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3-Boc-Aminomethylpyrrolidine

    • Product Name 3-Boc-Aminomethylpyrrolidine
    • Alias Boc-3-aminomethylpyrrolidine
    • Einecs 629-588-5
    • 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

    529059

    Product Name 3-Boc-Aminomethylpyrrolidine
    Cas Number 1359901-03-7
    Molecular Formula C10H20N2O2
    Molecular Weight 200.28 g/mol
    Appearance White to off-white solid
    Purity Typically ≥98%
    Melting Point 68-72°C
    Storage Temperature 2-8°C
    Solubility Soluble in organic solvents (e.g., DCM, methanol)
    Smiles CC(C)(C)OC(=O)NCC1CCNC1
    Iupac Name tert-butyl (3-pyrrolidinylmethyl)carbamate
    Synonyms tert-Butyl 3-(aminomethyl)pyrrolidine-1-carboxylate

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

    Packing & Storage
    Packing The 3-Boc-Aminomethylpyrrolidine is packaged in a 25-gram amber glass bottle with a secure, tamper-evident screw cap.
    Shipping 3-Boc-Aminomethylpyrrolidine is shipped in secure, sealed containers compliant with chemical transport regulations. Packaging protects against moisture, light, and physical damage. Appropriate labeling, including hazard and handling information, is provided. Shipping is via trusted carriers, ensuring timely delivery and maintaining the compound’s integrity during transit. Temperature control may be applied if required.
    Storage **3-Boc-Aminomethylpyrrolidine** should be stored in a tightly sealed container, protected from light and moisture. Keep it in a cool, dry place at 2-8°C (refrigerated conditions). Store away from incompatible substances such as strong oxidizing agents. Ensure the storage area is well-ventilated and complies with relevant safety regulations. Proper labeling and segregation from food or drink are essential.
    Application of 3-Boc-Aminomethylpyrrolidine

    Applications of 3-Boc-Aminomethylpyrrolidine in Industrial Manufacturing

    As the direct manufacturer of 3-Boc-Aminomethylpyrrolidine, we support advanced synthesis operations across high-value pharmaceutical and fine chemical supply chains. Our material features consistently high purity and batch-to-batch reproducibility, which prove critical for downstream producers seeking precision in building blocks and protected amine intermediates. The following primary application scenarios represent established, proven uses in global industrial settings.

    1. Small Molecule Pharmaceutical API Synthesis

    Leading pharmaceutical manufacturers incorporate our material at the protected amine input stage when synthesizing complex nitrogen-containing active pharmaceutical ingredient (API) cores, particularly in antivirals and CNS drug development. Its Boc-protected secondary amine enables efficient coupling strategies in multi-step heterocycle synthesis, supporting GMP batch operations from scale-up to commercial site campaigns.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • USP, Ph. Eur., JP specifications for intermediates
    • US FDA 21 CFR Parts 210/211 (if used in regulated drugs)
    • EMA Guidelines on Starting Materials

    Typical usage ratio

    • 5–20 mol% relative to target amine substructure; process R&D and regulatory filing determine exact levels based on impurity profile and yield

    Downstream process integration

    • Amide/amide coupling steps after Boc protection
    • Stepwise addition in multi-component cyclizations
    • Intermediate isolation and further transformation into API scaffold

    Final product types

    • Small molecule CNS and antiviral APIs (e.g., pyrrolidine-containing drugs, protease inhibitors)
    • Intermediates for N-heterocycle active ingredients

    2. Peptide/Peptidomimetic Intermediate Building

    Peptide manufacturers use this compound for site-specific amine protection during solid-phase and solution-phase synthesis of peptidomimetics and modified peptides. Its Boc-protecting group offers selectivity and deprotection compatibility with automated peptide synthesizers, aiding in clean sequence assembly and minimizing racemization risk.

    Industry compliance standards

    • ICH Q11 Development and Manufacture of Drug Substances
    • USP/NF and Ph. Eur. for peptide intermediates
    • ISPE Baseline Guide: Biopharmaceutical Manufacturing Facilities
    • FDA cGMP for peptides (where relevant to final use)

    Typical usage ratio

    • 0.2–0.5 equiv. per protected amino position; adjusted according to peptide sequence length and protection requirements

    Downstream process integration

    • Amino acid/peptidomimetic chain assembly on resin
    • Cleavage and final deprotection after synthesis completion
    • Crude purification and lyophilization prior to QC

    Final product types

    • Peptidomimetic drug intermediates
    • Synthetic peptide fragments for research or therapeutic use
    • Stapled or cyclic peptide candidates

    3. Custom Fine Chemical Synthesis

    Producers of advanced fine chemicals integrate this compound as a Boc-protected amine source for creating functionally diverse heterocycles or specialty chloro/pyrrolidine derivatives. Its controlled reactivity profile supports high-yield transformations demanded by agrochemicals and electronic chemical synthesis pipelines, enabling stepwise functionalization with streamlined isolation procedures.

    Industry compliance standards

    • REACH (EC No 1907/2006) for European supply
    • ISO 9001:2015 Quality Management for process control
    • National/international chemical substance inventories (TSCA, IECSC, ENCS)
    • Internal QMS for customer-defined specification validation

    Typical usage ratio

    • 10–25 mol% depending on the target molecule’s scale and number of amine functionalities requiring protection

    Downstream process integration

    • Early-phase input into heterocycle-forming condensation reactions
    • Protection/deprotection steps prior to halogenation or cross-coupling
    • Solvent-based or solid-phase continuous addition

    Final product types

    • N-functionalized fine chemicals for electronics
    • Pyrrolidine-containing ligands for catalysts
    • Precursors for crop protection actives (where permitted)

    4. Chiral Auxiliary Synthesis for Stereoselective Chemistry

    Producers specializing in chiral catalyst and auxiliary development employ this protected amine in key resolution, hydrogenation, and stereocontrol protocols. Its steric and electronic properties enable formation of high-performance chiral scaffolds crucial to fine-tuned asymmetric synthesis workflows and custom catalyst ligand production.

    Industry compliance standards

    • ISO 9001:2015 for analytical and quality assurance procedures
    • GMP or pharma-grade quality on request (for pharmaceutical-adjacent auxiliaries)
    • Responsible Care for safe handling in process environments

    Typical usage ratio

    • 0.1–1 equivalent per targeted chiral center; usage tuned for stereoselectivity and downstream deprotection ease

    Downstream process integration

    • Installation during early-stage auxiliary synthesis
    • Deprotection post-stereocontrol (hydrogenation, alkylation, or resolution steps)
    • Removal/purification prior to catalyst or ligand application

    Final product types

    • Chiral auxiliaries for enantioselective synthesis
    • Stereoselective catalysts used in API and agrochemical production
    • Resolution agents for high-value API intermediate purification

    5. Advanced Medicinal Chemistry Research Toolkits

    Medicinal chemistry groups in biotech and pharmaceutical innovation centers source this compound for protected amine introduction within exploratory libraries, lead compound optimization, and structure-activity relationship workflows. It facilitates design of analogs based on substituted pyrrolidine scaffolds, allowing controlled protection/deprotection cycles in rapid iterative synthesis iterations to tune biological activity profiles.

    Industry compliance standards

    • ISO 17025 for analytical testing laboratories
    • Good Laboratory Practice (GLP) for research environments
    • Material Safety Data Sheet (MSDS) registration in-house

    Typical usage ratio

    • 0.05–0.3 equivalent per analog prepared; varies with diversity of designed library and protection requirements

    Downstream process integration

    • Rapid prototyping of targeted amine analogs under inert or ambient conditions
    • Diversification by N-substitution prior to SAR profiling
    • Parallel deprotection and compound management in multi-well plates or batch vessels

    Final product types

    • Lead compound libraries for drug discovery
    • Optimization derivatives for preclinical screening
    • Reference standards for analytical method development
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    Certification & Compliance
    More Introduction

    3-Boc-Aminomethylpyrrolidine: A Closer Look from Our Factory Floor

    Real-World Hands-on Production and the Value We See

    Every batch of 3-Boc-Aminomethylpyrrolidine that leaves our line speaks for thousands of hours invested by chemists, technicians, and the teams that maintain our reactors and filtration systems. We take pride in the high-quality output of this fine chemical, coded internally as 3BAMP. There’s no mystery around its importance for building blocks in pharmaceutical research and advanced synthesis. We didn’t pick this molecule by chance. Years of customer feedback and our own R&D journeys have shown a steady demand for stable, clean, and reproducible Boc-protected aminomethylpyrrolidines that hold up under real synthetic conditions.

    Exacting Standards—From Raw Materials to Finished Compound

    No batch of 3-Boc-Aminomethylpyrrolidine gets packaged before passing rigorous chromatographic and spectroscopic checks. Purity above 98% isn’t a marketing claim here—it’s the baseline that our downstream users require for confidence in their medicinal chemistry projects. Technicians in our QC lab check each drum and bottle, matching NMR, LCMS, and visual data against our gold-standard samples. Every day, people in our operations unit manually review not only the paperwork, but the appearance and solubility, swabbing samples and running spot TLCs.

    Where inspections find even minor deviations, the product stays put. Our approach goes beyond standard compliance. Process engineers here regularly walk the plant for impromptu checks, signaling issues before they grow. We have built these habits not out of regulatory pressure, but knowing that the slightest impurity in a core molecule like 3BAMP can ripple through an entire research pipeline. At scale, trust starts with these daily corrections, not just end-of-quarter audits.

    Our warehouse manages 3BAMP as a moisture-sensitive, air-stable solid, sealed in lined drums and protected from direct sunlight. We learned, early on, that extra care during packaging pays off. It guards against microcontamination and cuts down on customer complaints related to caking or air exposure—details that matter when scientists weigh their first milligrams and want consistency, bottle after bottle.

    Why We Make 3-Boc-Aminomethylpyrrolidine: Listening to Customers

    Our journey with 3-Boc-Aminomethylpyrrolidine started with repeated customer inquiries. Scientists in pharma labs and fine chemical companies shared the same headaches—other commercial sources tended to ship variable quality or had unpredictable lead times. The hesitation from using poorly characterized materials led project managers to build buffer time into schedules, wasting budgets and holding up discovery work.

    We built our process to offer reliability, not just speed. That’s why routine liaising between our production unit and external labs helps us keep our hands on the pulse of what matters most in this field—critical to hit purity specs, but just as necessary to keep documentation error-free and transparent. Visiting customers in their own labs, seeing how they dissolve our pyrrolidine derivative, or hearing from a medicinal chemist who pushes reactions to extreme conditions, helps us detect small pain points early. These site visits have led directly to refinements in filtration steps, solvent exchange protocols, and packaging upgrades that now define our product.

    Distinct Features: What Sets Our 3-Boc-Aminomethylpyrrolidine Apart

    Competition in this sector runs deep. Comparing our product to typical catalog offerings, a few things stand out. We use single-source starting materials, avoiding the small batch-to-batch discrepancies that can sneak in when sourcing on the spot market. Each batch gets the same granular attention—no “mix and match” approach if some raw material is out of stock. This keeps impurity profiles sharp and repeatable.

    We’ve invested in real-time in-process monitoring. Operators on our lines use IR and GC checks during key reaction steps, ensuring conversion is complete and byproducts get caught before they even approach a chromatography column. This cuts waste and supports a cleaner downstream profile for our 3BAMP. Regular upgrades to our instrumentation, based on feedback from both our lab and fielded research partners, keep us ahead of most general-purpose chemical distributors aimed at volume, not reproducibility.

    For chemists eyeing solubility or reactivity as a make-or-break feature, our batches show consistent melting points and handle nitrogen-purged bench storage with ease. Over the years, our QA team has tracked every problem case brought up by users. Modifications to drying protocols or adjustments in Boc protection procedures get tested in pilot lots before making any broad change—a level of scrutiny that builds trust.

    Practical Usage in Synthesis—What We’ve Learned by Watching Real Reactions

    3-Boc-Aminomethylpyrrolidine finds its main niche as a protected amine in medicinal chemistry, often appearing in the synthesis of high-value libraries and lead candidates. We listen closely during technical calls with end-users, which led us to further purify our product to avoid side reactions during routine deprotection or coupling steps.

    Some customers use 3BAMP as a coupling partner to introduce the Boc-protected aminomethyl group onto advanced intermediates. Others deploy it directly into routes where stability under mildly acidic or basic conditions is a must. What we see firsthand is that reliable deprotection, easy handling, and minimal residual solvents matter more than pushing for single-digit ppm impurity levels in every molecule—practical, not just theoretical, purity.

    Our technical support team works to close the loop, reporting back when anything seems off, whether it’s clumping in a storage bin or a trace byproduct that shows up under harsh coupling conditions. Improvements to filtration and washing protocols—originally prompted by repeated complaints about “invisible” sticky impurities—now mean our lots work smoothly for both bench-scale and pilot-plant users.

    Facing Real-World Constraints and Navigating Solutions

    Not every lab has a climate-controlled storage vault or the luxury of high-throughput, automated liquid handlers. Some of our customers face limits with basic storage or must work with open bench conditions. Consistent handling properties at room temperature—no excessive sticking, no strange odors, dry powder flow—keep our product competitive in those environments. We consistently compare feedback cycles, looking for routines that real scientists repeat daily and engineering 3BAMP batches that fit into those routines with fewer headaches.

    Shipping chemicals globally means working within the frameworks of customs, shelf life, and storage during transit. We decided early on to pack product in extra humidity-resistant containers, updating drum linings and inner foil packaging after noticing that sea shipment routes into humid climates led to visible changes in powder structure.

    Customer expectations don’t stop at the compound itself. All our staff, especially those working in the order fulfillment section, know that batch records, COAs, and transport documents must be ready and accurate. This helps users plan downstream validations with confidence. For those scaling up to kilo lots, we offer technical walkthroughs to ensure smooth transitions from lab recipes to multi-kilogram syntheses—a service only possible with deep knowledge of the actual compound and its quirks in process.

    What Differentiates from Alternatives—Concrete Examples from Our Process

    Some sources of 3-Boc-Aminomethylpyrrolidine choose speed over depth during synthesis, quickly cycling batches to meet sudden market spikes. From what we regularly observe, these short-cuts can introduce trace levels of unreacted starting materials or incomplete Boc protection. When we run comparative tests against competitor samples brought in by prospects, less rigorous options show variable melting points, non-uniform powder characteristics, and a nagging tendency to require pre-washing or added purification.

    By contrast, our continuous improvement program means every lot undergoes an internal “stress test”—we run simulated reaction conditions using our own product, checking compatibility with standard coupling agents and acidolysis procedures. If something causes sticking, cloudiness, or varying deprotection rates, our process engineering team traces back root causes and adjusts. These upgrades don’t just live in lab notebooks—they show up in more dependable product performance and notes kept for decades in our plant records.

    Our customers, especially those in medicinal chemistry start-ups or custom manufacturing outfits, report fewer interruptions when adopting our product line. Operational delays caused by inconsistent raw materials fall away, keeping teams focused on their real research rather than fixing extraneous supply issues.

    The Long-Term View: Commitment to Reliable Access and Scalability

    Demand for 3-Boc-Aminomethylpyrrolidine fluctuates alongside pharmaceutical discovery cycles and research funding. We have learned to stay ready, holding buffer inventory of critical intermediates and aligning our schedules with customer forecasting, rather than chasing every market spike. This long-term discipline keeps average lead times short even during peak seasons. If a client proposes a multi-year relationship or scheduled call-offs, we confidently promise stability because we control every step, from sourcing to delivery.

    On the production floor, our shift supervisors encourage “ownership” of product batches—each operator knows their work travels downstream and into real drug discovery timelines. Clear records are kept for each run, tying operator logs, analytical checks, and observed product behavior in storage. This culture of accountability roots our customer confidence in fact, not just brochures.

    The Science and Its Role in New Drug Discovery

    Our work with 3-Boc-Aminomethylpyrrolidine stems from a real need shared by scientists under pressure to deliver new molecules. Boc-protected aminomethylpyrrolidine’s versatile profile lets chemists build complex structures with greater flexibility, supporting routes that benefit from temporary amine protection and smooth downstream modification.

    Researchers use our product to insert pyrrolidine motifs without risking premature deprotection, allowing advanced intermediates to survive the orthogonal conditions needed in multistep synthesis. We’ve witnessed, through multiple collaborations, how a robust supply of this compound has helped speed up early-stage discovery, especially in programs exploring novel CNS active agents and new chemical entities requiring backbone modifications.

    Feedback from process chemists matters at every level. From weighing powder in fume hoods to prepping scale-up pilots, our 3BAMP has earned a place on benchtops because of what it doesn’t do—no odd background reactions, no late-stage purity drops, and no surprise stickiness. These critical but overlooked details shape real-world project outcomes.

    Continual Improvement—Stability and Technical Support

    We don’t treat support as an afterthought. Fielding questions from end-users lets us gather the intelligence needed to make 3-Boc-Aminomethylpyrrolidine even better. Past requests to supply alternate pack sizes or provide additional analytical documentation resulted in direct changes at our plant. It’s not uncommon for us to trace a small lab inconvenience back to a tweak in solvent drying or a change in filtration mesh. Such openness to iteration has made our facilities more nimble and responsive.

    For those concerned with stability, the evidence is in the lack of complaints about caking or color changes once packages reach their destinations. From stability studies to stress testing under simulated shipping conditions, we subject each production lot to scenarios that typical distributors don’t consider—opening a pathway for our customers to avoid the hassle of moldy, clumped, or degraded product.

    Our View of Future Developments

    Because we both manufacture and troubleshoot 3-Boc-Aminomethylpyrrolidine, we keep an eye on how research evolves and adjust production accordingly. Interest in advanced combinatorial chemistry will likely shift the scale and sometimes the purity requirements for protected amines. We plan upgrades in both process equipment and analytical technologies with an eye on these changes, investing while keeping doors open for feedback from dedicated research users.

    We also keep regulatory trends in mind and consider downstream needs, making sure our documentation supports both traditional synthesis and uses in regulated environments. With a foundation in chemical manufacturing that stretches back decades, we’ve grown used to adapting quickly. Customers who visit our plant see the difference first-hand — our people move with purpose, their notes are accurate, and issues get solved face-to-face, not brushed aside in form emails.

    Final Thoughts—Manufacturing with Purpose

    Producing 3-Boc-Aminomethylpyrrolidine is more than a technical exercise for us. It’s a blend of craftsmanship, process discipline, listening, and steady learning. Every gram we produce reflects daily choices about raw material sourcing, equipment maintenance, and operator training. We never lose sight of the chemists and process engineers who trust us for the compounds that fuel their research breakthroughs.

    Our facility stands behind each label and batch slip with real technical know-how and the lived experience of preventing, rather than reacting to, problems. Whether on the scale of milligrams or kilos, 3BAMP from our plant carries the mark of direct involvement and careful stewardship. We welcome questions, share test data, and look for every chance to improve—because that’s what builds long-term partnerships based on trust and consistent results.