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1-Benzyl-3-Piperidone Hydrochloride

    • Product Name 1-Benzyl-3-Piperidone Hydrochloride
    • Alias 1-Benzyl-3-ketopiperidine hydrochloride
    • Einecs 629-574-0
    • 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

    710424

    Product Name 1-Benzyl-3-Piperidone Hydrochloride
    Molecular Formula C12H15NO · HCl
    Molecular Weight 225.72 g/mol
    Cas Number 3554-74-3
    Appearance White to off-white crystalline powder
    Chemical Structure Benzyl group bonded to piperidone ring
    Purity Typically ≥98%
    Solubility Soluble in water and methanol
    Melting Point 180-185°C
    Storage Conditions Store at 2-8°C, protected from light and moisture

    As an accredited 1-Benzyl-3-Piperidone Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing White, sealed HDPE bottle containing 100 grams of 1-Benzyl-3-Piperidone Hydrochloride; labeled with chemical name, quantity, and safety warnings.
    Shipping 1-Benzyl-3-Piperidone Hydrochloride is shipped in secure, sealed packaging compliant with chemical transport regulations. The product is protected from moisture, light, and temperature extremes. All packages include appropriate labeling and documentation for safe handling and regulatory compliance. Transportation is typically via registered carriers with tracking and, where necessary, hazardous material handling procedures.
    Storage 1-Benzyl-3-piperidone hydrochloride should be stored in a tightly sealed container, protected from moisture and light. Keep it in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizers. Recommended storage temperature is typically room temperature (15–25°C). Ensure containers are clearly labeled, and access is restricted to trained personnel following proper chemical handling protocols.
    Application of 1-Benzyl-3-Piperidone Hydrochloride

    Applications of 1-Benzyl-3-Piperidone Hydrochloride in Industrial Manufacturing

    As the direct manufacturer of 1-Benzyl-3-piperidone hydrochloride, we support a number of highly specialized downstream sectors requiring precision raw material control. Below, we describe several critical industrial application tracks, including regulatory frameworks, practical formulation ratios, integration pathways, and representative end-use products handled by our international B2B customers.

    1. Active Pharmaceutical Ingredient (API) Intermediate Synthesis

    Major pharmaceutical companies rely on this intermediate during the production of structured piperidine derivatives found in CNS agents and select antipsychotics. Controlled introduction of this intermediate supports strict impurity profiles required in regulated environments. Its use frequently appears in multi-phase synthetic routes, especially for compounds where selective benzyl substitution or piperidone ring structure contributes to final biological activity and patent-defined APIs.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 211 and EU GMP Annex 8 for intermediates
    • Certificate of Analysis in line with USP, Ph. Eur. monograph references (where applicable)
    • Regulatory traceability documentation ISO 9001 and cGMP support files

    Typical usage ratio

    • Stoichiometric quantities between 0.85–1.15 molar equivalents depending on downstream synthetic sequence and process optimization for API yield.
    • Ratio adjustment based on purity of feedstock and step economies, documented in batch records.

    Downstream process integration

    • Material added at the initial or intermediate condensation/reductive amination stages.
    • Enters multi-step reactors under nitrogen/protected atmosphere for batch or semi-continuous flow.
    • QC sample points for in-process control and impurity tracking by HPLC/GC-MS.

    Final product types

    • Pharmaceutical bulk active ingredients (e.g., antipsychotic agents, CNS disorder treatments)
    • GMP-grade intermediates for further API extension
    • Specialty fine chemicals for proprietary medicinal chemistry pipelines

    2. Agrochemical Synthesis – Herbicide and Insecticide Intermediates

    Industrial-scale agrochemical production incorporates this compound as a key intermediate, especially for piperidine-based scaffolds required in several modern systemic herbicides and insect control molecules. Its consistent reactivity supports downstream conversion under high-throughput, closed-system preparations, ensuring final active ingredient reliability and adherence to crop protection regulations.

    Industry compliance standards

    • FAO/WHO specifications for technical active substances
    • ISO 9001:2015 for supplier management and batch traceability
    • REACH registration and CLP labeling requirements (for EU markets)
    • National agrochemical registration (examples: US EPA, Ministry of Agriculture China)

    Typical usage ratio

    • 0.95–1.10 molar equivalents relative to target ring system; adjusted by crop-specific target molecule synthesis process.
    • Continuous production environments require online adjustment linked to downstream conversion rates.

    Downstream process integration

    • Dosed into primary condensation or cyclization units as part of multistep synthesis.
    • Integrated with catalyst/reducing agent feeds under temperature- and pH-controlled conditions.
    • Sampled for residual impurity monitoring during each process phase using GC-MS.

    Final product types

    • Technical grade herbicides based on piperidine core
    • Insecticide intermediates for formulation into EC, SC, or WP products
    • Pre-formulated pesticide concentrates for post-synthesis blending

    3. Chemical Research and Development – Heterocyclic Compound Building Block

    Research facilities, CROs, and pilot plants utilize this compound as a pivotal building block for custom molecule synthesis, particularly when exploring novel heterocyclic compounds. High-purity grades facilitate integration into highly controlled multistep synthesis for structure-activity relationship (SAR) studies and compound library creation under stringent traceability and documentation practices.

    Industry compliance standards

    • ISO 17025 for analytical laboratories
    • OECD GLP for non-clinical safety studies
    • Material Statement of Purity and Impurity Profile (NMR, HPLC certificates appended)
    • Audit trail and supply chain transparency documentation for regulated research environments

    Typical usage ratio

    • 1.00–2.00 molar equivalents as required for lead optimization, combinatorial chemistry, or scale-up simulation.
    • Dosing determined by target compound demands and reaction campaign requirements.

    Downstream process integration

    • Fed directly into bench-top-scale batch reactors for library synthesis.
    • Handled in glovebox or inert atmosphere dependent on reactant sensitivity.
    • Frequent QC checks pre- and post-reaction for NMR/LCMS identity confirmation.

    Final product types

    • Patented heterocyclic scaffolds for IP filings
    • Specialty intermediates for medicinal chemistry
    • Reference standards for pharmaceutical and agroscience R&D pipelines

    4. Specialty Polymer Intermediate Manufacturing

    Chemical manufacturers deploy this compound during the precision synthesis of high-value specialty polymers, where the nitrogen-containing piperidone ring imparts defined structural and property advantages such as altered solubility, flexibility, or chemical resistance. Material purity and lot consistency drive downstream polymer architectural control, supporting customized properties for high-end electronics, coatings, and engineered material sectors.

    Industry compliance standards

    • ISO 9001 continual improvement and traceability systems
    • RoHS / REACH screening for polymer additive use (where applicable)
    • Customer-specific QMS integration for electronics applications
    • Quality conformance to detailed specs per final resin type (e.g., ASTM D638 for mechanical testing, D256 impact testing)

    Typical usage ratio

    • 5–25 wt% in targeted copolymer blends; precise percentage varies by desired chain termination or crosslink density in polymerization step.
    • Adjustment based upon end-use mechanical, thermal, or solubility criteria during small-batch engineering verification.

    Downstream process integration

    • Added to reaction vessel during pre-polymerization feed stage.
    • Participates in living polymerization, step-growth, or solution-phase copolymer synthesis under closed, temperature-regulated conditions.
    • Monitored in-line by GPC for molecular weight consistency and by FTIR for functional group analysis.

    Final product types

    • Performance polymer pellets and resins for electrical device housings
    • Custom copolymers for specialty adhesive production
    • Innovative composites used in advanced electronics and automotive engineering

    5. Fine Chemical Production – Flavor and Fragrance Precursors

    Fine chemical plants use benzyl-protected piperidone derivatives as intermediates for synthesizing certain aroma-bearing molecules. Controlled transformations, frequently involving subsequent deprotection and functionalization, yield structurally unique compounds for high-impact fragrances and flavoring agents. Purity, trace contaminant levels, and lot reproducibility remain critical concerns due to regulatory oversight and direct consumer product implications.

    Industry compliance standards

    • IFRA (International Fragrance Association) code of practice
    • ISO 22000 for food additive/fine chemical plants
    • GFSI (Global Food Safety Initiative) sector guidelines (if intended for flavor use)
    • Material Safety Data Sheets and qualified analytical reports for shipment and use

    Typical usage ratio

    • 0.5–3.0 wt% as a derivatization intermediate; level based on transformation yield and target aromatic strength.
    • Ratio modified according to reactivity with site-selective transformation reagents during batch processing.

    Downstream process integration

    • Introduced during key condensation or reduction steps in fine chemical reactors.
    • Processed under defined time-temperature reaction envelopes to secure desired precursor profile.
    • Fractionally distilled and dried prior to secondary functionalization or deprotection step.

    Final product types

    • Fragrance intermediates for luxury and specialty perfumes
    • Aroma compounds blended in flavor additives (non-direct food contact applications)
    • Fine chemical building blocks for specialty consumer good formulations
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    Certification & Compliance
    More Introduction

    Introducing 1-Benzyl-3-Piperidone Hydrochloride: Purpose-Built Precision from an Insider's View

    Understanding 1-Benzyl-3-Piperidone Hydrochloride—The Chemist’s Perspective

    Manufacturing chemicals calls for a blend of routine diligence and creative problem-solving. Every new specialty item needs another layer of attention to process control and quality. Over the years, we have refined the preparation of 1-Benzyl-3-Piperidone Hydrochloride to a point where reliability has become the guiding principle. This compound, with its white crystalline appearance, often serves as an essential building block across research labs and fine chemical manufacturers. It stakes its claim in the field on account of both its structural motifs and its ability to act as an intermediate in various transformations.

    The Model We Produce and How Its Properties Came About

    In our own operations, we have locked into a practical, reproducible model for 1-Benzyl-3-Piperidone Hydrochloride. Production runs under tightly controlled conditions, typically yielding a hydrochloride salt with high purity above 98%. Throughout the process, we take frequent samples to confirm the absence of residual benzyl chloride or possible rearrangement byproducts. Our operators monitor temperature, pH, and solvent levels with protocols written after years of plant-side adjustments.

    For the physical product, we’ve selected a particle size range that dissolves readily in most polar solvents commonly used in synthesis, which avoids bottlenecks at the downstream application stage. Packing options available depend on batch scheduling and client demand, but our team always ensures the material arrives contaminant-free.

    Why Manufacturers Focus on This Compound

    Bringing up new intermediates in a market driven by constant innovation is a daily challenge. We see research partners focus on 1-Benzyl-3-Piperidone Hydrochloride because of the structural flexibility the piperidone ring provides. In the lab, the benzyl group at position 1 serves as an anchor for substitution or deprotection reactions. This compound offers the right compromise between chemical reactivity and manageable handling.

    Over the years, we noticed that in the competitive world of synthetic chemistry, the small details that set a batch apart do not always show up on a product spec sheet. For example, crystallization from ethanol changes flowability, so we favor isopropanol steps where possible—an insight picked up during difficult scale-ups a decade ago. Our plant chemists have spent full nights tuning reaction charges to avoid oiling out during workup, a lesson theory seldom teaches in textbooks.

    Applications—Not Just Another Intermediate

    Where a compound gets stored in a warehouse says plenty about its place in the supply chain. 1-Benzyl-3-Piperidone Hydrochloride typically moves from production to packaging quickly, destined largely for fine chemical synthesis. Academic groups buy smaller lots for organic synthesis and medicinal chemistry, but contract developers pick up bulk for constructing more complex molecules—often in the central nervous system drug discovery pathway.

    On site, our customers employ 1-Benzyl-3-Piperidone Hydrochloride as a precursor to novel piperidine-based APIs, designer compounds, and to test catalytic reductions or alkylation patterns. In these workflows, reliability saves both time and money. The hydrochloride form, specifically, gives users a stable and easily weighed solid, which avoids the messier workups from free base analogs.

    During one tech transfer project, a partner traced a yield drop back to how their old supplier packed the product in porous sacks. With our practice of nitrogen flushing and double-seal bags, that issue never arose again. Chemical manufacturing is full of such stories—sometimes you need to hear directly from those making the material to appreciate where things go right or wrong.

    How It Stands Apart from Other Piperidone Derivatives

    The variety in substituted piperidones is vast. In our labs, we have made dozens of options, but returning customers frequently circle back to 1-Benzyl-3-Piperidone Hydrochloride for one simple reason: the benzyl moiety is easy to modify or swap under mild conditions. Many alternative piperidones, such as N-methyl or N-phenyl variants, lock in their substituent and require aggressive reagents for further conversions.

    During scale-up projects, ease of handling matters too. Early in our work with this compound, we noticed less dust formation during transfer—a feature not shared by more volatile analogs. In contrast, the base piperidone itself, without the benzyl group, absorbs atmospheric moisture rapidly and cakes within days in ordinary packaging. Our team keeps close tabs on lot stability, particularly during humid summer months.

    Comparisons to commercial 3-piperidone or 4-piperidone salts often come down to cost and reliability in secondary transformations. For example, in reductive amination steps, our hydrochloride salt dissolves more predictably, meaning researchers spend less on excess solvents and fewer resources on chasing down unreacted residues.

    Production Realities

    Our experience has taught us that clean, repeatable synthesis begins long before reagents enter a reactor. Plant schedules shift with demand, but every 1-Benzyl-3-Piperidone Hydrochloride batch follows the same core logic. We select benzyl chloride and 3-piperidone as starting materials after years of process safety trials and scale-up testing. During the key condensation stage, stirring time and acidity are monitored closely. There have been mornings where a miscalibrated pH meter told one story, and a careful technician corrected it by paying attention to color and odor changes—a manufacturer's know-how beats digital readouts in such moments.

    Filtration and drying present their own minor hurdles. If ambient humidity spikes, our rotary-vac operations recalibrate to avoid product softening. We rely on dry-room protocols, even for “stable” hydrochloride salts, passing every final lot through a moisture check. After filtering, we make sure not to overexpose the product to air for long periods to protect against hydrolysis or discoloration. Customers rarely think of these steps, but they make the difference between reliable batches and frustrating re-orders.

    Lessons from Scale-Up and Customer Feedback Loops

    The luxury of working in a full-spectrum manufacturing environment is that every challenge teaches. In one memorable case, a client flagged inconsistent melting points in several shipments. Our technical crew traced the issue to trace amounts of residual solvents left during vacuum workup—a fixable problem, but easy to overlook without full transparency. We overhauled the drying phase, extending cycle time, and now check every batch for trace residue, regardless of order size. Chemistry rewards attention to detail, especially when a single contaminated lot can sidetrack a research program for weeks.

    Technical support forms a large portion of our mission. Chemists in the field call us about reaction compatibility—questions about running reductive amination, hydrogenation, or N-debenzylation using our intermediate. Over time, these calls have fueled subtle changes: tweaks to filtration temperature, upgrades to monitoring equipment, and even revised shipment protocols in response to changing weather between our plant and the customer’s dock.

    Safety, Handling, and Compliance—Not Just Paperwork

    No chemical leaves our site without a web of safety protocols woven into its journey. 1-Benzyl-3-Piperidone Hydrochloride, like most specialty intermediates, demands PPE and proper ventilation during synthesis, handling, and repackaging. We keep MSDS records up-to-date and technicians receive regular refresher sessions tailored to recent industry findings. Over the years, we have adopted improved fume hood standards to reflect observations made during process audits; solvent escaping containment never stays a one-off event.

    Moving product internationally adds regulatory complexity. Documentation requirements have only increased, especially for compounds with applications in pharmaceutical research. Each exported lot contains traceable batch numbers and appendices describing its intended use—experience teaches that customs officials and regulatory bodies ask for backup whenever guidelines shift. Over-documenting beats risking a shipment held in port.

    Most safety refinements in our plant arose from direct incident reports. Years back, a near-miss with a mislabeled container prompted a change in how we barcode and segregate every intermediate. Since then, dual-signoff systems cut down on manual errors, and ongoing hazard simulations keep staff skills fresh.

    Why Purity and Documentation Shape Our Approach

    Many customers admit that, with certain intermediates, they expect a routine level of inconsistency—compound arriving a little off-color or slow to dissolve being par for the course. We took this as motivation to refine analytical protocols, setting up redundant checks for both the main product and known impurities. In-house, our team runs every batch through HPLC, NMR, and FTIR analysis. Not every out-of-spec sample is a crisis, but documenting the cause, from excessive heat exposure in transit to cross-contamination, gives us points of leverage for continual improvement.

    Our technical records do not just sit in filing cabinets; they drive adjustments downstream. In several cases, batch deviations pointed us to reagent supply issues or needed upgrades to vacuum control systems. This kind of responsiveness only comes from hands-on involvement. We do not chase perfect numbers for their own sake, but because keeping batches within tight parameters saves customers trouble—especially those optimizing advanced syntheses where small impurity shifts can throw off entire projects.

    Packaging and Logistics—The Final Stretch

    Getting 1-Benzyl-3-Piperidone Hydrochloride from plant to customer covers the last mile where small mishaps can undo months of careful work. Our crew has learned to ship in double-bagged, inert-atmosphere pouches inside rigid drums for both bulk and small-lot orders. On hot days, shipments travel with data loggers to record temperature and humidity—if a shipment lingers on a loading dock in midsummer, we want data to back up claims of quality on arrival.

    Order customization, including standardized lot sizes or split shipments, helps customers minimize time spent dividing material for different research groups or pilot plant stages. In practice, our logistics team works directly with planners on the receiving end, ironing out timelines, arranging staggered deliveries, and, if needed, holding lots in climate-controlled storage until the customer’s workflow lines up with production. These small acts of partnership tend to multiply organically when a manufacturer maintains regular direct relationships with end users.

    Feedback from the Field—Challenges and Improvements

    We keep communication channels wide open for feedback. Many process improvements began as offhand remarks from bench chemists or plant managers on the user side. For instance, packaging upgrades stemmed from a customer who noticed dusty residue and requested an antistatic liner—a tweak that cut both product loss and lab cleanup time. In another instance, solvent compatibility questions led to a minor change in drying conditions, avoiding stickiness in hot climates.

    Customer insights drive much of our post-market support. Some researchers use 1-Benzyl-3-Piperidone Hydrochloride in ring closure or alkylation steps not covered in public literature, so unusual product properties quickly surface. These open exchanges help us tune the synthesis, QA checks, and documentation—adding data points and sometimes repairing supply chains before issues scale.

    Troubleshooting support from the manufacturing end often shortens downtime in academic and commercial labs. When a batch fails to behave as expected, a direct phone call can carry more insight in five minutes than weeks spent searching technical forums. Over the years, consistent supply and responsive support have built relationships that outlast shifting project trends and evolving technologies.

    Sustainability and Responsible Manufacturing

    Bringing real change to chemical manufacturing does not happen overnight, but we follow environmental targets set by both industry standards and internal policy. Waste minimization starts inside our plant; solvents used in purification, for example, are scrubbed, recycled, and reused wherever possible. Our process engineers review every waste stream annually and adjust as better technology emerges.

    Material safety and health are as crucial as environmental impact. We invest in regular training and new PPE solutions, and schedule regular upgrades to local exhaust systems. Our technical staff tracks every byproduct and ensures hazardous waste leaves our plant through certified handlers only.

    Reactivity, safety, product loss, and cost come together in every chemical we make, but 1-Benzyl-3-Piperidone Hydrochloride stands as a good case study for how incremental plant improvements support both the customer and the broader community. Our efforts toward better yields and cleaner product flow into reduced downstream contamination, less rework, and ultimately a safer workplace for both our staff and end users.

    Looking Forward—What We Still Hope to Achieve

    Every new production campaign brings its own set of unknowns. In preparing each new lot of 1-Benzyl-3-Piperidone Hydrochloride, there remains room to optimize. We plan to keep refining both batch cycle times and energy use. Ongoing investment in analytical equipment supports more sensitive detection of trace impurities, and our quality team continues to expand the bank of reference spectra. By listening to end users and working alongside supply chain partners, we aim to enable even more predictable application in both research and industrial settings.

    With a strong foundation of technical expertise and production experience, our team approaches the coming years with the goal of doubling both flexibility and reliability. Whether adjusting for evolving regulatory landscapes or adopting more sustainable chemistry, we keep innovation rooted in hands-on understanding. Stories shared from the factory floor, user labs, and shipping docks all find their way back to our process improvements.

    We look forward to supporting researchers and manufacturers who see 1-Benzyl-3-Piperidone Hydrochloride not only as a chemical intermediate, but as a product shaped by collaboration and a focus on real-world needs. Each order reflects the cumulative efforts of every plant technician, process engineer, and support staffer who works to raise the bar for specialty chemical supply. The result is a product, made by manufacturers, for those who value quality delivered with a personal touch and technical insight.