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2-Bromobenzylamine Hydrochloride

    • Product Name 2-Bromobenzylamine Hydrochloride
    • Alias 2-Bromo-1-phenylmethanamine hydrochloride
    • Einecs 241-365-9
    • 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

    692965

    Product Name 2-Bromobenzylamine Hydrochloride
    Cas Number 20795-98-0
    Molecular Formula C7H9BrN·HCl
    Molecular Weight 224.52 g/mol
    Appearance White to off-white crystalline powder
    Melting Point 182-186 °C
    Solubility Soluble in water
    Purity Typically ≥98%
    Synonyms o-Bromobenzylamine hydrochloride, 2-Bromophenylmethylamine hydrochloride
    Storage Conditions Store at 2-8°C in a tightly closed container

    As an accredited 2-Bromobenzylamine Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 2-Bromobenzylamine Hydrochloride, 25g, packaged in a sealed amber glass bottle with tamper-evident cap and clear labeling.
    Shipping 2-Bromobenzylamine Hydrochloride is shipped in tightly sealed, chemically resistant containers to prevent exposure to moisture and contaminants. It is packaged according to regulatory guidelines for hazardous substances, with clear labeling. The shipment is handled by certified carriers under controlled conditions to maintain stability and ensure safe delivery.
    Storage 2-Bromobenzylamine 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 (15-25°C). Avoid exposure to incompatible substances, such as strong oxidizers. Proper labeling and secure storage are essential to prevent accidental contact or contamination.
    Application of 2-Bromobenzylamine Hydrochloride

    Applications of 2-Bromobenzylamine Hydrochloride in Industrial Manufacturing

    As the direct manufacturer, we supply 2-Bromobenzylamine Hydrochloride to diverse chemical sectors where stringent compliance, accurate formulation, and integration into advanced synthesis processes are fundamental. We highlight verified downstream manufacturing domains and their exacting requirements for this specialty intermediate.

    1. Active Pharmaceutical Ingredient (API) Intermediate Synthesis

    This compound serves as a key intermediate in the multi-step synthesis of select APIs, including certain antihypertensive and CNS-active compounds. Its reactivity enables benzylamine-derived frameworks, critical for constructing target drug molecules under regulated, cGMP-compliant conditions. Downstream formulators adjust input ratios to achieve high purity and minimal by-product formation, responding strictly to validated route requirements.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • Ph. Eur. and USP Monograph Requirements (as applicable for APIs)
    • EU REACH for raw chemical handling
    • FDA 21 CFR Part 211 for finished pharmaceuticals

    Typical usage ratio

    • 0.8–1.2 molar equivalents per synthetic stage, with ratio adjusted based on target API pathways and yield optimization studies

    Downstream process integration

    • Introduced post-initial aryl bromination, serving as an amination/hydrogenation feedstock in stepwise or one-pot reaction trains under controlled temperatures and inert atmosphere

    Final product types

    • Bulk APIs for cardiovascular, psychiatric, and neuroprotective drug classes

    2. Agrochemical Intermediate Manufacturing

    Major agrochemical producers use this material for the synthesis of specialty pesticides and fungicides, where the benzylamine residue forms the basis for further functionalization. Strict batch control secures reliable conversions and traceability as required by international agricultural input regulations.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • ISO 9001:2015 for quality management in agrochemical synthesis
    • EU REACH for precursor import and use
    • OECD Guidelines for the Testing of Chemicals

    Typical usage ratio

    • 5–15% by weight of total reactants, dependent on target product yield and active ingredient loading requirements

    Downstream process integration

    • Employed after primary brominated aromatic construction, incorporated as an amination reactant under catalytic or base-mediated conditions

    Final product types

    • Technical-grade pesticide and fungicide actives for crop protection blends

    3. Specialty Dye Intermediate Production

    Chemical dye manufacturers integrate this compound in the synthesis of diazo or azo intermediates for advanced textile colorants. The amine group enhances fastness and tunable color properties, directly affecting finished dye molecular structure and consistency. Precision in batching supports compliance with global textile chemical standards.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for restricted substances
    • ZDHC Manufacturing Restricted Substances List (MRSL)
    • ISO 9001 for chemical process management
    • EU REACH for dye precursors and intermediates

    Typical usage ratio

    • 10–30% of the core intermediate mass, with actual inclusion level set by color depth and target application method (disperse, reactive, or acid dye systems)

    Downstream process integration

    • Charged at diazotization or coupling reaction steps, enabling formation of color bodies or linking to chromophores in continuous or batch dye synthesis lines

    Final product types

    • Textile dyes for polyester, nylon, and acrylic fibers

    4. Electronic Chemical Intermediate for Functional Materials

    The electronics industry employs this material as a precursor in the formation of specialized functional materials, such as sensors or conductive polymers. Its amine group supports surface-binding chemistries and fine-tuning of molecular electronics, demanding high batch consistency and trace-level impurity control for device reliability.

    Industry compliance standards

    • RoHS (Restriction of Hazardous Substances Directive 2011/65/EU)
    • IECQ QC 080000 (Hazardous Substance Process Management)
    • ISO 14001 Environmental Management for electronic materials
    • REACH SVHC protocol (if relevant for application circuit)

    Typical usage ratio

    • Widely variable from 0.5% to 5% of formulation mass; final input set by layer thickness, device miniaturization requirements, or sensor selectivity optimization

    Downstream process integration

    • Charged at initial polymer precursor step, coupling to surface ligands, or introduced during spin-coating/pre-polymerization to impart desired functionality in thin-film or bulk material processes

    Final product types

    • Specialty sensors, conductive polymer films, and components for microelectronic assemblies

    5. Fine Chemical Building Block for Research Reagents

    This compound serves as a representative halogenated benzylamine in laboratory-scale synthesis of research reagents, reference standards, and analytical derivatization agents. As an authentic manufacturer, we supply to catalog chemical providers and institutional labs demanding high-purity and full traceability from batch to delivered vial.

    Industry compliance standards

    • ISO 17025 for laboratory chemical traceability
    • Analytical Reagent (AR) Grade Specifications
    • GLP (Good Laboratory Practice) for test materials
    • REACH for laboratory-use chemical classification

    Typical usage ratio

    • Used on-demand, typically as 1–2 molar equivalents in batch preparation of microgram to gram-scale specialty or labeled reagents

    Downstream process integration

    • Added to targeted synthetic steps, often in solution-phase amination or functional group exchange, supporting downstream purification and characterization protocols

    Final product types

    • Research-grade reference standards and analytical derivatization compounds
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    Certification & Compliance
    More Introduction

    2-Bromobenzylamine Hydrochloride: A Closer Look from the Manufacturer’s Bench

    Introduction to 2-Bromobenzylamine Hydrochloride

    Years of hands-on experience producing 2-Bromobenzylamine Hydrochloride have shown its steady importance across high-tech synthesis. Our process for manufacturing this compound delivers a crystalline powder with consistent purity, which we maintain through precise control at every step. This material pulls its weight in more than one area of advanced chemistry—medicinal, agrochemical, and specialty material research all rely on it to do the heavy lifting in building blocks, intermediates, and custom syntheses.

    Reliable Manufacturing: No Shortcuts in Purity or Performance

    Every batch of 2-Bromobenzylamine Hydrochloride reflects detailed quality control. We commit to each run by using high-grade raw materials, right down to the solvents and reagents. The goal is simple: an end product that chemists can use directly without losing time on extra purification. Typical output boasts a purity above 98%, and we regularly analyze for impurities with HPLC and TLC, because nothing ruins a complex synthesis like traces of side-products or uneven melting points.

    The reactions in our plant take place in vessels tailored for heat transfer and tight temperature control. Consistent crystallization techniques lock in the key physical properties: a white to pale cream solid, free-flowing and easy to weigh or dissolve. Moisture and air exposure can affect quality, so we use sealed packaging and climate monitoring from production to storage.

    From Molecule to Lab Bench: Practical Uses in Synthesis

    2-Bromobenzylamine Hydrochloride often finds a home in heterocyclic synthesis, bioconjugation, and elaboration of fine chemicals. Customers who walk through our doors usually have a precise project in mind, often linking aromatic building blocks with amine groups. The bromine atom in the ortho position enables selective functionalization, and chemists appreciate the amine’s ability to act as a nucleophile while the salt form offers additional handling convenience.

    In practical applications, this material enters one-pot syntheses or stepwise preparations for pharmaceuticals—think advanced intermediates where position-specific reactivity pays dividends during further derivatization. Some clients employ it in creating ligands for metal-binding studies, others focus on dye development for complex imaging projects. The hydrochloride salt form presents significant advantages in dose-formulation experiments, especially in research exploring water-soluble amine derivatives.

    Comparing with Similar Compounds

    Having run pilot batches of both base and salt forms, we’ve noted that the hydrochloride salt sees fewer clumping issues, stores longer in humid climates, and gives better reproducibility in batch-to-batch results than free base 2-bromobenzylamine. The alternative—using just the free amine—demands extra handling, especially during scale-up when volatility and odor can present real headaches.

    Some research groups use 4-bromobenzylamine hydrochloride or unsubstituted benzylamine hydrochloride for other reaction patterns, but side-by-side, the 2-bromo variant fills niches where ortho substitution drives reactivity. Halogen placement in the ortho position increases selectivity and leads to different coordination chemistry outcomes—especially when building compounds for high-affinity enzyme studies or assembling scaffolds where regioselectivity matters. Our chemists’ hands have learned the subtle but real handling differences between these closely related compounds.

    Quality That Comes from Experience

    There’s no substitute for on-the-ground testing. We’ve shipped 2-Bromobenzylamine Hydrochloride to labs large and small over the years, listening when synthesis stalls or unexpected results pop up. Over time, we tuned our purification and drying steps to shade out colored contaminants and residual solvents. This means cleaner NMR baselines and less artifact noise during high-sensitivity analytical work, which makes a difference for people measuring in milligrams where every part counts.

    Supply interruptions upend experiments, which is why our plant holds extra raw stock and redundant process lines. Chemists under publication deadlines have come to rely on timely shipments that arrive exactly as described. Traceability and batch documentation sit within arm’s reach for each order; every lot’s journey gets logged from synthesis to packaging, and our quality staff double-checks each release before it leaves the building.

    Challenges and Solutions in Manufacturing

    We’ve faced unexpected challenges. Sometimes, supply for the key 2-bromobenzyl precursor runs thin, causing hiccups. To keep things moving, we work with multiple vetted suppliers and closely test all incoming lots for trace metals or off-color tints. Exothermic phases call for tight thermal monitoring, handled by automated, sensor-backed process controls that reduce safety risks and ensure uniform output.

    Cross-contamination risk remains real when manufacturing structurally similar amines or halogenated aromatics on the same site. We schedule production so lines run a single product class before changeover. Dedicated, closed-system reactors and strict cleaning verifications reduce risk, and staff rotate by expertise, not convenience, when transitioning between product runs.

    Waste isn’t ignored. Side-products rich in halides need neutralization, and amine odors need to be scrubbed from vent streams. In-house treatment and regular emissions monitoring keep our operation within strict local guidelines. Over the years, incremental process adjustments, based on real run data rather than theory alone, slimmed down waste and improved product yield.

    Know-How that Makes a Difference

    Feedback from R&D clients spurs us toward continuous improvement. We’ve supported custom packaging for researchers needing to avoid repeated exposures; small glass vials package the right quantities for high-throughput screening, while options in bulk drums support process chemistry on the pilot scale. Some groups ask for analytical support or help with documentation for regulatory filings, so we built out our technical team to include chemists who not only know the product but also recognize where it sits in evolving chemical innovation cycles.

    We’ve run the compound in-house for applications testing. Its solubility in water and polar organic solvents, such as methanol and ethanol, makes it versatile. Beyond solubility, we observe solid batch performance in condensation reactions and ring closure protocols. Temperature stability tests guide customers on safe heat treatments, critical during high-energy transformations. Our process chemists check in with users post-delivery, learning how actual application environments (humidity, light exposure, storage duration) affect product performance and how these factors steer future production changes.

    Why Chemists Trust Direct Manufacturers

    Decades of real-world lab service show that chemists prefer working with direct producers over traders. Manufacturing 2-Bromobenzylamine Hydrochloride onsite gives us control over quality variables that third-party resellers just can’t access. As a producer, we gain early warning about process drift and get immediate feedback on changes, reducing the lag time that can set research back months. Bulk buyers appreciate knowing where each step took place, who oversaw testing, and how every granule reached the final drum or jar.

    Regulations keep evolving, especially with tightening oversight on aromatic amines and brominated intermediates. Rather than scramble for compliance after the fact, we stay ahead by keeping robust process documentation and supporting customers with up-to-date compliance statements. This preempts delays with customs or environmental scrutiny during shipment, which can get overlooked by intermediaries who never see the inside of a reactor.

    Responsibility in Practice: Environmental and Occupational Safety

    Plenty of offices talk about safety; we measure it by eye and in the lab every day. Handling brominated materials and primary amines means dealing with sharp odors and potential toxicity. We run regular air quality checks on the plant floor and use personal protective equipment that has evolved over the years—long gone are the days of basic gloves and masks. Advanced capture systems keep airborne levels low, and closed powder transfer carts reduce exposure risk.

    Cleanup teams follow a strict log, and chemical-resistant flooring and negative pressure ventilation keep spills from spreading. We run emergency response drills and participate in regional safety networks, learning from incident reports to strengthen our routines. Our team keeps process diagrams and safety data sheets handy in the actual workspaces, not just buried in a binder.

    Waste disposal takes scrutiny, especially as demand for “green chemistry” increases. Partnering with specialized chemical treatment facilities allows us to track every liter of spent solvent and waste salt. We explore secondary use options when possible—for instance, using off-spec batches as feed for other controlled reactions rather than disposal—building incremental improvements into each process cycle.

    Shaping the Future: Insights from the Floor

    Nobody benefits from stagnation, least of all the people running the reactors. Over time, batch data revealed subtle adjustments that tightened crystal size distribution or improved flow properties. When a client flags a reactivity issue or notes an anomaly in their downstream application, we launch internal process reviews, pulling staff from both synthesis and analytics to solve the puzzle.

    Incremental innovation defines our routine. A few years back, user reports highlighted clumping issues during summer months. This led us to test anti-caking additives, only to discover that changing drying profiles delivered the right improvement instead. Listening to what trusted chemists report from the field beats relying solely on specs and sheets. That lesson runs deep in our daily approach.

    New synthesis strategies, such as metal-free coupling techniques or biocatalytic modifications, are tested on pilot batches of our 2-Bromobenzylamine Hydrochloride. As our clients’ demands shift toward more selective and sustainable methods, we adjust raw material sources and process conditions to support these efforts, aiming to fuel fresh research rather than just selling a commodity.

    Support Beyond Shipping: Real Engagement

    Supplying chemicals isn’t just about filling containers. We respond to application questions from global research teams, sharing technical advice drawn from years spent on the plant floor. Whether it’s choosing solvents for a troublesome solubility problem or optimizing workup protocols, sharing firsthand experience helps unlock the next result—and often sparks new process development on our side as well.

    Training for safe lab handling forms a growing part of our conversation with customers. We support university spinouts and established process firms alike with technical workshops and troubleshooting guides, written from hands-on experience, not just compliance handbooks. Our chemists answer questions directly, offering data-backed solutions for safe disposal, storage, and scale-up. Insight from those who manufacture the product shows up in the details—dealing with strong odors, protecting against exposure, and choosing materials compatible with amine hydrochlorides for long-term storage.

    Conclusion: Real-World Experience Drives Reliable Chemistry

    The story of 2-Bromobenzylamine Hydrochloride, at least from this manufacturer’s vantage, isn’t just about numbers on a certificate. It’s about knowing the hands that move it from flask to drum, the choices made behind each process tweak, and the response to every “this batch seems off” call from a research lab. Fact-based production, active process control, and daily engagement with the product at every stage create a compound that doesn’t just exist as a line item—but holds up in real-world chemistry, in real laboratories.

    Producing specialty chemicals like this means constant learning and adaptation. From environmental responsibility to technical troubleshooting and fast shipping, direct manufacturers stake their reputation on quality and reliability tested by daily use, not just paper promises. 2-Bromobenzylamine Hydrochloride, in our experience, shows how deep in-the-field expertise and direct dialogue with users set a foundation for safe, productive, and innovation-driven research throughout the chemistry world.