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2-Chloroallyl N,N-Diethyldithiocarbamate

    • Product Name 2-Chloroallyl N,N-Diethyldithiocarbamate
    • Alias Diethyldithiocarbamic acid 2-chloroallyl ester
    • Einecs 221-142-7
    • 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

    603208

    Product Name 2-Chloroallyl N,N-Diethyldithiocarbamate
    CAS Number 6214-69-3
    Molecular Formula C8H14ClNS2
    Molecular Weight 223.79 g/mol
    Appearance Yellow to brown liquid
    Boiling Point 112-114°C at 0.2 mmHg
    Density 1.166 g/cm³
    Solubility Soluble in organic solvents; insoluble in water
    Refractive Index n20/D 1.563
    Flash Point Greater than 110°C
    Purity Typically ≥97%

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

    Packing & Storage
    Packing A 500-gram amber glass bottle with a secure screw cap, labeled with chemical name, hazard warnings, and handling instructions.
    Shipping 2-Chloroallyl N,N-Diethyldithiocarbamate is shipped in tightly sealed containers, protected from moisture and light. The package complies with all relevant hazardous material regulations, clearly labeled with hazard warnings. Shipping is done via certified carriers, ensuring careful handling to prevent leaks or spills, and includes safety documentation for proper storage and transport.
    Storage 2-Chloroallyl N,N-Diethyldithiocarbamate should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizing agents. Protect from moisture and direct sunlight. Store at ambient temperature and label the container clearly. Use secondary containment to prevent accidental spills or leaks.
    Application of 2-Chloroallyl N,N-Diethyldithiocarbamate

    Applications of 2-Chloroallyl N,N-Diethyldithiocarbamate in Industrial Manufacturing

    2-Chloroallyl N,N-Diethyldithiocarbamate has proven specialization in several industrial sectors due to its molecular structure and functional group characteristics, supporting repeatable performance in highly regulated downstream applications. As a direct manufacturer, we precisely control purity and particle size to meet demanding requirements, working closely with global partners who integrate this intermediate into key manufacturing processes.

    1. Rubber Vulcanization Accelerators

    Manufacturers in the synthetic and natural rubber industries leverage 2-Chloroallyl N,N-Diethyldithiocarbamate as a secondary accelerator for sulfur vulcanization. Its ability to improve cross-linking density while reducing scorch risk allows downstream users to achieve desired elasticity profiles and aging resistance in technical rubber grades. This material integrates directly in compounding operations, and dosage must be carefully coordinated with the accelerator masterbatch composition and the presence of other dithiocarbamates for precise cure kinetics.

    Industry compliance standards

    • ISO 23936-2:2011 (Petroleum, petrochemical and natural gas industries — Non-metallic materials in contact with media related to oil and gas production)
    • ASTM D3182 (Standard Practice for Rubber—Materials, Equipment, and Procedures for Mixing Standard Compounds and Preparing Standard Vulcanized Sheets)
    • REACH Regulation (EC) No 1907/2006 - SVHC monitoring for dithiocarbamates

    Typical usage ratio

    • 0.4–1.2 phr (parts per hundred rubber), adjusted per rubber grade, formulation synergy, and desired cure profile

    Downstream process integration

    • Direct dry blending or pre-dispersion within masterbatch during internal mixer stage before mill or extruder processing

    Final product types

    • Automotive hoses
    • Seal gaskets
    • Conveyor belts
    • Rubber-coated fabrics

    2. Industrial Biocide Synthesis Intermediates

    The compound serves as a core intermediate in the production of dithiocarbamate-based biocidal agents utilized for microbially influenced corrosion protection in water treatment and oilfield systems. Its chemical reactivity enables downstream producers to synthesize organometallic complexes with specific antifungal or antibacterial properties, meeting strict safety and efficacy testing for industrial water circuits and enhanced oil recovery pipelines.

    Industry compliance standards

    • BPR (EU Biocidal Products Regulation 528/2012) for active substance dossiers
    • APVMA Chemical Product Standards (Australia) for biocidal actives
    • US EPA 40 CFR Part 158 (Data Requirements for Biocides and Pesticides)

    Typical usage ratio

    • 60–90% conversion rate into downstream biocidal active ingredient; actual batch charge is tailored to target biocide purity and byproduct minimization

    Downstream process integration

    • Introduced in the aqueous phase synthesis stage, followed by controlled precipitation and purification to isolate biocidal actives, then formulated into dispersions or concentrates

    Final product types

    • Oilfield water treatment biocides
    • Industrial cooling water preservatives
    • Antimicrobial coatings for pipelines and storage tanks

    3. Pesticide Active Ingredient Manufacture (Fungicidal Formulations)

    Downstream agrochemical companies us this dithiocarbamate derivative as a synthesis precursor for constructing mancozeb-like or custom fungicide molecules. Its selective reactivity provides a controlled pathway to high-purity actives, with robust crop safety profiles and broad-spectrum disease coverage. Formulators depend on batch consistency and validated impurity controls to pass agrochemical residue limits and registration protocols.

    Industry compliance standards

    • FAO/WHO Specifications for Agricultural Pesticides (FAO/WHO Joint Meeting on Pesticide Specifications)
    • China GB 2763 Maximum Residue Limits for Pesticides in Food
    • EU Regulation (EC) No 1107/2009 on Plant Protection Products
    • US EPA PRN 98-10 data requirements for new active ingredients

    Typical usage ratio

    • Batch reaction use at 1.0–1.3 molar equivalents per targeted fungicidal core; adjusted for chain-length and cross-reactivity in multi-stage synthesis

    Downstream process integration

    • Charged during initial condensation step in the active ingredient synthesis reactor, followed by controlled hydrolysis and subsequent formulation into wettable powders or suspension concentrates

    Final product types

    • Fungicidal technical concentrates
    • Wettable powder and flowable pesticide formulations
    • Treated seed protection coatings

    4. Metalworking Fluid Additives Manufacture

    In advanced metalworking fluid manufacturing, specialty chemical formulators utilize our material as a precursor for producing corrosion inhibitor components. Precise addition controls sulfur donor content and chelating behavior, extending tool life and improving the in-service stability of water-miscible and neat oil systems. Careful tracing from raw material handling to compounding underpins product safety for workplace and downstream user environments.

    Industry compliance standards

    • OEM-specific coolant requirements (Cincinnati Milacron, Ford WSS-M2C197-A)
    • TRGS 611: Occupational Safety Limitations on Water-miscible Metalworking Fluids (Germany)
    • ASTM E686 (Formulation of Metal Removal Fluids for Evaluation of Anticorrosion Additives)

    Typical usage ratio

    • Precursor charge correlates to target corrosion inhibitor at 0.1–0.4% by total fluid weight; varied for finished oil type and desired washing/corrosion balance

    Downstream process integration

    • Reacted in the corrosion inhibitor precursor synthesis stage, then post-blended or emulsified into metalworking fluid bases before quality filtration and packaging

    Final product types

    • Water-miscible metalworking fluids
    • Neat cutting oils with metal passivation packages
    • Hydraulic lubricant blends for machining centers
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    Certification & Compliance
    More Introduction

    Introducing 2-Chloroallyl N,N-Diethyldithiocarbamate: A Closer Look from a Manufacturer’s Perspective

    The Practical Value of 2-Chloroallyl N,N-Diethyldithiocarbamate

    Years spent on factory floors and in the chemical lab have shown us the real impact of subtle tweaks in molecular design. 2-Chloroallyl N,N-Diethyldithiocarbamate isn’t your typical dithiocarbamate compound. While many dithiocarbamates work as fungicides and accelerators in rubber, this molecule stands out for its reactivity and specific fit in certain industrial syntheses. Our production lines focus on batch consistency, knowing that industries relying on this compound can’t afford surprises.

    At our facility, every lot of 2-Chloroallyl N,N-Diethyldithiocarbamate undergoes a careful review for both purity and key properties because downstream effects in processes like polymer modification, crop protection, and specialty chemical synthesis hinge on molecular uniformity. Several decades in the business taught us that trace impurities—even well below one percent—can produce headaches later on, either by affecting product performance or regulatory compliance.

    Specifications and What Matters

    Standard production offers 2-Chloroallyl N,N-Diethyldithiocarbamate as a light yellow to pale green crystalline powder. The melting point, solubility in organic solvents, and residual moisture all get checked as part of the quality process. Analysts kick off each shift with equipment calibrations. They perform titrations, run GC and HPLC analysis, and make sure our product exceeds the minimum purity levels demanded by formulators.

    Unlike many commodity chemicals, this compound demands attention to detail during packaging. Trace water contamination or exposure to sunlight alters the dithiocarbamate structure and impairs its function. That’s why drums, bags, or intermediate bulk containers seal tightly. Packers store them only in humidity-controlled rooms set aside specifically for dithiocarbamates.

    What distinguishes one manufacturer’s material from another’s isn’t just a laboratory spec sheet—it’s repeated performance in real-world handling and applications. Our batches show peak purity through every performance check. Feedback from customers in agrochemical, polymer, and specialty chemical fields consistently confirms tight control over byproduct formation and stability. Technicians don’t hesitate to rework or discard any production run that hints at contamination or instability.

    The Cutting-Edge Difference in Our Approach

    Our technical specialists collaborate with clients who press for improved environmental and safety profiles. In producing 2-Chloroallyl N,N-Diethyldithiocarbamate, solvent selection and waste minimization rank higher in priority than just turning out tons per day. We opt for greener synthesis routes where possible, reducing generation of halogenated byproducts and using closed systems to capture vapors.

    Old habits die hard. For some manufacturers, small improvements in process safety or yield take a back seat to high output, but experience shows that near-misses in the plant rarely stay harmless. Our crew constantly reviews material handling procedures, automating heavy lifts and monitoring emissions with real-time sensors because the dithiocarbamate family brings acute toxicity risks, especially during synthesis and purification.

    Working with 2-Chloroallyl N,N-Diethyldithiocarbamate requires a boots-on-the-ground understanding of how exothermic the final condensation step becomes and how quickly decomposition can occur if conditions go off-target. Every shift supervisor drills operators on lock-out/tag-out and on emergency venting, not just as compliance boxes but out of respect for lessons learned the hard way.

    Field engineers work with downstream users to ensure that transfer lines, pumps, and storage tanks don’t pick up leachables that might catalyze unwanted side reactions. Over time, this feedback loop leads to smaller particle-size cuts, tighter filtration, and additional quality checkpoints. It’s this steady grind that builds confidence in our chemical supply for customers who can’t afford variable performance in their critical processes.

    Why Industry Chooses This Molecule

    Unlike simple dithiocarbamates, the 2-Chloroallyl group grants this molecule a unique blend of reactivity and persistence. Our clients select it for very targeted transformation reactions. For instance, in crop protection, its backbone resists breakdown compared to alternatives, helping products stick around just long enough for their intended function.

    In rubber compounding, its role as an accelerator results in softer vulcanization curves and greater control over physical properties. Chemists working at the bench know that more common thiurams and other dithiocarbamates produce more off-gassing and leave residues that complicate quality assurance down the chain.

    Each batch ships with a traceability record—down to the raw material origins—because customers want assurance that the same molecule composition delivers the same outcome every time. Direct phone and video support help customers dial in production when a small temperature or time shift in a recipe leads to unexpected color or viscosity changes. The level of support separates manufacturers with a deep track record from those shipping anonymous bags with generic documentation.

    Regulatory frameworks for dithiocarbamates tighten yearly. We maintain a dedicated team watching changes in international tolerance levels for residues, process impurities, and allowable contaminants. Product stewardship isn’t just laboratory jargon. Our experts walk users through changes in permissible exposure limits, making sure new product development can pass upcoming rule changes and remain safe for field workers.

    Learning from Generations of Manufacturing

    Teams on the ground inherit lessons from those who worked the lines before them. We invest in process upgrades, drawing on experience to limit batch variation and streamline cleaning protocols, not because of marketing but because every unscheduled shutdown translates into lost customer trust and wasted material. Nothing beats watching an experienced plant hand explain why a filter should be swapped out a day early or why a process vessel needs extra rinsing after each cycle.

    Customers sometimes visit to walk the plant and follow their order from raw material charging to multi-step synthesis, crystallization, filtering, drying, and packaging. These visits keep our engineers honest. Anything out of place—an imprecise valve, a missing tag—gets fixed on the spot. This culture developed over years of delivering highly specialized orders, some for demanding multinational clients, others for scrappy startups scaling a new product.

    Safety and Environmental Responsibility in Everyday Production

    2-Chloroallyl N,N-Diethyldithiocarbamate production demands vigilance. The risks involve not just the target molecule, but also secondary gases and trace run-off. Each shift, operators check detectors for carbon disulfide and chloro-organic vapors. Wastewater management plays a huge role; our wastewater pre-treatment system employs multi-stage separation and regular sampling, ensuring nothing leaves the site without careful analysis.

    Neighbors and regulators visit frequently, auditing everything from spill containment to record-keeping on delivery. We re-train staff yearly and carry out dry-run emergencies, using feedback from these audits to toughen procedures and close loopholes. A few years ago, we learned the limits of relying on supplier certificates alone, so we routinely back-check the purity of incoming precursors.

    Working with Customers—Beyond Raw Supply

    Supplying a technical compound like 2-Chloroallyl N,N-Diethyldithiocarbamate rarely stops with shipping to the warehouse. Downstream users often ask about alternatives for process improvement. Because we manufacture rather than trade, our technical staff can provide detailed support—from optimizing reactor conditions to troubleshooting persistent byproduct formation.

    Long-term buyers sometimes invite us to site visits, whether to refine dosing equipment, reevaluate storage methods, or troubleshoot blending inconsistencies. Field reports, coat thickness tests, rubber tensile data, and ag-field efficacy figures loop back to our product managers and R&D teams. The advantage of having walked through every phase from synthesis to application lies in understanding not just the product itself, but its real behaviors out in the world.

    Comparing with Other Dithiocarbamates on the Market

    While the broader dithiocarbamate family shares core performance benefits—strong metal complexation, reactivity in polymer processing, and efficacy in pesticidal formulations—small backbone differences set their utility apart. The unique 2-Chloroallyl group brings better stability in the presence of certain reagents and a slower hydrolysis profile compared to straight-chain or methyl-substituted relatives.

    This matters especially in applications needing longer-lasting performance under field or processing conditions. Replacing generic dithiocarbamates with 2-Chloroallyl N,N-Diethyldithiocarbamate can reduce the frequency of product reapplication and slash waste at the endpoint. Bench studies showed lower formation of certain volatile organic compounds during heating, a frequent feedback point from clients aiming to improve air quality around their jobsites or plant floors.

    In rubber compounding, users switching from older dithiocarbamate accelerators to our product noted shorter cure cycles and fewer off-colors, while minimizing nitrosamine generation. That kind of process detail matters because nitrosamines prompt regulatory scrutiny and can add unexpected compliance costs later. Our approach—stress-testing every lot to mimic customer curing conditions—builds confidence that no surprises appear halfway through production or in end-use testing.

    Solving Current Challenges: What We’ve Learned

    Crafting a better version of 2-Chloroallyl N,N-Diethyldithiocarbamate has always meant balancing safety, yield, and downstream customer needs. Emerging contaminants, more stringent toxicity standards, and calls for greener chemistry continue to shape our response.

    On the factory end, rolling out automated controls now captures deviations within seconds rather than hours. Remote monitoring flags temperature spikes, pressure drops, or flammable vapor levels, letting operators intervene before small issues become big ones. In our wastewater process, targeted carbon beds and new catalytic scrubbing units trap nearly all trace organics not retained in earlier steps, yielding cleaner discharge, fewer permit worries, and stronger relationships with authorities and neighbors.

    On the product development side, ongoing trials with alternate starting materials have begun producing comparable yields with reduced hazardous byproduct streams. Our R&D team works alongside suppliers to trial these raw materials as soon as they become available, running pilot batches in parallel with full-scale output so customer supply remains steady during the transition.

    All these steps help avoid problems our industry saw in the past—recalls, product quarantines, and compliance holds that cost reputation and client trust. Sharing test data and upgrade stories may seem less flashy than big marketing campaigns, but this habit keeps us accountable to the organizations that rely on our chemical.

    The Future We See for 2-Chloroallyl N,N-Diethyldithiocarbamate

    Future outlook for 2-Chloroallyl N,N-Diethyldithiocarbamate hinges on both regulatory context and user-driven performance gains. International crop residue standards, newer rubber-formulation guidelines, and restrictions on certain byproducts will keep raising the bar for all players in this segment. Manufacturers must stay ahead through steady investment in equipment, people, and continuous improvement programs.

    Collaborating actively—rather than treating each sale as a one-off—puts us in a spot to support clients adapting to evolving standards. We receive field test results, adapt recipes, and upgrade product info sheets as needed. Our chemists and plant workers know these changes firsthand, responding to real requests from users rather than chasing theoretical applications.

    As the sector expects greener chemistry, supply continuity, and technical reliability, our philosophy won’t stray far from the basics: investment in practical experience, respect for both process and product, and an open line with customers who rely on the quality behind each drum or bag. 2-Chloroallyl N,N-Diethyldithiocarbamate, produced and delivered with an eye on both chemical precision and shared safety, deserves the careful attention only manufacturers can provide.