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1-Boc-Piperazine Acetate

    • Product Name 1-Boc-Piperazine Acetate
    • Alias 1-(tert-Butoxycarbonyl)piperazine-2-acetic acid
    • Einecs 675-969-5
    • 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
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    Specifications

    HS Code

    842613

    Product Name 1-Boc-Piperazine Acetate
    Cas Number 164577-43-7
    Molecular Formula C11H20N2O4
    Molecular Weight 244.29
    Appearance White to off-white solid
    Purity Typically >98%
    Melting Point 67-71°C
    Solubility Soluble in DMSO, methanol, and dichloromethane
    Storage Conditions Store at 2-8°C, protected from light and moisture
    Smiles CC(=O)OCC1NCCN(C1)C(=O)OC(C)(C)C
    Synonyms tert-Butyl 4-acetoxy-piperazine-1-carboxylate

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

    Packing & Storage
    Packing The 1-Boc-Piperazine Acetate is securely packaged in a 100g amber glass bottle with a tamper-evident screw cap, labeled for safety.
    Shipping 1-Boc-Piperazine Acetate is shipped in sealed, chemically-resistant containers to ensure stability and safety. The packaging is compliant with international and local regulations for hazardous materials. The product is protected from moisture, heat, and light during transit, with appropriate labeling and documentation provided for safe handling and regulatory compliance.
    Storage 1-Boc-Piperazine Acetate should be stored in a tightly sealed container in a cool, dry, and well-ventilated area, away from moisture and incompatible substances such as strong acids or bases. Protect the chemical from direct sunlight and sources of ignition. Recommended storage temperature is between 2–8°C (refrigerated conditions). Proper labeling and adherence to safety guidelines are essential for safe storage.
    Application of 1-Boc-Piperazine Acetate

    Applications of 1-Boc-Piperazine Acetate in Industrial Manufacturing

    As an established chemical raw material manufacturer, we supply 1-Boc-Piperazine Acetate for key synthesis processes in pharmaceutical, fine chemical, agrochemical, and specialty intermediate segments. Below, we detail actual downstream applications, covering formulation, compliance, process integration, and target end-products.

    1. Pharmaceutical Intermediate for API Synthesis

    API producers use 1-Boc-Piperazine Acetate as a building block in the synthesis of several piperazine-based drug molecules, including antipsychotics and antihistamines. It functions as a protected piperazine moiety, facilitating selective N-alkylation or N-arylation steps. The material enters the process during the key intermediate stage and requires full removal of the Boc group in the penultimate synthetic step to expose the free piperazine core for final coupling. Batch records and traceability are vital for GMP compliance throughout production.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • EU GMP Part II
    • USP-NF and EP monograph compliance if relevant in final API
    • US FDA 21 CFR Part 210/211 (process validation and documentation)

    Typical usage ratio

    • 0.7 – 1.2 molar equivalents per target API intermediate, adjusted based on downstream functional group reactivity and protection requirements

    Downstream process integration

    • Introduced after primary amination or acylation steps; deprotection handled by acidolysis (TFA or HCl) immediately before final drug core assembly

    Final product types

    • Atypical antipsychotic APIs (e.g., Quetiapine, Trazodone intermediates)
    • Antihistamine drug candidates
    • CNS-active piperazine derivatives
    • Peptide-mimetic pharmaceutical intermediates

    2. Fine Chemical Synthesis for Specialty Organic Intermediates

    Chemical manufacturers employ 1-Boc-Piperazine Acetate in the downstream synthesis of advanced intermediates, often targeting high-purity compounds for dye, pigment, or electronics-grade fine chemicals. Here, the acetate group offers unique reactivity for esterification or amidation, while Boc protection ensures selectivity. QC in these settings verifies completeness of protection and minimal residual free amine content.

    Industry compliance standards

    • ISO 9001:2015 for quality management
    • REACH (Regulation (EC) No 1907/2006) Registration for handling and use in Europe
    • RoHS Directive (for electronics intermediates when applicable)
    • Internal QC consistent with customer specifications (chromatographic and spectroscopic purity controls)

    Typical usage ratio

    • 5–20% by weight in typical multi-step batch syntheses; ratio modulated for process efficiency or conversion rates

    Downstream process integration

    • Integrated during advanced stepwise assembly before core aromatic or heterocycle installation; Boc group hydrolyzed after desired functionalization

    Final product types

    • Specialty dye intermediates
    • OLED or organic electronics component precursors
    • Photoinitiator building blocks
    • Agrochemical lead compound intermediates

    3. Custom Contract Research & Manufacturing (CRO/CMO) for Protected Piperazine Scaffolds

    Leading CRO and CMO operators purchase 1-Boc-Piperazine Acetate as a modular intermediate for protected nitrogen incorporation in customer-specific projects. These projects may target proprietary NCEs, clinical trial material, or early-phase process development. Customers specify compound purity, residual solvent levels, and impurity limits. We tailor batch production for flexible scale and deliver tight release compliance per the project’s end-market.

    Industry compliance standards

    • ISO 13485 for medical device-related compounds (when specified)
    • GMP-compliant documentation for custom synthesis campaigns
    • IPEC-PQG GMP for pharmaceutical excipients if extrapolated to support novel excipient development
    • Customer-specific NDA/IP protection and confidentiality standards

    Typical usage ratio

    • Varies by synthesis—commonly 1.0–3.5 equivalents per step, optimized according to target structure and yield requirements

    Downstream process integration

    • Applied at the scaffold design or lead optimization stages; protection/deprotection cycle tightly coupled with SAR chemistry and purification

    Final product types

    • NCE intermediate libraries
    • Phase I/II clinical batch intermediates
    • Analytical reference standards
    • Diagnostic agent precursors

    4. Synthesis of Peptide-Conjugate Linkers and Specialized Resins

    Peptide and oligonucleotide manufacturers utilize 1-Boc-Piperazine Acetate to introduce protected, biocompatible piperazine linkers in drug delivery systems. This intermediate allows selective coupling onto solid-phase resins or into solution-phase peptide ligation, especially for ADCs, peptide–drug conjugates, or linker-payload constructs in targeted therapeutics. Its incorporation supports batch reproducibility and precise linker length control, critical for regulatory and quality review prior to release of peptide conjugates or resins.

    Industry compliance standards

    • EU EudraLex Volume 4, Annex 1 (for aseptic manufacturing if relevant)
    • USP <1047> for solid-phase synthesis excipients
    • ISO 14644, relevant for production under cleanroom conditions
    • Custom QA protocols per peptide/oligonucleotide GMP guidelines

    Typical usage ratio

    • Typically 1.0 equivalent per target linkage site; adjustments made for multi-site or branched linker designs

    Downstream process integration

    • Incorporated at the linker attachment stage via amide bond coupling; Boc removal completed before final conjugation with payload or biopolymer

    Final product types

    • Antibody-drug conjugate (ADC) linkers
    • Biotinylated peptide resins
    • Pegylated oligonucleotide intermediates
    • Specialty biofunctionalized polymers
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    Competitive 1-Boc-Piperazine Acetate prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    1-Boc-Piperazine Acetate: Designed for Reliable Performance

    Experience Matters in Manufacturing 1-Boc-Piperazine Acetate

    Day in, day out, our team brings years on the chemical production floor to refining and scaling up the synthesis of 1-Boc-Piperazine Acetate. Throughout our experience, we’ve worked through every step from laboratory reaction to full industrial operation, so each batch comes off the line as consistent as the last. We understand that consistency doesn’t just help processing down the road—every chemist and formulator relies on a supply that behaves identically each time. In our facility, this intermediate is produced with strict quality controls, minimizing by-products and controlling moisture and residual solvents.

    Standing behind each lot, we ensure chromatographic purity typically reaches 99% or above, and residual solvents are held well inside ICH guidelines. Each drum, no matter where it’s headed, reflects the work of technicians and chemists who know that even one off-standard package can disrupt a production schedule or lead to costly troubleshooting.

    Our Approach on 1-Boc-Piperazine Acetate’s Model and Specifications

    Customers often ask about different grades and particle forms of 1-Boc-Piperazine Acetate. Over the last decade, we’ve listened and adapted. Whether your needs call for finer powders suited for rapid dissolution or larger crystalline granules for controlled transfer, every batch comes with a full analytical report—HPLC, NMR, water content, and residual solvents every time. Our team has learned that sometimes product purity isn't the only deciding factor—the physical form affects downstream filtration and solubility, so it pays to communicate batch needs before shipment.

    On the production line, we use a proprietary purification step to squeeze out process impurities that stem from raw material variability. We routinely monitor for isomeric by-products, given their stubborn tendency to arise if reaction controls slip. Each specification sheet reflects what years of hands-on process optimization have shown matters most—low levels of process-related contaminants, clean spectral profiles, and a physical consistency that ensures the compound is easy to handle, weigh, and transfer.

    Key Applications: 1-Boc-Piperazine Acetate in the Real World

    Pharmaceutical researchers and pilot producers rely on this compound for building more complex piperazine derivatives, each step depending totally on reagent integrity. In our feedback loops with process development teams, it’s clear that yields can drop, and entire process trains can lose efficiency when intermediates aren’t up to par. Reaction by-products from an off-spec batch might slow progress on scaling new product routes, or worse, throw off analytical results during regulatory submissions.

    The typical user takes advantage of the stable Boc protecting group in multi-step peptide and amide synthesis, as well as in developing heterocyclic scaffolds. The acetate salt form offers improved water solubility and reduces dusting during material handling. We’ve found that compared to the hydrochloride or free base, the acetate version simplifies downstream purification, and almost always provides a cleaner mass spectrum in handover to the next synthetic step.

    In practice, whether the batch moves into prototyping for oncology APIs, CNS actives, or even custom fine chemicals, chemists value how easily our acetate material dissolves in typical polar solvents. That translates to shorter work-up times, less loss in filtration, and fewer repeats due to contamination. Labs and plants alike favor its robust stability during storage and transport. We’ve engineered our standard packaging to shield the product from moisture and excessive light, ensuring the Boc group stays intact through normal logistics cycles.

    What Sets This Product Apart From Other Protecting Groups and Piperazine Salts

    With time in this market, it becomes clear not all piperazine intermediates are equal. One thing power users mention is the steady behavior of the acetate salt—an element often overlooked until a production run is held up due to caking, deliquescence, or dust explosions with other salt forms. Our 1-Boc-Piperazine Acetate leaves the reactor with a white, free-flowing appearance. We maintain that by tightly controlling drying temperature and vacuum cycling, not just pushing powder out the door.

    Unlike hydrochloride alternatives, the acetate avoids introducing corrosive chloride ions which might compromise sensitive substrates later. Labs accustomed to the free base often struggle with unpleasant odor and hygroscopicity. Over the years, switching to this acetate salt on real world lines leads to fewer complaints about clumping in storage bins and less downtime for cleaning caked reactors.

    Some groups attach a premium to batch-by-batch reproducibility, especially on longer multi-step syntheses. Our history with contract research and scale-up groups tells us that one inconsistent intermediate in the sequence can throw off entire impurity profiles downstream. Thanks to thoughtful process design, our batches maintain an error margin for purity and water content that rarely strays. Our technical team communicates changes in starting materials or route modifications well in advance, so surprises never derail critical production slots.

    Each shipment goes out only after a final round of stability testing, and repeat customers often call out the complete absence of stubborn, sticky residues that sometimes tag along with less-refined materials. Scaling up can uncover small problems quickly, and we’ve revised both our purification sequence and post-synthesis handling dozens of times based on those scale-up insights.

    The Manufacturing Difference: What Our Years in Production Have Taught Us

    Taking a process from a beaker to a 1,000-liter reactor uncovers a host of unforeseen hurdles. In the early days, our yields suffered from exotherms and local concentration spikes, so we invested in new mixing gear and trickle feed protocols that now hold reaction exotherms well within control. It’s not rare for us to pause production and tweak the set points if inline analytics hint at trace by-products building up. Over time, our batches have edged closer and closer to theoretical yield, with reject rates dropping sharply once we updated equipment and retrained floor staff.

    Constant improvement extends to quality assurance. Earlier reliance on spot-checking made it too easy to miss periodic process drift, so all analytical data since 2017 feed directly into our LIMS, and the quality team reviews every production run’s chromatographic and moisture data before release. Maintenance staff have standing orders to replace aging gaskets and seals promptly—spikes in trace contamination almost always point back to tired plant infrastructure.

    Working as a manufacturer, we keep process documentation and traceability in top order. Our own chemists confront the same pressures our customers face—regulators expect detailed, error-free documentation. When scale-ups prompt new regulatory scrutiny, audit trails and batch records must stand up to careful inspection. We learned this firsthand supporting customers in launching new products across international markets: clear batch lineage, validated analytical methods, and archived samples keep everything above board.

    Challenges Large and Small: Solutions the Manufacturing Floor Reveals

    Some years ago, demand for 1-Boc-Piperazine Acetate spiked and our plant needed to double output overnight. Ramping up hit us with unanticipated filtration bottlenecks. Shifting filtration media cut time per batch in half, and standardizing the pre-drying process stopped half-dried clumps from gumming up the drying trays. Sharing these solutions with our customers has helped streamline their own workflows, giving their technical teams upfront insight on what to expect in scale-up.

    Handling the acetate salt during high-humidity seasons exposed flaws in our packaging approach. Early lots that encountered warehouse humidity absorbed water and clumped, so our team moved to more robust, double-lined drums. A low-permeation inner liner changed the equation entirely, and subsequent real-world shipments reached customers with the product still free-flowing. Feedback like this leads us to study new solvents and drying technologies, since fewer headaches down the line means less waste and faster project turnaround for everyone.

    Running a chemical plant, you face other subtle challenges: maintaining batch-to-batch repeatability as raw material suppliers change, ensuring reactor cleaning eliminates all trace carryover, or adapting to shifts in environmental regulation affecting allowed residues. Staying nimble has kept us ahead. We screen all source inputs against our own standards before approving a supplier, and invest regularly in eco-friendly solvent recycling. Waste minimization isn’t just for regulatory compliance—it cuts cost and supports operational stability.

    Our Commitments: Transparency, Traceability, and Service

    Clients know that once a question arises—be it about lot-specific data, transportation restrictions, or application insights—our technical staff answers promptly. We don’t keep process know-how to ourselves: success stories and lessons from the line often make their way back to the R&D bench so the next batch is easier to manage. Traceability from raw material receipt through final release makes every vial and drum accountable. If customers run into scale-related issues or require process tweaks for their unique conditions, our support goes beyond generic datasheets. Fielding these questions improves not only our next batch but the supply chain as a whole.

    It’s a point of pride that several partners have transitioned from pilot to commercial scale using our batch data and process guidance. Stability reports, spectral datasets, and historical process adjustments benefit their validation programs, smoothing the curve from small lots to multi-ton orders. For us, customer success reflects the expertise we bring to process engineering, documentation, and technical troubleshooting.

    Pushing the Limits: New Applications for 1-Boc-Piperazine Acetate

    Beyond standard drug synthesis, creative chemists have taught us about new fields for this molecule. Demand is growing in custom polymer design, where protected piperazine structures form backbones for novel materials used in coatings, advanced resins, and selective membranes. The acetate's excellent shelf stability has proven attractive for groups needing to keep intermediates on the shelf as projects shift or pause. Some have optimized it as a precursor for regulatory reference standards and as a scaffold for combinatorial library development.

    Drawing insight from these partners, our R&D group tested modified salt forms and new recrystallization approaches, only adopting those that survived the harsh lessons of plant-scale operation. When a technique proves to lower runtime, boost purity, and cut energy use, we formalize it across all lots, passing on both the performance and savings.

    Long-Term Perspective: What We See Ahead

    After years serving both established pharma and innovative startups, we believe longevity in the 1-Boc-Piperazine Acetate market depends on quality, responsiveness, and a learning mindset. Chemical manufacturing never stays static: raw inputs shift, regulation evolves, and process technology advances. Each batch offers a new test for process and product knowledge. Our team reviews every customer complaint and order anomaly, often reshaping SOPs to reflect root causes uncovered on the plant floor.

    Industry partners increasingly look for suppliers who do more than just ship a material; they expect technical guidance that helps them bypass sourcing headaches and regulatory delays. By listening in detail to pain points—be that powder flow during automated dispensing or trace contamination interfering with HPLC spectra—we stay one step ahead. Several pilot clients started with a single drum, saw reliable results, and now pull recurring orders straight into regular production because our acetate has proven robust in hands-on use.

    1-Boc-Piperazine Acetate may serve as an intermediate, but its reputation comes from reliability batch after batch. Our knowledge isn’t just chemistry on paper—it’s learned from actual process optimization, answering late-night troubleshooting calls, and watching every ton roll off the line. That’s how we’ve shaped a product and service that reflects not just years of experience, but also respect for our partners’ work and trust.