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1-Acetylisonipecotoyl Chloride

    • Product Name 1-Acetylisonipecotoyl Chloride
    • Alias 1-Acetyl-4-piperidinecarbonyl chloride
    • Einecs 401-230-3
    • 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

    938855

    Product Name 1-Acetylisonipecotoyl Chloride
    Cas Number 106509-41-9
    Molecular Formula C9H14ClNO2
    Molecular Weight 203.67 g/mol
    Appearance Colorless to pale yellow liquid
    Purity Typically ≥97%
    Solubility Reacts with water; soluble in organic solvents
    Synonyms 1-Acetyl-4-piperidinecarbonyl chloride
    Storage Conditions Store at 2-8°C, keep dry and tightly sealed

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

    Packing & Storage
    Packing 1-Acetylisonipecotoyl Chloride is supplied in a 25g amber glass bottle, sealed with a PTFE cap, and labeled for laboratory use.
    Shipping 1-Acetylisonipecotoyl Chloride is shipped in secure, airtight containers to prevent moisture and air exposure. Packaging complies with hazardous chemical regulations, using appropriate labels and documentation for safe handling and transport. The product is stored and shipped at recommended temperatures, with spill containment measures in place to ensure safe delivery.
    Storage 1-Acetylisonipecotoyl Chloride should be stored in a cool, dry, and well-ventilated area, away from moisture, heat, and direct sunlight. It must be kept in a tightly closed, chemically resistant container and segregated from incompatible substances such as bases, strong oxidizers, and water. Appropriate safety signage and spill containment measures should be available in the storage area.
    Application of 1-Acetylisonipecotoyl Chloride

    Applications of 1-Acetylisonipecotoyl Chloride in Industrial Manufacturing

    1-Acetylisonipecotoyl Chloride serves as an essential intermediate in several specialized chemical sectors, where strict process control and product purity are critical. As a direct manufacturer, we supply this compound to downstream industries requiring precise integration into advanced synthesis, particularly for specialty pharmaceuticals and tailored chemical products. Below, we present key industrial application tracks supported by regulatory and process expertise.

    1. Pharmaceutical Intermediates for Piperidine-Based APIs

    Major active pharmaceutical ingredient (API) manufacturers incorporate this chlorinated derivative during the synthesis of advanced piperidine scaffolds. Companies use it in the acylation step to form lactam or amide-linker structures, especially for APIs treating central nervous system disorders. Process engineers tightly control the reaction kinetics and phase pathways to ensure complete conversion and minimize unwanted byproducts. This intermediate’s purity directly impacts downstream final product compliance, requiring batch-specific COA and validated analytical methods.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • European Pharmacopoeia (Ph. Eur.) monographs (where applicable)
    • USP <1043> Ancillary Materials for Cell, Gene, and Tissue-Engineered Products
    • FDA 21 CFR Part 211: Current Good Manufacturing Practice for Finished Pharmaceuticals

    Typical usage ratio

    • 0.8–1.2 molar equivalents relative to the piperidine base, adjusted based on target amide yield and specific reactivity of the downstream amine.

    Downstream process integration

    • Amide coupling or acylation step after initial skeleton assembly in multi-step API synthesis.
    • Strict in-line monitoring (HPLC, GC-MS) typically at the reaction endpoint.

    Final product types

    • Pharmaceutical APIs (central nervous system agents, analgesics, certain antipsychotics)
    • Regulated advanced pharmaceutical intermediates

    2. Synthesis of Custom Agrochemical Active Intermediates

    Leading crop protection formulators employ this acid chloride in their production of heterocyclic building blocks for selective herbicide and insecticide actives. Its reactive acyl chloride group facilitates targeted derivatization on piperidine rings, which enables fine-tuning of biological activity and selectivity within proprietary agrochemical compounds. The process requires strong adherence to trace impurity limits and batch traceability, set by both internal and international agrochemical regulator guidelines.

    Industry compliance standards

    • ISO 9001:2015 Quality Management System
    • FAO/WHO Guidelines on Pesticide Specifications
    • REACH Regulation (EC) No 1907/2006 (Europe)
    • EPA FIFRA standards for technical-grade actives (United States)

    Typical usage ratio

    • 1.0–1.5 equivalents, contingent on downstream nucleophile excess and target conversion in the acylation step.

    Downstream process integration

    • Intermediate coupling reaction prior to final heterocycle ring closure.
    • Incorporated into closed-system reactors with controlled temperature profiles and pH adjustment.

    Final product types

    • Technical-grade insecticide intermediates
    • Herbicide and plant regulator precursors

    3. Advanced Building Block for Specialty Polymer Modifiers

    Polymer R&D units deploy this compound as a tailor-made acylating agent in the synthesis of performance additives. The functionalized piperidine moiety acts as a nitrogenous cross-linker or side-chain modifier in high-temperature engineering plastics. Producers manage stringent impurity and moisture content controls, since downstream polymer properties rely on precise stoichiometry and chain uniformity. Finished additive formulations capitalize on the acylation efficiency provided by its chloride group under solvent-free processing or with low-polarity media.

    Industry compliance standards

    • ISO 9001:2015 (Process and traceability)
    • ASTM D5630 for loss-on-drying (moisture)
    • RoHS Directive 2011/65/EU (Heavy metals in downstream use)

    Typical usage ratio

    • 0.1–0.5 wt% in the polymer blend, with adjustment based on functionalization degree and chain length requirements.

    Downstream process integration

    • Incorporation during pre-polymer mixing or as a reactive extrusion additive.
    • Monitored inline for acyl group uptake after each compounding batch.

    Final product types

    • Nitrogen-functionalized engineering polymers
    • Chain-modified thermoplastics for automotive and electronics
    • High-resistance specialty coatings

    4. Intermediate for Controlled Release Drug Delivery Systems

    Specialty formulation units in the drug delivery field utilize this chloride to functionalize carrier molecules, such as polymeric excipients or macrocyclic host compounds. It enables formation of stable amide or carbamate linkages at mild temperatures, suitable for compounds sensitive to degradation. Compliance teams ensure traceability down to the lot level, as authorities require detailed impurity profiling and validation reports for excipient use in finished formulations. Formulators often validate the transformation by NMR and LC-MS prior to encapsulation or loading steps.

    Industry compliance standards

    • USP-NF General Chapter <1078> Good Manufacturing Practices for Bulk Pharmaceutical Excipients
    • Ph. Eur. general monograph 2034 (Excipients)
    • GMP EU Guidelines Part II (excipients and carrier intermediates)
    • ISO 13408-1 for aseptic processing

    Typical usage ratio

    • Variable, typically 0.2–0.8 molar equivalents relative to the carrier polymer or macrocyclic core, optimized per encapsulation load and release parameters.

    Downstream process integration

    • Acylation step in precursor excipient preparation.
    • Post-reaction purification before introduction to final drug formulation blending.

    Final product types

    • Microparticle and nanoparticle carriers for oral or injectable drugs
    • Sustained and extended-release pharmaceutical dosage forms
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    Certification & Compliance
    More Introduction

    1-Acetylisonipecotoyl Chloride: An Expert’s Perspective from the Factory Floor

    Understanding 1-Acetylisonipecotoyl Chloride from the Source

    Out on the manufacturing floor, where chemical reactions aren't textbook exercises but daily work, 1-Acetylisonipecotoyl Chloride earns its reputation for reliable performance. We’ve spent years tuning our process for this compound, often called 1-Acetyl-4-piperidinecarbonyl chloride. Our synthesis method doesn’t come from off-the-shelf flowcharts. It’s an exacting route shaped by real-time results and first-hand adjustments, focused on end-use practicality and downstream needs.

    This product doesn’t appear on the bench by accident. It’s the outcome of a carefully orchestrated set of steps, and each reaction condition — temperature, pressure, stoichiometry — reflects lessons gathered through many cycles. Enthusiasts in a lab might write about yields and purity; in the factory, purity translates to minimal rework for our partners and fewer surprises in the integrator’s plant. We keep a close eye on color, clarity, and the all-important HPLC trace, chasing a consistently low level of residual moisture and trace amine impurities, because those silent background actors change how our customers’ downstream processes behave.

    Key Specifications Forged from Practice

    The chemical formula (C9H14ClNO2) only tells part of the story. On paper, it’s a pale yellow to off-white crystalline or solid material, but you understand what matters by handling the real thing. When the melting and boiling ranges stay tight, and the NMR lines match expected structure without odd singlets hanging around, you know you’re working with clean product. We produce at 98% minimum assay, with residual solvents kept below practical detection, and our batch-to-batch consistency follows not just written standards but the real expectations of chemists who rely on our material in their reactors.

    Over time, our team found that rigorous control of the chloride source and acetylating agent pays off in downstream processability. Whenever we see a spike in free acid content or an unplanned dimer band in QC, it triggers a review rather than an acceptance. The feedback loop doesn’t stop at our loading dock — end users who report odd behavior in their cyclization steps or purification columns give us clues about the subtleties of purity that matter in actual use.

    Packaging isn’t an afterthought for us, either. Sensitive to moisture and heat, 1-Acetylisonipecotoyl Chloride comes sealed under inert gas, not just to tick off safety boxes, but because we’ve seen what hydrolysis does to downstream batch yields. No one wants a surprise exothermic spike or stubborn hydrolyzed byproducts in their next synthesis stage.

    From Manufacturer’s Bench to Industrial Reactions

    The main routes using 1-Acetylisonipecotoyl Chloride begin in fine chemical and pharmaceutical manufacturing, where it acts as an acylating agent or an intermediate for building custom piperidine frameworks. The applications branch out quickly — custom API synthesis, agrochemical development, and research-scale innovation. Each time, the demands shift slightly. API customers call for minimal residual solvents; crop science partners focus on predictable reaction profiles and ease of purification; R&D buyers watch for robust analytical matches to known benchmarks. We see these patterns first, because if something goes off in the mix — a slow reaction, odd byproducts, inconsistent purity — we’re the ones troubleshooting at 2 a.m.

    Some projects depend on smooth amide formation, others channel our product into more exotic functionalizations. We know our material’s reactivity profile can’t be too broad, or side reactions bite into yields and create challenges for downstream separation. It took years of experience to land on reaction conditions and purification steps that work across not just one, but several application fields.

    The Value of Direct Production Knowledge

    For many, it’s easy to lump “isonipecotoyl chlorides” together. In practical terms, each is its own beast — variation in purity, crystallization method, and degradation profile leads to real-world differences. We’ve sat through customer audits where questions about byproduct content and analytical signatures run deep. Some buyers can pick up minor differences based on odor, handling behavior, or even how our material stellates on cooling — these subtle signals tell experienced chemists whether they’ll face unexpected reprocessing or whether their workflow runs as planned.

    Manufacturers also notice that material from a direct producer offers advantages that don’t show up on bulk specs sheets. We can afford to set tighter in-house limits on secondary compound content or aberrant peaks, and adapt a batch if a customer needs low moisture for a particularly sensitive reaction. There’s no substitute for immediate process adjustment; adjustments made while the batch brews up mean tomorrow’s shipment hits the right notes by design, rather than after-the-fact corrections forced by customer complaints or third-party repackaging.

    Patience and Repeatability Earn Real-World Trust

    Pharmaceutical partners often return to us because they remember the sour taste of sub-par material: blocked columns, runaway side reactions, or delayed campaigns because the product handled poorly. Manufacturing experience means more than claims on a certificate — it’s proven when the fifth consecutive drum performs like the first, or when scale-up to pilot plant leaves development managers with one less worry on their list.

    Longevity in the chemical business hinges on credible delivery and realistic promises, not just active marketing. New entrants in isonipecotoyl derivatives sometimes chase volume without refining their process — these are the products that show drift in melting point, a hint of odor, stubborn color, or batch-to-batch variability. We’ve taught our team to watch for the subtle clues — the difference in slurry behavior, or the finish on a dry cake — that warn of undesirable polymorphs or incomplete conversion. This level of vigilance doesn’t result from wishful thinking, but from years handling product at scale and sharing feedback across sites and teams.

    Distinction from Standard Isonipecotoyl Compounds

    Plenty of confusion surrounds the distinction between our chloride and other common piperidine acyl derivatives. 1-Acetylisonipecotoyl Chloride’s unique value lands in its ability to act as both an acyl donor and a versatile activated carbonyl for specialized synthesis. Products like isonipecotic acid or the methyl ester bring their own reactive handles, but their scope narrows when customers require a reactive yet manageable intermediate for multistep processes. Chlorides, especially when prepared under tightly controlled conditions, empower acylation steps with more ready reactivity and less risk of introducing inactive byproducts.

    Standard piperidinecarboxylic acid compounds often carry more moisture load and present stability issues under normal shipping. Our chloride variant, if moisture-sealed and managed through a cold chain, gives synthetic chemists a sharper tool for further transformation, without the need for pre-activation or in situ derivatization. Our feedback from customers, especially those driving up the technology ladder in new molecule R&D, points toward a clear preference for an intermediate that behaves predictably on both small and medium scales.

    End-Use Applications: Lessons from Our Partners

    Real-world stories bear out the technical case for our product. In one instance, a development project for a new CNS-active molecule stumbled for weeks due to unexpected isomerization stemming from unknown impurities in a third-party batch. The shift to our 1-Acetylisonipecotoyl Chloride, which arrives with a consistent impurity profile and low residual solvent, aligned product outcomes exactly with the research group’s plans. That project closed on time as a direct result of understanding not just what our specification says, but what it means when downstream purification depends on a clean intermediate.

    We hear from process teams advancing pilot runs from milligrams to kilograms. They reveal that peace of mind doesn’t come just from hitting numeric purity, but from seeing the same HPLC and melting point on every drum. They talk about less column fouling, less need for repurification, and better integration with automation routines. For some, the difference between 98% and “98%, but with a surprise GC peak” is months of process headaches. We build those experiences back into our continuous improvements.

    The Human Element in Chemical Manufacturing

    In major chemistry parks and specialty labs, the narrative around chemical manufacturing revolves around numbers and compliance — this isn’t the full picture. Each batch we make walks through the hands of skilled operators who become intimately familiar with the touch, look, and feel of each substance. Watching a slurry settle in one way and not another, reacting to slight performance changes, or tracking odors that hint at unexpected side-reactions — the human senses narrow the gap between technical parameters and practical consequences.

    Long-standing team members bring history into every campaign. Their ability to spot deviations that wouldn’t register on a printout or screen often marks the difference between reliable, reproducible product and a run that gets quietly reworked. We don’t merely trust machines or high-throughput testing; we rely on the marriage of experience and controlled conditions, using both feedback and iteration to perfect every delivery.

    Minimizing Errors Through Process Ownership

    Clarity in roles and deep familiarity with raw materials ensures fewer batch errors and higher safety. The greatest process improvements we’ve achieved sprang from moments of close call — batch exotherms due to moisture ingress or lingering acid chlorides, for example — that led us to reinforce our moisture excluder protocol or overhaul how we handle solid transfers. These stories don’t filter up to marketing brochures, but they define whether material makes it out the door with the credentials we demand.

    We maintain a constant dialogue with plant technicians and downstream users. If someone at a customer site identifies a hazy solution where clear product previously prevailed, we can trace back through logs, SOPs, and analytical data — and act immediately. Root cause isn’t just about assigning blame but closing the loop for permanent correction. Lessons from each event cycle back into product refinement, which is why routine feedback sometimes triggers changes to drying or filtering stages, or even a new tank cleaning schedule. This relentless pursuit of incremental gains marks true manufacturing stewardship.

    Supporting Innovation with Consistency and Flexibility

    Advanced material innovation cycles demand more than trend-chasing or bulk pricing. Developers launching a new molecule or a distinctive building block place tremendous value on predictably performing intermediates. Many bench breakthroughs in chemical or pharmaceutical innovation come to life only if their key steps work reliably at scale. Our commitment to repeatable process quality, matched with responsive technical service, empowers our partners to devote energy to genuine innovation — instead of troubleshooting regular supply interruptions.

    We also support material adaptations, such as modified purity or phasing in alternate solvents, to help customers through transitional process development stages. Because manufacturing control is enforced at the reactor rather than on paperwork, we have the latitude to handle special requests, from custom drum sizes to tailored batch certification. These services emerge not as marketing hooks, but from the tight link we maintain with daily users who regard the factory — the real, humming, multi-story site — as their first responder for unexpected project needs.

    Responsibility to Safety and the Environment

    At each stage of 1-Acetylisonipecotoyl Chloride manufacture, we incorporate safety and environmental care into every SOP. From scrubbing acids from reactor exhausts, to monitoring waste stream chlorides, to pre-staging materials for safe neutralization, responsibility is reinforced as a lived value, not just a compliance point. Our records stretch back to show continuous investment in better air handling, less hazardous raw material substitution, and safer packaging — not because of outside pressure, but because these changes lead to healthier workplaces and lower process costs in the long run.

    Preparing for stricter global norms means we have already worked to minimize solvent usage, built in recycling, and upgraded to multi-stage containment and neutralization systems. The upshot: users can depend on both regulatory alignment and real safety in the final drum. These moves give employees greater confidence at the line, keep neighborhoods happier, and guard against unexpected interruptions that hit at the heart of business continuity.

    Nurturing Partnerships for Technical Growth

    True progress across specialty chemical supply doesn’t come from token partnerships or glossy supplier slides. Years of sustained technical engagement and operator-level feedback build the bedrock for genuinely effective collaboration. We host customer chemists at our facility, not behind glass but at the work benches and plant floors, where practical exchanges take place. These face-to-face meetings solve more problems — and spark more new ideas — than months of email chains or remote lab reports.

    Each project brings back something fresh: a new analytical protocol, an alternative workup suggestion, or an end-use constraint that reshapes our own practices. Partnership works both ways. Our operators and shift managers pass local process challenges to customers, increasing shared knowledge and yielding mutual improvements. The relationships extend beyond purchase orders, echoing in shared technical notes or early briefings on planned scale-ups.

    The Outlook for Advanced Isonipecotoyl Chlorides

    The future promises broader demand for advanced intermediates as pharmaceutical and fine chemical innovation leans more heavily on specialty piperidines and their acyl derivatives. We expect evolving requirements around cleaner processes, better tracking, and improved hazard mitigation to favor manufacturers with an established operating base and a history of adaptability. 1-Acetylisonipecotoyl Chloride embodies our readiness to back higher-stakes projects with credible supply, technical support, and a continuous improvement attitude.

    Whether expanding to new geographies or embedding tighter sustainability into our manufacturing, our focus will remain on honest, performance-driven supply — never losing sight of the detailed, specific needs of those who bring laboratory insight into the real world of industrial chemistry, batch after batch.