Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

1-(2-Phenoxyethyl)-Piperazine

    • Product Name 1-(2-Phenoxyethyl)-Piperazine
    • Alias O-Phenylhydroxyethylpiperazine
    • Einecs 617-530-7
    • 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

    283157

    Chemical Name 1-(2-Phenoxyethyl)-Piperazine
    Molecular Formula C12H18N2O
    Molecular Weight 206.29 g/mol
    Cas Number 3406-23-9
    Appearance Colorless to pale yellow liquid
    Boiling Point 329.8 °C at 760 mmHg
    Density 1.07 g/cm3
    Melting Point -
    Solubility In Water Slightly soluble
    Synonyms 2-Phenoxyethylpiperazine
    Purity Typically ≥98%
    Flash Point 152.1 °C
    Refractive Index 1.556
    Storage Conditions Cool, dry place, tightly closed container
    Smiles N1CCN(CC1)CCOC2=CC=CC=C2

    As an accredited 1-(2-Phenoxyethyl)-Piperazine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing White, opaque HDPE bottle labeled "1-(2-Phenoxyethyl)-Piperazine, 100g." Features hazard symbols, batch number, lot code, and safety instructions.
    Shipping 1-(2-Phenoxyethyl)-Piperazine is shipped in secure, airtight containers to prevent contamination and degradation. Packaging complies with chemical safety regulations, including appropriate hazard labeling. The product is transported via ground or air, adhering to international guidelines for chemical handling. Shipping documents include safety data sheets and handling instructions for the consignee.
    Storage Store 1-(2-Phenoxyethyl)-piperazine in a tightly sealed container, protected from light, moisture, and incompatible materials such as strong oxidizing agents. Keep in a cool, dry, well-ventilated area away from heat sources and direct sunlight. Ensure proper labeling, and restrict access to trained personnel. Use secondary containment to prevent leaks or spills, and observe all relevant chemical hygiene protocols.
    Application of 1-(2-Phenoxyethyl)-Piperazine

    Applications of 1-(2-Phenoxyethyl)-Piperazine in Industrial Manufacturing

    1-(2-Phenoxyethyl)-Piperazine serves as an essential intermediate for specialty synthesis across chemical and pharmaceutical manufacturing. As a direct producer, we supply this compound for validated downstream scenarios across regulated industrial sectors, supporting sophisticated batch protocols and formulated end-products for global B2B clients.

    1. Pharmaceutical Active Pharmaceutical Ingredient (API) Synthesis

    Major pharmaceutical manufacturers use this compound in the synthesis of select piperazine-based APIs, where the phenoxyethyl moiety provides a critical building block in antihypertensive, antipsychotic, or antidepressant drug skeletons. We supply consistent grade raw material specified for integration within GMP-monitored, multi-step organic synthesis. Technical teams at API plants dissolve it in anhydrous solvents under controlled temperature for nucleophilic substitution and subsequent coupling reactions, followed by chromatographic purification. Batch records document addition rates and residual solvent levels to ensure strict pharmacopoeial compliance.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP (United States Pharmacopeia) Monographs (for related final APIs)
    • EDQM CEP guidelines (Certification of Suitability to the Monographs of the European Pharmacopoeia)

    Typical usage ratio

    • Used at stoichiometric or slight molar excess ratios (1.0~1.3 equivalents) depending on downstream API target and process yields

    Downstream process integration

    • Added during initial step of piperazine ring functionalization or as a coupling partner before final product crystallization and purification

    Final product types

    • Antidepressant APIs
    • Antihypertensive APIs (i.e., piperazine-substituted drug molecules)
    • CNS-acting intermediate compounds

    2. Agrochemical Intermediate Manufacture

    Producers of high-value crop protection products employ this compound as a core intermediate for the synthesis of select herbicides and fungicides where phenoxy-structural motifs improve biological selectivity. Technical staff charge it into closed reactors under nitrogen, combine it with targeted halogenated aromatics, and control alkylation via catalyst selection. In-process controls manage residual solvent and trace impurity profiles to meet technical grade requirements for reproducible agrochemical yields.

    Industry compliance standards

    • GB 2763 Maximum Residue Limits for Pesticides in Food (China)
    • EU Regulation (EC) No 1107/2009 (Plant Protection Products)
    • EPA 40 CFR Part 180 (United States Regulation on Pesticide Tolerances)

    Typical usage ratio

    • Incorporated at a 0.8~1.1 molar equivalent, depending on functional group excess required for individual agrochemical synthesis

    Downstream process integration

    • Reacted in first or second synthetic step before ring-closing, chlorination, or sulfonation—dependent on target molecule architecture

    Final product types

    • Phenoxyalkyl herbicide intermediates
    • Systemic fungicidal precursors
    • Chlorinated crop protection agents

    3. Polymer Modification and Performance Materials

    Engineered plastics manufacturers integrate this compound as a monofunctional chain modifier or curing co-agent in high-performance epoxy and polyurethane resins. The addition during resin synthesis offers benefits such as increased flexibility and enhanced chemical resistance in finished components. Process engineers blend predetermined quantities with base polyol or resin under inert atmosphere during batch or continuous polymerization, timing the addition post-initial exotherm for optimal chain integration and reaction performance analytics.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems for Resin Manufacturing
    • REACH EC No 1907/2006 Registration (Europe)
    • RoHS Directive 2011/65/EU substance safety for electronics applications

    Typical usage ratio

    • Incorporated at 0.5-2.5% by weight of total resin formulation, customized by degree of modification and end-use property targets

    Downstream process integration

    • Charged during the resin prepolymer or curing agent admixture stage, before final polymer chain extension, molding, or extrusion

    Final product types

    • Impact-modified epoxy coatings
    • Polyurethane elastomer components for automotive and industrial applications
    • Electronics encapsulation materials

    4. Specialty Surfactant and Emulsifier Precursors

    Manufacturers producing non-ionic surfactants leverage 1-(2-Phenoxyethyl)-Piperazine for the synthesis of custom hydrophilic-lipophilic balance (HLB) emulsifier molecules, especially for metalworking fluids and specialty lubricants. Production chemists react the piperazine core with alkylating agents, adjusting alkyl chain lengths and aromatic substitution to tailor properties such as foam control and dispersion capability. Analytical QA teams verify batch identity by HPLC and titration, confirming compliance with predictive HLB system requirements.

    Industry compliance standards

    • OECD Guidelines for Testing of Chemicals (for surfactant biodegradability)
    • ISO 14001 Environmental Management (related to surfactants in process streams)
    • FDA 21 CFR 178.3400 (Lubricant Additive Regulations for Incidental Food Contact Lubricants, US)

    Typical usage ratio

    • Introduced at 1.0~8.0% of the total surfactant blend, determined by target emulsion stability and fluid compatibility requirements

    Downstream process integration

    • Fed into the synthetic surfactant blend at the alkylation or oxyalkylation stage, prior to batch neutralization and blending into final concentrate

    Final product types

    • Specialty metalworking fluid emulsifiers
    • Lubricant package surfactant blends
    • Custom HLB surfactants for high-performance emulsions
    Free Quote

    Competitive 1-(2-Phenoxyethyl)-Piperazine prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    1-(2-Phenoxyethyl)-Piperazine: Experience from Years in the Lab and Plant

    Building Trust with Consistent Chemistry

    Manufacturing 1-(2-Phenoxyethyl)-piperazine isn’t a simple exercise in following a textbook reaction. The quality of this compound can vary widely depending on the consistency of feedstocks, rigor in purification, and attention to detail in every batch. In our facility, we run a tightly controlled process—from raw material selection through reaction monitoring and downstream purification—because users in pharma, specialty chemicals, and advanced materials cannot afford surprises. Even cosmetic or minor impurities can skew pharmacokinetics research or introduce off-target effects in downstream synthesis. We keep our process robust by maintaining full traceability from each drum of phenoxyethanol and each batch of piperazine. Data logging and regular GC/HPLC analysis let us catch any deviation before a tank is drained or a reactor is cleaned. The result: consistency not just on paper, but batch after batch, year after year.

    Specifications that Solve Real Problems

    1-(2-Phenoxyethyl)-piperazine (molecular formula: C12H18N2O) often arrives at a research bench with high expectations. With a wide boiling range and moderate viscosity, this compound sometimes proves tricky in forming solid intermediates or when fine-tuning reaction temperatures. Each specification our lab delivers is rooted in years of hearing from actual users dealing with blocked glassware or unexpected side reactions. We target an assay above 98% and keep residual solvents below 0.5%. Water content stays under 0.2% because a simple trace of moisture can trigger unwanted byproducts in further syntheses. Appearance matters too—a faint yellow haze or the wrong odor can signal degraded material, so our QC releases only product that stays colorless or, at most, exhibits a very slight tint. This attention to sensory details is not cosmetic; one customer reported that a single drum of yellowed product—unnoticed by a third-party vendor elsewhere—set back their R&D program by months.

    Usage Anchored in Field Feedback

    Over the last decade, demand for 1-(2-Phenoxyethyl)-piperazine has grown with the broadening of medicinal and fine-chemical research. Research teams often use this compound as a scaffold when building libraries of CNS-active compounds or optimizing kinase inhibitors. In custom synthesis, piperazine’s nitrogen atoms serve as versatile handles for further elaboration, making the molecule a frequent starting point for API development. Polymer scientists look to the phenoxyethyl group for introducing flexibility or polarity into new materials. Our chemists have worked closely with users who stress-test the product in microwave reactors and automated parallel synthesis systems. These demands led us to optimize the crystalline form and to streamline our packaging lines for both kilogram-scale and twenty-liter drums. We also realized the value of creating documentation that anticipates scale-up hurdles—not just off-the-shelf COAs but detailed declarations on trace impurities, peroxide content, and handling hints we gleaned from our own pilot-line trials.

    What Sets Ours Apart? The Details Speak for Themselves

    As direct manufacturers, we see both the chemistry and the journey from raw materials to final application. Unlike brokers who chase prices and handle white-label shipments, we focus on eliminating batch-to-batch drift and reducing bottlenecks in downstream users’ syntheses. Our process uses controlled-temperature alkylation to suppress side-chain scrambling and ring over-alkylation. Any trace of mono- or di-substituted byproducts is kept well below 1%. During every run, we log all parameters and retain split samples for later review, giving researchers actual data to refer back to if there’s ever a question years after supply. Investing in this level of scrutiny costs more in the short term, but customers no longer chase ghost impurities or battle inconsistent yields. Over time, trust builds—everyone in the lab knows what they’re getting, and troubleshooting synthetic hiccups no longer starts by questioning the starting materials.

    Comparing to Generic or Outsourced Alternatives

    From customer feedback and our own side-by-side analyses, differences between our 1-(2-Phenoxyethyl)-piperazine and traders’ bulk lots can seem subtle but stack up quickly. We’ve tested samples passed through long supply chains, and it isn’t rare to find a blend of off-spec material to hit a quoted purity, or solvent residues from shortcuts in drying. Research leads have shown us chromatograms full of ghost peaks when using these lots—some of those mystery impurities eat up weeks of troubleshooting and force repeated purification steps. Our product maintains shelf stability through proper moisture-barrier packaging; after a year in ambient warehouse storage, purity loss remains minimal, and the material still passes stringent NMR and GC-MS checks. Researchers running automated synthesis robots report our product needs fewer troubleshooting cycles, saving both time and reagents. When a product comes directly from a plant focused on tight process control, surprises shrink and project timelines stay on track.

    Real-World Applications: Collaborating with Customers

    Beyond just listing end-uses, we see how scientists and engineers integrate 1-(2-Phenoxyethyl)-piperazine into their daily work. Medchem groups have used our product to unlock SAR studies for serotonin receptor modulators, while agricultural teams have incorporated it into novel fungicide tests. Polymer labs experimenting with new adhesives or functional coatings appreciate its stability across cycles of heating and cooling, which isn’t always guaranteed by lower-grade material. In one collaboration, a pharmaceutical pilot plant flagged a trace amine impurity that eluded detection at ppm levels; by looping in our internal analytics and adjusting distillation settings, we resolved the issue for future campaigns. Each year, we field more requests for custom documentation—sometimes for regulatory submissions, other times to certify material for use in devices or higher-risk biologics. Rather than sending pre-filled forms, we coordinate directly with customers’ QA teams, providing not just numbers but the analytical chromatograms and spectra behind every shipment.

    Safe Handling: Insights from the Production Floor

    Safety protocols aren’t just paperwork in our plant—they grow out of direct experience dealing with raw piperazines and the unique volatility of the phenoxyethyl side chain. Teams wear full PPE and carefully ventilate even minor spills because the compound’s volatility can produce strong odors and irritation if left unchecked. Storage in sealed, inert-lined containers prevents peroxide formation and blocks oxidation. Operators also check that containers stay upright and away from sunlight—years back, an improperly capped vessel developed a high-pressure burst that nearly caused a major spill. The lesson stuck; now, every drum features pressure-rated caps, and we provide full labeling on not just hazards but effective first-response steps for both small and large containers. We stress these details because a careless moment on the factory floor or at a customer site can cascade into costly clean-ups or, worse, injuries.

    Sustainable Manufacturing Approaches

    Across our operations, we track raw material efficiency and emissions. Early on, we noticed many piperazine syntheses dumped excess phenoxyethanol and produced large solvent waste streams. By introducing a continuous feed system and recycling reactor solvents on site, annual waste volumes dropped by about 35%. What doesn’t leave the plant as purified product is either internally treated or recycled. We switched auxiliary equipment to more energy-efficient models after energy audits pegged HVAC and vacuum pumps as major power draws. On top of saving on energy bills, these changes give us a smaller carbon footprint than producers relying solely on batch processing. More customers demand life-cycle data for regulatory and corporate governance reports. Our records don’t just highlight compliance—they show the concrete improvements we make in resource use and environmental stewardship.

    Troubleshooting and Technical Support: Guided by Hands-On Know-How

    Getting a drum of 1-(2-Phenoxyethyl)-piperazine delivered on time is only part of our relationship with customers. Technical support doesn’t get delegated to a remote call center or buried in ticket systems. Our chemists who oversee production are the ones answering detailed queries, whether it’s a question about optimizing a catalyst or identifying contaminant peaks during a challenging isolation. We’ve helped customers troubleshoot low conversions, strange color changes, and persistent filter clogs by running parallel bench-scale tests on retained split samples. One team reported product streaking in their NMR spectra; after a few emails and phone calls, we were able to pinpoint the role of minor residual bases and resolved their purification process. This cycle of support leads not just to quick answers, but to true process optimization for chemists and engineers in the field.

    Improving Logistics in Response to Customer Needs

    Handling shipments of specialty chemicals often reveals supply chain weak spots—crumpled labels, delayed customs clearance, frozen drums, or even leaky seals after long ocean journeys. Over the years, tracking these pain points led us to invest in climate-controlled storage and regional supply hubs. Drums get loaded with double-seals and tamper-evident bands, and every pallet travels with GPS-logged transit and humidity sensors. Rather than relying on generic carriers, we work with freight teams trained to handle sensitive compounds. Every year, a handful of customers face unforeseen events—from port strikes to last-minute research surges. By keeping back-up stock and closely monitoring supply timing, we safeguard against extended downtime or sudden procurement crises. These logistics improvements didn’t appear overnight, but arose from listening directly to R&D teams and operations managers caught off guard by unexpected interruptions.

    Continuous Improvement: Learning from Every Batch and Every Customer

    Feedback loops make or break a specialty chemical operation. After each production campaign, our QC and process development teams review yield, impurity trends, and all deviations flagged by line operators. Some issues need new parameter windows; others lead to changes in blending, filtration, or even reaction timing. Tracking complaint patterns over the years highlights areas for investment—sometimes another layer of in-line analytics, sometimes an updated training procedure for shift techs. Customer audits become opportunities rather than hurdles; in fact, a recent site visit prompted upgrades to our acid-wash cycles and improved cleaning validation that benefits every future batch. Repeat customers often grow more specialized in their requirements too—so we expand our documentation and modify our SOPs to keep up with industry shifts. It’s an ongoing exchange that improves not just specifications, but the real-world results that our users depend on.

    Why Industry-Led Manufacturing Matters for Advanced Compounds

    Having boots in both the laboratory and the production hall puts us in a unique position to see where theory diverges from reality. Production-scale synthesis of 1-(2-Phenoxyethyl)-piperazine needs more than just access to raw chemicals and stirring tanks; it demands a culture that prizes documentation, rapid troubleshooting, and openness to plant-floor feedback. We’ve grown confident in supplying consistent material because we stay close to the technical details—not just as managers, but as chemists who understand the impact of a 0.3% impurity or a packaging flaw. Our experience shows that successful users of advanced piperazine derivatives don’t gamble on variable supplies; they build relationships with those who actually control the process. Precision in this segment of specialty chemistry isn’t just a marketing buzzword—it comes alive in every successful synthesis and every deadline hit without drama.

    Charting a Reliable Path Forward

    Year after year, customers come back for 1-(2-Phenoxyethyl)-piperazine not out of habit, but out of trust founded in hands-on results. As process routes and end-uses diversify, we keep responding with tighter process windows, thorough documentation, flexible logistics, and responsive support. Scaling up or down puts new demands on every link in the chain; our job is to stay ahead, flag risks early, and keep chemistry as transparent as possible. We pass down improvements learned in the field to each next batch, making the whole cycle smarter and more reliable. Whether supporting a long-running medicinal project or helping spec out a new materials study, every decision—from raw material to final seal on the shipping drum—stems from the belief that good chemistry starts and ends with the people who make it.