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4-Benzoylpiperidine Hydrochloride

    • Product Name 4-Benzoylpiperidine Hydrochloride
    • Alias 4-BP HCl
    • Einecs 629-735-5
    • 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

    785478

    Productname 4-Benzoylpiperidine Hydrochloride
    Casnumber 5741-23-1
    Molecularformula C12H16ClNO
    Molecularweight 225.72 g/mol
    Appearance White to off-white solid
    Meltingpoint 180-185°C
    Solubility Soluble in water
    Storagetemperature Store at 2-8°C
    Purity Typically ≥98%
    Synonyms 1-(4-Piperidinyl)ethanone hydrochloride
    Inchikey SCASHFPPXFCRAG-UHFFFAOYSA-N
    Smiles C1CNCCC1C(=O)C.Cl

    As an accredited 4-Benzoylpiperidine Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 25g 4-Benzoylpiperidine Hydrochloride is sealed in an amber glass bottle with a tamper-evident cap and labeled for laboratory use.
    Shipping 4-Benzoylpiperidine Hydrochloride is shipped in tightly sealed, chemical-resistant containers to prevent moisture absorption and contamination. Packages are securely padded and labeled according to international transport regulations for hazardous chemicals. Shipping is typically done via ground or air courier, following all applicable safety guidelines and documentation requirements for laboratory reagents.
    Storage 4-Benzoylpiperidine Hydrochloride should be stored in a tightly sealed container, protected from light and moisture. Keep it in a cool, dry, and well-ventilated area, ideally at room temperature (20–25°C). Avoid exposure to incompatible substances such as strong oxidizing agents. Ensure proper labeling and follow any specific safety guidelines outlined in the material safety data sheet (MSDS).
    Application of 4-Benzoylpiperidine Hydrochloride

    Applications of 4-Benzoylpiperidine Hydrochloride in Industrial Manufacturing

    4-Benzoylpiperidine Hydrochloride serves as a critical intermediate in specialized chemical synthesis across fine chemistry, pharmaceutical, agrochemical, polymer, and material science sectors. As a manufacturer, we support downstream producers with consistent quality tailored for integrated scale-up and quality-controlled operations.

    1. Active Pharmaceutical Ingredient (API) Synthesis

    This intermediate enters multistep synthetic workflows for production of designated piperidine-based APIs. Typical engagements include antipsychotic, analgesic, and central nervous system drug classes, where it enables precise modification of core structures and yields high-purity downstream compounds in compliance-tested batch settings. Critical attention is paid to trace impurity profiles, storage conditions, and documentation, supporting robust process validation and market release within regulated environments.

    Industry compliance standards

    • Current Good Manufacturing Practice (cGMP, ICH Q7)
    • US Pharmacopeia (USP) / European Pharmacopoeia (EP) monographs for intermediates
    • FDA 21 CFR 210 & 211
    • ICH Q3A/B Residuals & Impurities Requirements

    Typical usage ratio

    • Batch-level incorporation at 1–10 mol% relative to target API backbone
    • Precise equivalent addition per validated synthetic route design

    Downstream process integration

    • Stepwise nucleophilic substitution or acylation reactions in pilot or commercial reaction trains
    • Integrated continuous flow or batch reactor operations under validated process conditions
    • Purification and isolation via crystallization, extraction, or preparative HPLC downstream of coupling step

    Final product types

    • Prescription medicines (antipsychotics, CNS modulators, analgesics)
    • Research-grade pharmaceutical reference standards
    • Experimental phase molecules for clinical trials

    2. Agrochemical Intermediate Manufacturing

    This compound serves as a specialty building block in agrochemical formulation, particularly for constructing piperidine core pesticides and herbicide molecules. Downstream processes leverage its reactivity during the assembly of key active agents, demanding stability under large-scale continuous conditions and documentation per regulatory review for field use safety.

    Industry compliance standards

    • FAO/WHO specifications for pesticide formulation
    • OECD Good Laboratory Practice (GLP)
    • REACH Regulation (EC) No 1907/2006
    • ISO 9001 Quality Management Systems

    Typical usage ratio

    • Load input of 5–15 mol% based on product formulation weight
    • Final percentage determined by target active content and yield after synthesis

    Downstream process integration

    • Addition in early-stage core-ring synthesis of pesticide candidates
    • Subsequent functionalization (chlorination, nitration or alkylation) under controlled process
    • Followed by downstream blending with carriers and formulation additives

    Final product types

    • Piperidine-based herbicides and insecticides
    • Active technical grade pesticide concentrates
    • Field-ready crop protection formulations

    3. Fine Chemical Research and Custom Synthesis

    Advanced fine chemical laboratories and contract manufacturing organizations utilize this hydrochloride salt as a versatile scaffold for custom molecule generation, often in inquiry-driven projects. During medicinal chemistry campaigns, it inserts rigidity or functional group anchoring into lead compound libraries, addressing needs in probe development, structure-activity research, and intellectual property creation for specialty customers. Documentation supports traceability for audit and bespoke project traceability.

    Industry compliance standards

    • ISO 17025 Laboratory Accreditation
    • GLP and quality documentation for contract research
    • Custom client-specific quality agreements
    • Material Safety Data Sheet (MSDS) compliance

    Typical usage ratio

    • Milligram to kilogram scale, project-dependent
    • 1–5 molar equivalents per step, adjusted for route complexity

    Downstream process integration

    • Early or late-stage feedstock in ring-construction and functional replacement reactions
    • Supports parallel synthesis, lead optimization, and analogue expansion phases
    • Reacted in both solution and solid-phase organic synthesis

    Final product types

    • Novel organic compounds for screening
    • Intermediates for structure-activity relationship (SAR) studies
    • Confidential client-target molecules

    4. Performance Polymer and Polyamide Synthesis

    Chemical engineers leverage this piperidine compound in the construction of high-performance polyamide and specialty polymer chains requiring rigid nitrogen-containing moieties. Applications include resins and films demanding chemical resistance, mechanical strength, and tailored thermal properties. Integration mandates tight control over chain length and end-groups to ensure final properties in commercial materials manufacturing.

    Industry compliance standards

    • ISO 9001:2015 for production quality assurance
    • FDA 21 CFR 177 for food contact polymer materials (where applicable)
    • RoHS Directive for restricted substances
    • ASTM D638 for plastic tensile testing

    Typical usage ratio

    • Feeds in at 2–7% by weight relative to total monomer batch
    • Final incorporation determined by chain propogation and desired mechanical outcomes

    Downstream process integration

    • Polycondensation or co-polymerization stage feedstock
    • Incorporated prior to molding, extrusion, or casting processes
    • Followed by thermal and chemical curing steps

    Final product types

    • Specialty engineering plastics
    • High-performance polyamide fibers
    • Protective industrial films and molded components

    5. Advanced Material Science Applications

    Material science teams employ this hydrochloride for constructing novel organic electronic, sensor, or coating materials. Its piperidine framework participates in the assembly of molecules for OLED moieties, conductive polymers, or as functionalization vectors for nanomaterials. Process integrity, high lot-to-lot purity and comprehensive documentation underpin successful downstream processing in this application channel.

    Industry compliance standards

    • ISO 13485:2016 for materials used in medical device R&D (where relevant)
    • ISO 9001 process documentation
    • Internal R&D qualification protocols for advanced electronic and sensor materials
    • REACH registration for new material introduction in the EU

    Typical usage ratio

    • Usually 1–3% of polymer matrix mass, modifiable by target device performance
    • Precise equivalents set in product-specific formulation protocols

    Downstream process integration

    • Incorporation during pre-polymer synthesis or doping phase
    • Direct functionalization of sensor, membrane, or active surface substrates
    • Use in small-molecule organic electronics assembly via solution or vapor-deposition techniques

    Final product types

    • OLED emissive and conductive layers
    • Organic sensors and smart coatings
    • Specialty films and membranes for device integration
    Free Quote

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    Certification & Compliance
    More Introduction

    Introducing 4-Benzoylpiperidine Hydrochloride: A Reflection from the Production Floor

    Our Hands-on Experience with 4-Benzoylpiperidine Hydrochloride

    On the production floor, engineers and chemists work side by side to bring compounds from rough sketches on a whiteboard to crystalline form in glass containers. Many compounds challenge patience and precision, but 4-Benzoylpiperidine Hydrochloride stands out as a product that demands an intimate understanding of both organic chemistry and what downstream labs actually need. Our time in the plant, the tests we run, and the direct feedback from R&D teams sharpened both our process and appreciation for this versatile intermediate. This is a product built for research labs looking for consistency batch after batch, but it didn’t arrive by chance.

    Why Chemists Value 4-Benzoylpiperidine Hydrochloride

    In every kilo we synthesize, we invest more than just a recipe—there’s a constant dialogue between production reality and chemical promise. Research teams count on reliable intermediates, and over the years, 4-Benzoylpiperidine Hydrochloride’s performance in medicinal development, small molecule synthesis, and structure-activity relationship studies earned our own respect. The compound’s robust piperidine backbone, combined with the benzoyl moiety, enables transformation paths that few similar molecules allow. From our own perspective in synthesis, a reproducible route ensures that this product meets not only specifications but also the nuanced demands of researchers working on exploratory drug candidates or advanced intermediates.

    Model and Specifications Shaped by Real Process Constraints

    Our standard offering, referred to internally as 4-BPIP·HCl, typically enters the hands of customers as a fine crystalline powder. Color and purity are two areas where feedback from the synthesis line influenced the final product. Early runs taught us that even subtle changes in temperature profile during crystallization shift both particle size and the appearance, sometimes resulting in slightly greyish batches that the market rejected. So, we refined the precipitation, washing cycles, and filtration—not only meeting a high assay for purity, but achieving a consistency that led analytical chemists to recognize our material for its low residual solvents and minimal organic impurities. We prefer to keep the final lot close to 99% purity (as measured by HPLC), and manage chloride content tightly within ranges that match reagent expectations for subsequent coupling or amide formation steps.

    Direct Handling at Scale Brings Unique Lessons

    As a team that works hands-on, our understanding comes from observation and repeated runs. Despite similar molecules existing on paper, 4-Benzoylpiperidine Hydrochloride has nuances in its handling that are most evident at scale. We observe its high solubility in polar solvents—which turns out to be a double-edged sword during crystallization. The hydrochloride salt’s stability simplifies storage, but its hygroscopicity means extra vigilance for moisture during packing. Each time we switch from small pilot batches to drum-scale production, we catch differences invisible in the lab. Those lessons shape not just the quality but the logistic practices—tightly sealed bags, lined drums, and real-time monitoring, not just paperwork.

    How 4-Benzoylpiperidine Hydrochloride Fits into Current Research Trends

    As more pharmaceutical projects target complex nitrogen-based heterocycles, research coordinators reach for intermediates that expand synthesis routes rather than limit them. 4-Benzoylpiperidine Hydrochloride opens access to new chemical space by providing a stable centerpiece for coupling with aryl halides, carbonyl compounds, or protecting group handles. In daily practice, chemists trust it as a building block for morpholine bioisosteres, beta-lactams, and emerging CNS scaffolds. Our role, we find, is not just as manufacturers but as technical partners—helping chemists take their next step faster by making sure their intermediate won’t slow them down with unpredictable impurities or unforeseen reactivity due to overlooked process variables.

    Comparing Our Product to Other Piperidine-based Salts

    Plenty of companies offer piperidine derivatives, and some traders move bags of technical grade intermediates that claim to serve the same purpose. What we observe is that generic offerings often lack the attention to trace impurity profiles that can haunt later synthesis steps. For instance, similar hydrochloride salts often carry over isomeric byproducts, residual starting materials, or fluctuating moisture contents, which complicate scale-up or even basic NMR interpretation. Our engineers take extra time in post-synthesis purifications and monitor each lot throughout the process, reducing persistent organic trace elements below commonly seen thresholds in the market. A trained eye can see, and analytical instruments confirm, the difference between a batch prepared by direct precipitation and one subjected to an extra recrystallization cycle and thorough solvent strip.

    Our Motivation for Maintaining Quality Over Quantity

    Our team is often asked why we don’t chase maximum throughput by cutting cycle times or skipping final quality checks. Years of troubleshooting downstream reactivity issues taught us that saving a few hours up front leads to days lost when a small peak in the HPLC turns out to be an interfering impurity at a later stage. The cost of redoing a late-stage coupling, or reworking chromatography columns, far outweighs any gain from faster batch turnover. We maintain in-process controls starting at the raw material stage—every drum of piperidine entering our plant is tested twice, not just for basic purity but for trace aldehyde and amine content, since these can fuel side reactions that only show up in active pharmaceutical ingredient development. Those steps slow us down compared to mass producers, but we built a reputation with R&D teams who experienced the long-term value.

    Exploring Uses Through Real-World Feedback

    Direct feedback from researchers and process chemists keeps us honest about the impact of our work. 4-Benzoylpiperidine Hydrochloride is valued in pathways aiming for aryl piperidine cores, and particularly in CNS active molecules. Customers using it in structure-activity studies shared how small batch inconsistencies—from even 0.05% differences in impurity—can stall whole projects. That knowledge pushed us to trace sources of variability back to early synthetic stages, not just as an intellectual exercise, but because the real-world consequences return in requests for urgent replacements, complaints, or praise for batch consistency.

    Why Specifications Matter Beyond a PDF Sheet

    There’s often more to quality than a clean analytical report. Over the years, analytical profiles occasionally matched a competitor’s on paper, yet our material led to higher actual yield and cleaner reactions for clients. We studied these differences, finding that rarely measured micro-impurities—like minor amines or over-oxidized intermediates—play major roles in downstream results. Our specification sheets reflect the practical side of development. For instance, we don’t just measure for chloride or residual solvents, but also screen for unusual color bodies and trace byproducts that standard methods tend to ignore.

    Key Differences from Other Piperidine Hydrochlorides in Practice

    From a manufacturing point of view, closely related compounds can behave in unexpectedly different ways. In 4-Benzoylpiperidine Hydrochloride, the positioning of the benzoyl group on the piperidine ring makes it less reactive than unsubstituted piperidines or N-benzyl analogs, offering a safer window for multi-step procedures. Some customers tried N-benzylpiperidine hydrochloride variants but ran into unpredictable ring opening or unwanted deprotection steps. Our product shows increased chemical stability, fewer side reactions, and a longer shelf life under proper storage—a major practical difference appreciated by larger scale-up teams.

    Sourcing Strategies Influenced by Production Experience

    A frequent question from both established pharmaceutical plants and academic labs is whether to source bulk material or smaller, highly characterized research lots. Our advice, born from both success and hard-learned mistakes, leans towards small, fully characterized lots for earlier-stage research and larger, regular batches once a project starts to scale. Early experiences with inconsistent third-party suppliers convinced us that oversight at every step—right down to the labeling and repacking line—keeps surprises out of the shipping drum and off a bench where time and budget are most precious. No system is foolproof, but an experienced team, good communication, and real accountability at each batch checkpoint minimize costly surprises later.

    Building Trust Through Transparency and Repeatability

    Colleagues from research and development teams know the value of transparent data and predictable results. Trust doesn’t come from fancy brochures or claims. It comes from timely shipments that match previous lots in color, solubility, and NMR fingerprint. If a deviation or unexpected result arises, our technical team responds directly, providing recent batch data and, if needed, a fresh analytical workup. When our regular partners order a ton of 4-Benzoylpiperidine Hydrochloride, they know what to expect not just from the chemical, but from the team standing behind every batch. Problems don’t need cover-ups—they need explanation, documentation, and a fair solution for everyone involved.

    Regulatory and Safety Considerations Directly from the Plant

    Years of regulatory reviews and on-site audits taught us that compliance isn’t about chasing paper trails—it’s about understanding where the real risks lurk. 4-Benzoylpiperidine Hydrochloride is shipped under close supervision because improper storage can affect its physical form and reactivity. We label each drum clearly, providing batch-specific CoAs with details beyond the basics, and invest in staff training so accidental exposure or mix-ups in handling are rare. Our approach is proactive: maintain tight loss-in-weight controls during drying, monitor possible volatile byproducts, and run safety drills for spills with the actual materials, not just water. That direct engagement shapes a culture in the plant—people watch out for each other and speak up when anything looks off, because the real world cuts through paperwork every time.

    Opportunities and Challenges in Scale-Up

    Lab-scale success often masks pitfalls at the hundred-kilo level. Our transition from pilot batches to routine large-scale manufacturing for 4-Benzoylpiperidine Hydrochloride revealed the unpredictable nature of certain exotherms and the importance of mixing speed for complete precipitation. Every time a new customer asks about increasing their annual demand, we revisit raw material logistics, batch timing, and waste stream management, because single-point failure at scale risks safety, consistency, or the schedule for multiple customers. Few products have taught us more about the link between well-maintained equipment, vigilant supervision, and the difference between a 97% and a 99% pure material.

    What Sets Us Apart: The Human Element in Manufacturing

    Assembly lines and reactors run day and night, but the real measure of our work comes from the dedication and skill of the chemists, operators, and quality analysts behind each lot. 4-Benzoylpiperidine Hydrochloride isn’t just one more intermediate on a spreadsheet; it embodies lessons from over-gassed batches, late-night troubleshooting, and the satisfaction of delivering a challenging order on time. Everyone taking part in this process sees firsthand how the details matter—how a five-minute change in the kettle can shift the outcome, and how carefully handled materials make a better product. Phones ring with customer feedback, good or bad, and each call reaffirms the need to stick to quality, ingenuity, and open communication.

    Supporting Innovation by Providing Reliable Intermediates

    Chemistry labs across the world depend on intermediates like 4-Benzoylpiperidine Hydrochloride to push boundaries. New CNS drugs, advanced analgesics, and hybrid peptidomimetics rely on trusted supply of the building blocks that support creative innovations in medicinal chemistry. Our years manufacturing this product showed that every new request—whether for a modified particle size, alternative solvent pack, or detailed impurity breakdown—teaches us a little more about where the needs of innovators meet the limits of what’s practical to achieve in real-world chemical manufacturing. The dialogue goes both ways; researchers share their hurdles, and we work to provide solutions through changes in process or formulation.

    Continuous Improvement Driven by Real User Impact

    Even seasoned manufacturers can slip into routine, but the challenges brought by 4-Benzoylpiperidine Hydrochloride clients drive us to review and improve our processes. Each complaint about a slow-dissolving batch or minor off-color prompted equipment upgrades, fresh training sessions, or tweaks to process controls. Long-term partnerships build from this responsiveness, witnessed not only in certificates but in smoother syntheses, shorter timelines, and fewer delays in pivotal projects. Listening closely to experienced researchers brought about the most impactful tweaks and fueled our success in this field.

    Final Thoughts from the Manufacturing Side

    Working with 4-Benzoylpiperidine Hydrochloride involved more than just scaling up a known synthesis. Every day, lessons from process optimization, handling, storage, and shipping come together on the shop floor and in the feedback from research partners. In an age where volume and speed often threaten to overtake quality, our commitment is grounded in discipline born from lived experience. Every lot carries traces of that experience—from the way it looks when poured, to the paperwork and the supportive voice at the other end of a query. Real results flow from grounded expertise, careful routines, and a willingness to adapt—all for a compound that, while one of many, reminds us every day why we chose this work.