Ingredient (API) Intermediate Synthesis

    Pharmaceutical manufacturers use 1-(1-Hexyl)-piperazine as a building block for targeted API creation in antihypertensive and psychotropic medication lines. This material enters the process during late-stage heterocycle coupling, conferring desired pharmacokinetic properties. Production must comply with stringent international GMP standards for traceable intermediates and maintain control over impurity profiles through validated analytical methods. Adjusting addition levels can impact final yield and purity, and ratios depend on synthetic route and desired batch scale.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice Guidance for Active Pharmaceutical Ingredients
    • EU GMP Vol 4
    • US FDA 21 CFR Part 211
    • Pharmacopoeia references: USP, EP, JP (where monographs applicable to APIs involved)

    Typical usage ratio

    • 5–15 mol% per coupling partner in targeted heterocycle synthesis; ratio adjusted based on stoichiometry and yield optimization

    Downstream process integration

    • Introduced at N-alkylation or piperazine ring functionalization stage during API synthesis; monitored by HPLC for residual intermediate removal

    Final product types

    • Finished pharmaceutical actives (e.g., piperazine-derivative antihypertensives, antipsychotics, and antidepressants)

    2. Specialty Corrosion Inhibitor Formulation for Industrial Water Treatment

    Chemical formulators utilize this compound as a secondary amine component in corrosion inhibitor blends, protecting carbon steel or copper equipment in closed-loop water treatment systems. The hexyl group in the molecule enhances film-forming capacity and improves resistance characteristics in highly alkaline environments. Regulatory standards require product and effluent testing for new blends in contact with potable or process waters, and dosing depends on water chemistry and circulation volume.

    Industry compliance standards

    • ANSI/NSF Standard 60 for drinking water chemicals
    • ISO 9001 certified manufacturing for inhibitor blends
    • US EPA Environmental Technology Verification (water systems)

    Typical usage ratio

    • 0.2–1.0% w/w per 100 kg batch of total inhibitor blend; adjusted based on required film persistence and interaction with other amines

    Downstream process integration

    • Premixed into liquid corrosion inhibitor concentrate following neutralization and before final filtration; subsequent on-site dilution by end user

    Final product types

    • Industrial water treatment inhibitor packages for HVAC, district heating, closed loop chiller, and boiler feed protection

    3. Oil & Gas Enhanced Chemical Recovery Additive

    Operators in oilfield services deploy the compound as a surface-active agent in specialty surfactant flooding or scale inhibitor formulations for secondary/tertiary extraction phases. This application requires compliance with oilfield environmental and disposal regulations, ensuring no persistent toxicity or bioaccumulation risk. Chemical injection systems meter the additive in continuous or slug dosing modes, and usage rates vary with brine composition, crude quality, and target recovery profile.

    Industry compliance standards

    • OCNS (Offshore Chemical Notification Scheme) ranking for North Sea use
    • API Q1/Q2 (American Petroleum Institute) for process auditing
    • REACH registration (EU)

    Typical usage ratio

    • 0.5–5.0% by weight of total treatment fluid, adjusted following pilot screening on field-specific core samples

    Downstream process integration

    • Added into mix tank after hydration of polymer base for viscoelastic surfactant systems or blended with anti-scale concentrates ahead of pipeline injection

    Final product types

    • Chemical enhanced oil recovery (CEOR) formulations, anti-scale pipeline fluid, water injection treatment concentrates

    4. Polyurethane Catalyst Intermediate for Specialty Elastomers

    Polyurethane system developers utilize 1-(1-Hexyl)-piperazine derivatives as reactive intermediates for chain-extender or catalyst packages targeting microcellular elastomer applications in automotive and electronics vibration damping. Material integration occurs at the catalyst pre-blend step, and formulation must meet international automotive, toy, and consumer goods certification requirements. The addition ratio depends on desired curing profile and mechanical property targets, with QC verifying amine content and absence of free microimpurities post-reaction.

    Industry compliance standards

    • ISO 9001:2015 for formulation QC
    • EN 71-3:2019 for toy safety (migration of specific elements)
    • REACH Annex XVII compliance for restricted amines
    • OEM-specific automotive material standards (e.g., VW TL 52433)

    Typical usage ratio

    • 0.3–1.2 parts per 100 parts polyol (pphp) in pre-mix, tailored by elastomer reactivity and mold cycle time

    Downstream process integration

    • Introduced during catalyst pre-mixing step in PU component preparation; verified by GC for composition accuracy and downstream performance consistency

    Final product types

    • Microcellular polyurethane elastomer parts for NVH (noise, vibration, harshness) management, consumer electronics housings, high-resilience mats and gaskets

    5. Intermediate in Crop Protection Active Ingredient Synthesis

    Agrochemical producers rely on this compound for selective N-heterocycle functionalization steps in developing systemic fungicides and insecticide actives. Integration into the synthetic scheme must follow local environmental, worker safety, and registration guidelines, with attention to maximum residual levels permitted in the final crop protection agent. The precise molar incorporation is dictated by the scale and target selectivity of the active ingredient synthesis, and manufacturers test finished batches for byproduct and residue control.

    Industry compliance standards

    • FAO/WHO Technical Guidelines for The Registration of Pesticides
    • OECD Task Force on Biocides recommendations
    • ISO 17025 laboratory validation for residue analysis

    Typical usage ratio

    • 10–22 mol% relative to core scaffold, adjusted as per sequential coupling step efficiency and downstream purification requirements

    Downstream process integration

    • Applied at piperazine-derived scaffold assembly or terminal alkylation in multi-step crop protection active synthesis, monitored using LC-MS for structure confirmation

    Final product types

    • Agrochemical active substances (e.g., fungicides, insecticides) used in formulated seed treatments and foliar sprays
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    Certification & Compliance
    More Introduction

    1-(1-Hexyl)-Piperazine: From Experience in Manufacturing to Practical Application

    The Foundation of Our 1-(1-Hexyl)-Piperazine Production

    Every batch of 1-(1-Hexyl)-piperazine coming off our lines reflects stubborn attention to detail. Our technical teams track raw material origins and trace every step in synthesis, drying, and quality testing. Over years of production experience, we've shaped a process that consistently delivers stable, colorless, and high-purity material, minimizing side reactants that often lead to headaches in downstream use. We see little deviation in purity beyond accepted thresholds, because at this scale, even slight inconsistencies turn small lab frustrations into expensive plant problems. We optimize control points and analysis routines with the full process in mind—not just for our own yield, but to save those who depend on us from patching issues on their end.

    Specification and Model Choices: Driving Value with Real-world Insight

    Our most sought-after version is the crystalline solid variant, meeting the typical demands of pharmaceutical and materials science R&D teams. Years in the business have shown us that customers often push for higher purity, seeking above 99% GC assay for sensitive syntheses. We worked hard to cut down on residual water and secondary amines, since even trace impurities can ruin a purification column or shift a catalyst. Many output models now include customization for melting point or residual solvent levels, since someone developing a new intermediate will want to be certain their feedstock behaves as expected at scale.

    One customer, a synthetic chemist in Europe, switched suppliers after seeing fewer interruptions on their reactor because of the stability and absence of odd odors from our product. We felt a wave of satisfaction when their complaint rate dropped off. Investing in better purification and analytical feedback paid off—not just in reputation, but in the repeat business that keeps our line humming.

    Usage: How Buyers Apply 1-(1-Hexyl)-Piperazine

    The main pull for 1-(1-Hexyl)-piperazine comes from pharmaceutical and fine chemical producers. This molecule serves as a versatile building block for active pharmaceutical ingredients, especially in projects requiring piperazine rings with tailored alkyl chains for specific receptor binding. We see it used in lead compound modification, particularly where researchers want to introduce a six-carbon side chain for lipophilicity adjustment or metabolic stability. Its structure works well for introducing flexibility and altering compound distribution in the body. Some teams in polymer research use it to build blocks with controlled reactivity or as an intermediate for producing specialty anti-static agents. The reactivity of the nitrogen atoms, and the balance between hydrophobic and hydrophilic regions along the chain, create opportunities for molecular tweaking in applied projects.

    We encourage routine feedback from end users, since novel applications often emerge from the lab floor itself. One specialty coatings manufacturer shared test results where subtle pH buffering and secondary amine reactivity let them improve crosslinking in their formulation process. We documented this internally, then fine-tuned our drying cycles in future batches to meet their stricter requirements. Real-time data shaped by user reports speed our own innovation, creating a feedback loop between what ships out and what results in daily experiments worldwide.

    Standing Apart: Subtle but Important Differences in Practice

    Buying from a producer may seem a commodity transaction, but consistent quality in 1-(1-Hexyl)-piperazine comes from investment in every small process step. We know how much a trace by-product matters in modern chemical synthesis. Some competitors blend material from multiple sources or do not dedicate equipment to a single grade. Mixing sources or running poorly defined processes can lead to shadow peaks in product analysis, or recurring problems in scale-up reactions that never appear at bench scale. We devote specific reactors and purification lines to this product, which keeps cross-contamination and variation at bay. It saves real money and hassle down the line, as users get the same outcome every drum, every order.

    By keeping close tabs on chromatographic and spectrometric signatures, we catch drift early. Technicians reinforce tips like regular column cycling and nitrogen blanketing instead of relying on final batch testing to catch problems. This habit, repeated over thousands of runs, marks the gap between supplier and genuine manufacturer commitment. We have saved several clients from costly pilot failures after their in-house analytics found fewer unpredictable peaks after switching to our brand. That feedback drives our pride in what we do, convincing us that attention to detail translates to real results in users’ hands.

    Quality Control and Consistent Delivery: Factory Knowledge Makes the Difference

    Quality assurance never begins at the final drum. We track every batch from the earliest raw material receipt. Routine checks—moisture content, GC-MS purity, colorimetry—flag issues before anything leaves the plant. With 1-(1-Hexyl)-piperazine, the line between acceptable and off-spec comes down to a few tenths of a percent impurity in total amine content or solvent residue. Our chromatographic methods picked up a supplier drift years ago, leading to tighter specifications on our end and closer work with purification staff.

    Shipping also creates challenges that only someone shipping actual product learns. We run dedicated lines to avoid mixing residues, and train logistics staff to package the solid so it arrives without caking or absorbing moisture. Real world weather and handling conditions shape our packaging approach; no two shipments travel exactly the same, so we run stress tests ourselves, then share findings directly with frequent buyers. If a customer in Southeast Asia expects weeks in humid conditions, we make sure packaging meets the challenge.

    Environmental and Safety Considerations on Site

    Safe handling and responsible production anchor every new campaign of 1-(1-Hexyl)-piperazine. Over time, staff learn from past incidents and tighten every step—ventilation, handling procedures, and waste management—based on lived experience, not empty checklists. Staff input often highlights new routines, like lined drums for shipping or reinforced gloves for extended handling. Company-wide training refreshes after any near miss, and we share new safety data with customers once routines show benefit. Years ago, we cut down plant accidents simply by redesigning our solvent collection to catch spills at the source. Improvements stick when staff see results in daily practice.

    The broader environment stays top of mind. Solvent recovery units go through upgrades yearly, and staff compete over ideas to minimize waste streams. Monitoring emissions and updating filtration matter not just for local regulations but for neighbors and the wider industry reputation. Modern chemical plants work under the public eye, so transparency serves both corporate reputation and daily workflow. Continuous monitoring, routine environmental checks, and old-fashioned pride in a clean workspace build our team’s sense of purpose.

    End User Collaboration: Problem Solving Rooted in Practice

    Bringing a new batch online usually starts with specific customer queries. One pharmaceutical pilot line called us after an unexplained drop in yield with another source. By working through their process maps, and cross-referencing chromatograms from our last twelve batches, we spotted a volatile basic impurity overlooked by other suppliers. We matched analysis, adjusted an isolation phase, and shared the update from the bench. Problems rarely stop at the wall of one factory or one step in production; they run along the whole chain, so open communication makes progress possible. Having our own technical support ensures that answers rest on process records, not distant spec sheets.

    We’ve seen projects rise or stall on small points: drying parameters, salt content, or the nuanced behavior of the piperazine ring under specific catalysts. Our technical staff tackle these questions hands-on, running trial reactions, adjusting process water content, and sharing real data by phone and email. No one working with a novel synthetic intermediate wants a mystery in their next run. Real world plant experience, direct reporting, and mutual respect build the network that allows research and manufacturing to grow together.

    Supporting Innovation: Supplying to Evolving Applications

    Research never stands still. With 1-(1-Hexyl)-piperazine, we’ve followed shifts from classic small-molecule API synthesis into more novel roles, such as adjustable linkers for targeted drug delivery or building blocks for emerging conductive polymers. We’re asked about trace element screening, and our analysts regularly establish new limits when end users share evolving regulatory or industry standards. Adjusting production or analysis doesn’t just happen overnight; factory managers strategize how to keep quality intact without sending costs soaring. Collaboration with labs supplies feedback loops that keep us ahead of shifts long before they become industry standard.

    Sometimes, new analytical technologies flag impurities or variants that older QC methods missed, prompting shifts in our own methodology. These updates stem from our internal pursuit of perfection, but also from accountability to those counting on stability batch after batch. People in the lab or on the shop floor suggest new ways to streamline drying, improve color stability, or track changes in reactivity under storage. Direct connection to the daily grind keeps our operation honest and focused.

    Real Use Cases: What the End Market Reveals

    We track how downstream users rely on the properties of our 1-(1-Hexyl)-piperazine. Development chemists often highlight solubility changes or alkyl chain flexibility during scale-up. In applications where atomic-level reactivity matters, consistent purity proves non-negotiable. In recent years, we’ve noticed greater attention to trace elemental content and improved color stability; international buyers sometimes request tailored certificate of analysis formats to meet differing local regulations. Meeting these changing needs means modifying both process chemistry and documentation, often on a quick turnaround.

    A project in agricultural chemistry recently found our product’s predictable basicity ideal for forming stable complexes, improving their formulation’s shelf life. Other customers, working in electronics, highlighted the need for reproducible melting characteristics to control polymerization thresholds with tight tolerances. These insights shape how we prepare, analyze, and communicate every new production cycle.

    Challenges in Modern Production and Our Response

    Continuous production brings both technical hurdles and commercial pressure. Sourcing consistent, high-purity raw materials can lead to market crunch periods, pushing us to develop fallback supplier relationships years in advance. Process engineers maintain flexibility in purification lines, able to adjust for variations in upstream supply or regulatory changes in allowed solvents. Surprises in global transport—weather delays, supply bottlenecks—demand a problem-solving mindset from shipping to plant staff.

    Circumstances sometimes force us to rerun lots, implement tighter QA, or revalidate a storage approach. Instead of seeing rework as a setback, we treat each new challenge as a chance to build a better document trail, improve process robustness, and keep our reputation high with end users. Modern manufacturing never coasts on legacy; it evolves with every inspection, shipment, and customer report.

    Feedback and Continuous Improvement Shaped By Real-World Use

    Every suggestion or complaint from those using our 1-(1-Hexyl)-piperazine reaches the main office and floor staff. We take direct calls from production chemists, follow up on analytical questions, and look for patterns in reported issues to drive updates. Customer audits and joint process reviews close the loop on quality and practicality. Instead of reacting to mistakes, we spend downtime dissecting root causes, developing new production protocols, and circulating updates.

    It’s not just the big changes—swapping equipment or revising analysis plans—but the small details that build a record of reliability. Our open reporting culture, built over decades, makes everyone on staff accountable when new uses of the product prompt changes in production or documentation. Learning as we go, and staying humble about what we discover, lets us provide a product that serves practical science—not just fulfilling a data sheet, but enabling work that builds on precision, reliability, and respect for the field.

    The Meaning of Factory-Direct Supply

    Direct manufacturing—without intermediaries—means no ambiguity in process or quality. We answer for every drum shipped, because our relationship with buyers is personal. Logistics, analysis, packaging, and support all happen under one roof, making raw transparency possible. Technical service and after-sales support root themselves in production history and a culture of readiness for new challenges.

    Choosing a producer with full control over both chemistry and shipment lines delivers practical benefits to industry and research. We know from experience that every minor shift in method, every innovation in packaging, and every new analytical result helps keep both our plant and your projects running smoothly.

    Building Knowledge, One Molecule at a Time

    Producing 1-(1-Hexyl)-piperazine stands as a daily test in aligning chemistry, logistics, and support. By putting real world learning before abstract promises, our approach finds purpose in supporting those who turn our chemical into tomorrow’s products and research milestones. The standards we keep, the adaptability we show, and the pride rooted in practical achievement set us apart as true manufacturers, not just names on a shipping label.