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Bis(2-Chloroethyl)Methylamine

    • Product Name Bis(2-Chloroethyl)Methylamine
    • Alias HN2
    • Einecs 206-047-9
    • 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
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    Specifications

    HS Code

    865027

    Chemicalname Bis(2-Chloroethyl)Methylamine
    Othernames HN2, Nitrogen Mustard 2, Mechlorethamine
    Molecularformula C5H11Cl2N
    Molarmass 156.06 g/mol
    Appearance Colorless to pale yellow oily liquid
    Boilingpoint 217°C (423°F)
    Meltingpoint -28°C (-18°F)
    Density 1.13 g/cm³
    Solubilityinwater Soluble
    Casnumber 51-75-2

    As an accredited Bis(2-Chloroethyl)Methylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 500 mL amber glass bottle is tightly sealed, labeled "Bis(2-Chloroethyl)Methylamine," with hazard warnings and safety instructions.
    Shipping Bis(2-Chloroethyl)Methylamine must be shipped as a hazardous material due to its toxicity and corrosiveness. Use appropriate UN-approved containers, label with relevant hazard warnings, and ensure compliance with national and international regulations (such as DOT and IATA). Shipment requires documentation, specialized handling, and may involve restrictions or permits.
    Storage Bis(2-Chloroethyl)Methylamine should be stored in a tightly sealed container, clearly labeled, and kept in a cool, dry, well-ventilated area away from direct sunlight, heat sources, and incompatible materials like strong oxidizers. Access should be restricted to trained personnel, and appropriate spill containment measures should be in place due to its toxic and potentially hazardous nature.
    Application of Bis(2-Chloroethyl)Methylamine

    Applications of Bis(2-Chloroethyl)Methylamine in Industrial Manufacturing

    Bis(2-Chloroethyl)Methylamine finds use in several highly regulated and technically demanding industrial sectors. As a manufacturer dedicated to stringent process control and industry compliance, we supply this material to downstream customers who leverage its unique chemical properties in specialized applications. Below, we detail major application scenarios, highlighting formulation specifics, integration within production lines, and connections to end-use markets.

    1. Synthesis of Chemotherapeutic Intermediates

    Pharmaceutical manufacturers utilize Bis(2-Chloroethyl)Methylamine as a key intermediate for producing alkylating agents, specifically targeting cytostatic drugs for oncology applications. The compound enters the synthetic route during the formation of nitrogen mustard classes essential for injectable and oral chemotherapy medications. Production adheres to strict regulatory environments, requiring comprehensive documentation and validated cleaning procedures during batch transitions to mitigate cross-contamination.

    Industry compliance standards

    • EU GMP Annex 1
    • United States Pharmacopeia (USP) General Chapters
    • ICH Q7 for API manufacture
    • EMA Guidelines for starting materials

    Typical usage ratio

    • Ranges from 2%—12% of total batch volume; precise ratio depends on molecular yield requirements and downstream purification efficiency.

    Downstream process integration

    • Charged at the alkylation or cross-linking step within a closed reactor system. Typically, the raw material is dissolved and reacted with a nucleophilic substrate to introduce functional groups for subsequent molecule elaboration.

    Final product types

    • Injectable alkylating agents (e.g., for hematological malignancies)
    • Oral cytostatics for solid tumor therapy
    • Research-grade analytical standards for oncology labs

    2. Intermediate for Agricultural Protection Ingredients

    In agrochemical synthesis, Bis(2-Chloroethyl)Methylamine contributes as a building block for certain active herbicides and fungicides. Downstream formulators select this material for cases demanding specific reactivity and stability profiles in final crop protection agents. Quality control teams verify each batch for residual solvent content and purity before integration to avoid residues in harvestable crops, while formulation engineers adjust dosage according to target compound requirements and regional regulatory tolerances.

    Industry compliance standards

    • FAO/WHO JMPR Residue Guidelines
    • ISO 9001 for process traceability
    • China GB 2763 Pesticide MRL list
    • EPA Registration Requirements (40 CFR Part 158)

    Typical usage ratio

    • 0.8%—4.5% of total technical concentrate. The range varies according to the molecular pathway used for the target pesticide and the required conversion yield.

    Downstream process integration

    • Added during the precursor chlorination and amination steps in multi-stage synthesis. Used under controlled temperature and agitation to ensure full reaction with base molecules.

    Final product types

    • Systemic fungicide actives (e.g., seed treatment concentrates)
    • Herbicidal intermediates for cereal and rice crops
    • Agrochemical pre-formulations for further blending

    3. Cross-Linking Agent in Industrial Polymer Synthesis

    Specialty polymer manufacturers deploy Bis(2-Chloroethyl)Methylamine within controlled cross-linking processes for resins and engineering plastics. This application leverages its dual chloroalkyl functional groups, enabling the formation of robust three-dimensional networks in select coating resins, adhesives, and insulation foams. Operators monitor residual monomer levels and conduct rigorous in-process sampling, as final mechanical properties depend directly on cross-linking uniformity and ratio accuracy.

    Industry compliance standards

    • REACH Regulation (EC 1907/2006)
    • UL 94 Flammability Classification (for insulation foams)
    • ISO 14001 Environmental Management
    • GOST 10779-80 for polymer blends (where required)

    Typical usage ratio

    • 0.5%—3.2% of total monomer weight, adjusted to achieve optimal cross-link density and targeted curing rates.

    Downstream process integration

    • Metered into the polymerization reactor during the pre-polymer or chain extension stage, before thermal or UV initiation of curing cycles.

    Final product types

    • Industrial epoxy and urea-formaldehyde resins
    • High-performance structural adhesives
    • Closed-cell polyurethane foam panels

    4. Alkylating Reagent for Organic Synthesis Services

    Contract manufacturing organizations (CMOs) and fine chemical producers purchase Bis(2-Chloroethyl)Methylamine as an alkylating reagent for bespoke molecule construction and intermediates used in dyes, research reagents, and custom order syntheses. Each order mandates batch-level tracking, validated transfer protocols, and close documentation of all synthesis variables to support customers’ traceability demands and regulatory audits.

    Industry compliance standards

    • IPEC-GMP for excipient production
    • ISO 17025 for QC laboratory calibration
    • REACH substance usage reporting where applicable
    • National Inventory Listings (e.g., TSCA for the US, IECSC for China)

    Typical usage ratio

    • 0.1%—10%, varying widely with the complexity and molar proportion of targeted end products in the customer’s synthesis brief.

    Downstream process integration

    • Delivered to the batch reactor during nucleophilic substitution stages, typically under nitrogen atmosphere. Timing and ratio strictly controlled according to process development protocols specified by clients.

    Final product types

    • Colored dye intermediates for textile and pigment industries
    • Organic laboratory reagents and building blocks
    • Performance chemical intermediates for specialty applications
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    Certification & Compliance
    More Introduction

    Introducing Bis(2-Chloroethyl)Methylamine: The Manufacturer’s Perspective

    An Established Cornerstone in Our Production

    Seeing decades of change on the chemical production floor, Bis(2-Chloroethyl)Methylamine continues to play a central role in both established and newly emerging synthetic pathways. In our facility, this compound moves through the same tight-knit network of vessels, glass-lined reactors, and distillation columns where we have refined our protocols through years of experience. Our team has learned, through trial and success, how to keep purity high and waste low. That journey shapes how we talk about this product, both for our own operation and for those downstream who depend on quality and consistency.

    Production Realities: Consistency and Control

    Every batch starts at the raw input stage. Handling dichloroethane, methylating agents, and their reaction with ammonia or other primary amines requires both preparation and discipline. You only get a quality Bis(2-Chloroethyl)Methylamine product when you can control temperature swings, maintain precise molar ratios, and exclude moisture and oxygen at every point—experience has proven any shortcut here can lead to failure, whether through yield loss, contamination, or safety issues. Our model represents a typical colorless to pale yellow liquid, with a purity above 99% as confirmed by GC and NMR. Water content, determined by Karl Fischer titration, stays below 0.2%, ensuring stability in storage and during subsequent synthesis steps.

    Over the years, we have improved our fractional distillation routines and regularly audit trace metal content. Even at ppm levels, impurity buildup can undermine selective alkylations or lead to catalyst poisoning further down the line. We don’t need a marketing pitch for this, because the end-users from the pharmaceutical and specialty chemicals sector call us quickly at any sign of inconsistency—standing by our processes maintains trust and keeps their projects running.

    Comparing Bis(2-Chloroethyl)Methylamine with Related Intermediates

    Bis(2-Chloroethyl)Methylamine sets itself apart from simple alkyl chlorides and from its close relatives, like Bis(2-Chloroethyl)ethylamine or the parent mustard compounds. The added methyl group changes electron density on the nitrogen, which alters both reactivity and the profile of potential derivatives. In chemical transformations, this adjustment can open specific doors: less steric hindrance compared to bulkier alkyl groups, but greater selectivity versus the unsubstituted version. The product flows between our reactors courtesy of custom peristaltic pumps and carefully shielded transfer lines, as we learned quickly that leaks even at moderate temperatures bring headaches in the form of vapor exposure and corrosion.

    Other manufacturers may offer a range of similar compounds, but our focus centers on this methylated version for its role in well-established alkylation protocols and targeted synthesis of compounds for agricultural, pharmaceutical, and polymer fields. Unlike higher analogs that introduce safety complications or introduce unpredictable byproducts, Bis(2-Chloroethyl)Methylamine allows for more predictable process controls. At the bench scale, this translates to reproducibility and more direct process optimization. In plant practice, the operational simplicity saves both labor and maintenance headaches.

    Usage: From Lab Bench to Reactor Hall

    Users draw on Bis(2-Chloroethyl)Methylamine for its role as an alkylating agent, especially where the nitrogen’s lone pair can act as a nucleophile in downstream functionalization steps. Our clients typically build on this backbone to form quaternary ammonium salts, or to explore snap-in nitrogen heterocycles that lead into new active pharmaceutical ingredients or specialty monomers. Those working on exploratory synthesis appreciate the moderate reactivity, providing effective transformation without excessive side reactions. On our end, we keep technical staff on hand to answer application-specific queries. Those might not land in glossy brochures, but we know how this molecule behaves—both in the Schlenk line and in 2,000-liter vessels under scale-up conditions.

    Where the compound stands apart is its adaptability in the hands of a skilled chemist. Some choose it over more volatile or harsher alternatives for workplace safety, minimizing waste gas production and controlling exposure levels inside the production hall. The methylated nitrogen facilitates selective alkylation in certain ring closures and N-substitutions, while still offering straightforward purification by vacuum distillation. Over time, we’ve cataloged solutions for users seeking not only the base chemical, but insights on reaction parameters: maintaining anhydrous conditions, buffer additives, ideal pressure regimes, and quenching protocols.

    Source Matters: Manufacturing at Scale, Not Distribution

    There’s no substitute for producing at source. We’ve witnessed how reliance on third-party traders often leaves clients asking about traceability, documentation, or consistency. By running our own continuous lines and batch reactors in the same facility, we guarantee single-lot documentation, upstream control, and rapid address of technical issues. Local quality teams track both in-process samples and outgoing lots, analyzing not just for purity but for appearance, odor threshold, and chemical compatibility with typical solvents.

    Beyond technical specification sheets, we maintain direct feedback loops with users. This means fielding queries on how trace water or trace acid content could impact a novel synthesis, or whether recent regulatory changes affect handling and shipping. We keep MSDS documentation live and updated, but always with direct input from those actually handling the material on the shop floor. Our approach comes from facing the reality: laboratory-scale advice often falls short in manufacturing. We support our users, not just by shipping drums, but by troubleshooting scale-up problems as they arise.

    Real Problems, Hands-On Solutions

    Chemical manufacturing always brings challenges, from raw material quality shifts to equipment downtime and evolving customer needs. We have prioritized investments in in-house analytics instead of relying solely on third-party assays. By integrating GC-MS and HPLC alongside classic wet chemistry checks, we remain alert to subtle batch-to-batch variations that can impact reactivity, solubility, or color. This hands-on model gives us flexibility: if a specific amine contaminant trends upward, we can trace it back to process adjustments and fine-tune our distillation cuts in real time.

    All these steps aim at practical goals. Synthetic chemists, whether at the gram scale or in multi-ton campaigns, depend on reliable intermediates that behave as expected. One customer’s process might require dry, neutral amine; another must avoid residual halides. Each use case feeds back into our routine, and informs how we continually refine both process and product grade. Waste reduction—whether from side reactions or excess purification steps—keeps costs down and environmental burdens lower. Our technical team, many of whom started in hands-on production, will adapt process controls quickly if presented with a novel end-use challenge.

    Product Evolution: Learning from Each Campaign

    Producing Bis(2-Chloroethyl)Methylamine never stands still. In the early years, batch yields fluctuated, driven by inconsistent cooling rates or moisture infiltration. We adapted by installing enhanced in-line drying and closed-loop temperature control. Lab teams contributed improved titration methods for purity measurement, bringing result timeframes down and ensuring rapid feedback. Trace impurity tracking—essential for pharmaceutical applications—calls for both vigilance and willingness to modify procedures if customer feedback signals a new requirement.

    Some industries demand unique grades—lower halogen content, higher clarity, or compliance with a standard that wasn’t even on our radar a few years back. Adjusting to meet those needs draws on the depth of experience inside our facility: chemical engineers, operators, and senior analytical chemists ready to develop new SOPs rather than try to force-fit old methods. We welcome these challenges, since they often drive broader improvements across the plant.

    Regulatory and Environmental Commitments

    Working inside chemical manufacturing brings a daily awareness of regulatory pressures. Bis(2-Chloroethyl)Methylamine sits within a landscape shaped by both environmental and safety regulations—these shift in response to emerging toxicology data, updates in workplace exposure limits, or new international shipping protocols. We have built compliance into our operations, relying on direct engagement with oversight agencies and tracking all major updates in real time. Environmental monitoring in and around the plant, solvent recovery, and real-time release tracking support both our license to operate and community confidence in our site.

    This experience shapes our batch approval system. Automated data capture feeds directly into compliance documentation, reducing bottlenecks and improving our audit readiness. No shortcut here replaces genuine familiarity with regulatory protocols and recordkeeping. Waste streams, whether aqueous or organic, undergo rigorous treatment and verification—our commitment goes as far as holding product back if outlier tests show unexpected profiles. That approach has built trust, both inside our walls and with those customers whose own certifications depend on us maintaining the highest standards.

    Industry Trends: Steering with Knowledge

    Every year brings shifts: supply chain turbulence, changing demand, or new entrants in downstream technology. Bis(2-Chloroethyl)Methylamine end-users move quickly, pivoting between pharmaceuticals, specialty coatings, and even pilot-scale agricultural chemical projects. Our production team stays tuned to these trends, benchmarking output both for traditional markets and for customers piloting next-gen applications reliant on nitrogen heterocycles or precision alkylation. Often, engagement runs deep—tech support teams walk users through scale-up bottlenecks, and joint troubleshooting sometimes reveals opportunities for new collaborative process optimization.

    Learning directly from customer experience drives progress. Recent trends suggest increasing scrutiny on trace impurity profiles, low VOC requirements, and solvent compatibility. Because we manage synthesis from the ground up, we can respond with both process tweaks and documentation, all without waiting for secondary suppliers to catch up. That edge keeps our product at the center of both established and pioneering manufacturing streams.

    Future Directions: Innovation Rooted in Experience

    As competition increases and regulatory landscapes shift, we keep returning to the same principle: manufacture with integrity, adapt with speed, and support with real expertise. New investments in flexible production lines, tighter process analytics, and sustainable energy draw on our manufacturing background, not just accounting projections. Whether the next advance calls for higher-purity lots, new formulation protocols, or an entirely different isolation step, our past teaches us to face each challenge head-on. The future demands that each run be more efficient, safer for our teams and communities, and more transparent to users trusting our material.

    Bis(2-Chloroethyl)Methylamine represents more than a batch number: it reflects years spent tackling real-world production concerns, from runaway reactions to the simple headache of pump blockages. We know the difference between process chemistry as written and as performed, and owe our success to the skill, care, and continued curiosity of the people driving our plant, day and night. Customers rely on our product not just for its technical grade, but for the stability and predictability born of that hands-on manufacturing culture.

    Practical Support and Real Accountability

    Feedback from users remains central to ongoing improvement. Whether the question lands in R&D or on the production shift leader’s desk, our response draws on personal experience. We have set up clear channels for users in need of batch certification data, technical troubleshooting, or urgent product release. Our own staff is as quick to flag issues as our customers—the standard for product and service reflects not just market competition but pride in delivering genuine value.

    That’s the true difference behind a manufacturer-supplied Bis(2-Chloroethyl)Methylamine. Where others see a generic commodity, we see challenges met, expertise built, and a stack of procedural checklists hard-won through years of continuous operation. Our staff speaks not only in theoretical purity numbers, but in the language of lived solutions—leak-preventing gaskets, new distillation sequence, or the best way to load a reactor for minimal downtime. Every shipment headed out reflects the knowledge, caution, and confidence learned at scale.

    Looking Ahead...

    In a changing chemical landscape, those who produce, troubleshoot, and improve their own processes remain best placed to supply reliable, adaptable, and trustworthy batches of technically demanding compounds. Bis(2-Chloroethyl)Methylamine will remain central to many synthetic routes, so we look ahead—readier than ever for new regulatory requirements, formulation demands, or application breakthroughs, all backed by hands-on experience and honest engagement with our customers and colleagues. Every day, that perspective shapes both what we make and how we help others to create new value in the world of chemical synthesis.