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N',N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide

    • Product Name N',N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide
    • Alias Sulfuramid
    • Einecs 258-993-8
    • 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

    315935

    chemical_name N',N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide
    molecular_formula C9H12Cl2FN3S2
    molecular_weight 316.25 g/mol
    appearance White to off-white solid
    boiling_point Decomposes before boiling
    solubility Slightly soluble in water, soluble in organic solvents
    storage_conditions Store in a cool, dry, well-ventilated place
    purity Typically ≥98%
    cas_number 108161-84-6
    synonyms Furalaxyl; Dichlofluanid derivative
    hazard_statements May cause skin and eye irritation
    application Intermediate in agrochemical synthesis

    As an accredited N',N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The chemical is packaged in a 100g amber glass bottle with a secure screw cap, labeled with hazard warnings and product details.
    Shipping **Shipping Description:** N',N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide should be shipped in tightly sealed containers, protected from light and moisture. It must comply with relevant hazardous material regulations, including labeling and documentation. Use secondary containment and approved carriers; handle with gloves and eye protection to prevent exposure during transport. Store at room temperature unless specified otherwise.
    Storage Store **N',N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide** in a tightly sealed container, away from direct sunlight, moisture, and incompatible substances such as strong acids and bases. Keep in a cool, dry, and well-ventilated area, preferably in a dedicated chemical storage cabinet. Ensure proper labeling, and restrict access to authorized personnel only. Follow all relevant safety and handling guidelines.
    Application of N',N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide

    Applications of N',N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide in Industrial Manufacturing

    Our production of N',N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide is tailored for industrial customers requiring advanced chemical intermediates for specialized manufacturing sectors. The following application scenarios detail how this material integrates into real downstream production, outlining compliance, usage guidance, process points, and end-use products for each sector.

    1. Synthesis of Selective Agrochemical Fungicides

    Major agrochemical firms use this raw material as a key intermediate when manufacturing sulfur-containing fungicides designed for high-efficacy crop protection. It supports active molecule construction during the synthesis of fluorinated phenylsulfamide derivatives, which are particularly suited for cereal and grape crop disease management. Producers calibrate its ratio based on desired active ingredient yield and target disease spectrum.

    Industry compliance standards

    • FAO Specification on Pesticide Technical Grades
    • ISO 9001:2015 for Quality Management in Agrochemical Manufacturing
    • REACH (EC) No. 1907/2006 Annex XVII for Environmental Safety
    • OHSAS 18001:2007 for Occupational Health in Crop Protection Chemicals

    Typical usage ratio

    • 5.0-18.0% w/w relative to total active ingredient batch; adjusted per disease spectrum, with higher ratios for formulations targeting resistant pathogens

    Downstream process integration

    • Introduced during nucleophilic substitution or coupling reaction stage, typically post-fluorination and prior to final sulfonamide bond assembly

    Final product types

    • Emulsifiable concentrate and wettable powder fungicides
    • Systemic fungicide sprays for wheat, rice, vineyards
    • Seed treatment agents with enhanced environmental stability
    • Active technical materials for custom-formulated plant protection

    2. Intermediate in Pharmaceutical API Synthesis (Non-Human Use)

    Chemical manufacturers employ this material for the synthesis of complex fluorinated sulfamides utilized as intermediates in the veterinary pharmaceutical sector, particularly for medicines targeting parasitic infestations in livestock. It supports molecular modification steps where fluorodichloromethyl functionality imparts required bioactivity and metabolic properties.

    Industry compliance standards

    • Veterinary Pharmacopoeia of the People's Republic of China
    • VICH GL20: Good Manufacturing Practice (GMP) for Veterinary Pharmaceuticals
    • ISO 22442: Application of Risk Management to Animal-Derived Medicines
    • EU Directive 2001/82/EC on Veterinary Medicinal Products

    Typical usage ratio

    • 2.0-7.5% w/w based on total active pharmacophore mass, titrated per synthetic pathway needs for step yield and impurity limitation

    Downstream process integration

    • Added during the heterocycle closure or side-chain construction stage in multi-step synthesis; purified via crystallization prior to downstream salt formation

    Final product types

    • Veterinary parasiticide injectables (API stage)
    • Premixed oral suspensions for animal husbandry
    • Topical anti-parasitic sprays for farm animals
    • Feed additive pharmaceuticals for poultry and swine

    3. Performance Additive Precursor for Polymer Modification

    This compound functions as a reactive intermediate in the production of specialty polymer additives, particularly for imparting fungistatic and antimicrobial properties to polymer matrices used in packaging and textiles. Downstream processors covalently bond the active moiety during melt extrusion or solution blending, producing durable polymer modifiers with stable sulfur-fluorine linkages.

    Industry compliance standards

    • FDA 21 CFR 177.1520 for Polymers in Food Packaging
    • ISO 10993-5: Biological Evaluation of Medical Plastics
    • RoHS Directive 2011/65/EU on Hazardous Substance Restriction
    • ASTM D638 for Mechanical Integrity of Modified Polymers

    Typical usage ratio

    • 0.2-1.1% w/w by weight of base polymer (PET, PE, or PP); level depends on target mold resistance and application exposure conditions

    Downstream process integration

    • Fed into polymer masterbatch compounding lines during additive blending stage, or directly injected during resin melt mixing for functionalization

    Final product types

    • Mold-resistant food packaging films
    • Antimicrobial fibers for hospital and cleanroom textiles
    • Plastic storage materials for agricultural products
    • Specialty sheet materials for sensitive electronic packaging

    4. Precursor for Industrial Biocidal Coating Agents

    Formulation chemists utilize this material as a starting intermediate for synthesizing biocidal agents used in protective coatings for industrial surfaces exposed to microbial attack. The molecule's unique sulfur-fluorine activity supports the formation of durable actives with high environmental persistence, supporting extended surface protection and reduced maintenance intervals on infrastructure.

    Industry compliance standards

    • BPR (EU Regulation 528/2012) for Biocidal Products
    • ASTM D3273: Mold Resistance of Coatings
    • ISO 12944-6 for Protective Paint Systems
    • EPA Regulation 40 CFR Part 158: Pesticide Registration for Biocides

    Typical usage ratio

    • 1.5-6.0% w/w in final biocidal concentrate; dosed upwards for extreme humidity or submerged environments and downwards for shorter protection spans

    Downstream process integration

    • Enters formulation at the biocide synthesis step and is subsequently mixed during mill-base grinding or letdown stage in coating production

    Final product types

    • Antifungal exterior wall paints for commercial buildings
    • Marine antifouling coatings for hulls and dock structures
    • Mold-resistant coatings for tunnels and underground facilities
    • Protective sealants for water treatment infrastructure
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    Certification & Compliance
    More Introduction

    N,N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide: A Closer Look from the Manufacturing Floor

    Introducing the Product and Its Reality in Chemical Manufacturing

    Few chemicals in our catalog demand the blend of patience, accuracy, and safety precautions as N,N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide. We know it best by its internal model code and its unique formula, which took our synthesis team the better part of two years to perfect. Unlike off-the-shelf sulfamides, this compound came together through iterative experiments, long hours of analysis, and more than a few setbacks in pilot batches. Our engineers understand every step. They have faced the complexity of aligning fluorine atoms with dichloromethylthio groups, adjusting procedures to eliminate side-reactions, and tuning process parameters to get the spectrum just right. There is a reason few other facilities attempt this molecule.

    The Product’s Core Character: Purity and Performance from Day One

    We never aim for theoretical purity; we chase real, measurable results. Every batch goes through high-performance liquid chromatography and gas chromatography-mass spectrometry, not only to lock in chemical structure, but to track even the tiny profiles that less stringent suppliers skip over. Consistency remains critical. Customers tell us that out-of-spec batches cause headaches downstream—particular reactions just stall, or catalyst loads end up far from the sweet spot. For this sulfamide, there is little room for deviations. Spectrometric fingerprints for our standard model always fall within a tight range, allowing our partners in agrochemical, medicinal, and specialty polymer research to focus on formulation without troubleshooting surprises from our corner.

    From Lab Bench to Ton-Scale: Learning and Scaling the Process

    On day one, running this synthesis at kilogram scale, the process demanded constant attention. Early exotherms challenged the reactor teams—one small variation in feed rate and yields turned with it. We dialed in agitation and cooling protocols over countless runs. Our glass-lined reactors now operate under a strict quality plan, with digital logging and redundant temperature monitoring on every batch. Each operator trains on simulator programs before touching a real vessel. This discipline means we reach conversion goals with minimal waste. A decade ago, reaching such scale with this class of molecule would have sounded out of reach.

    Customer Realities and Application Challenges

    Customers come to us with a clear purpose for N,N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide. Many large research units focus their search on molecules that deliver precision in advanced crop protection. Our compound’s unique construction gives their new candidates the kind of performance that standard sulfamides cannot provide. In the pharmaceutical sector, chemists leverage this compound for its specialty thio group—one that can block or direct complex syntheses where simpler analogs stall or trigger unwanted reactions.
    Those outcomes require the product to arrive dry, non-caked, and uncompromised by environmental moisture. Storage logistics sometimes get overlooked, but at the manufacturing level, we never underestimate their impact. Packing lines use inert-atmosphere setups and tamper-proof, double-sealed bulk drums. Any hint of hydrolysis or clumping, and the drum goes back for a redo. Our logistics crew checks protocols with every dispatch.

    Differences that Matter in the Manufacturing World

    We have seen competitors offer superficially similar sulfamides, sometimes repurposed from bulk generics or sourced secondhand from lesser-controlled facilities. The resulting impurity patterns often speak for themselves— off-odors, discoloration, or odd melting points tell the story before an HPLC run finishes. Our material, in contrast, comes with transparency. We support every batch with full technical documentation drawn directly from operator logs, not repackaged third-party test sheets.
    Quite a few custom molecule manufacturers try to cut corners with shortcut processes, especially during price wars. That almost always shows up in downstream problems for end-users: persistent residual solvents, gritty or uneven textures, or recurring oddities in end-use reactions. We stay clear of recycled solvents and unvetted upstream suppliers. On-site analytical chemists hold veto power over incoming raw materials. We turn away anything that misses our identity validation, even if it slows the schedule.

    Supporting Productive Research Beyond the Order Sheet

    We consider quality assurance an ongoing process, not a checklist to tick after a batch ships out. Once a large-scale project begins, our technical support group works directly with client chemists. Customers open up about their real-world experiences—subtle issues like a troublesome particle size, challenges making concentrated slurries, or odd reactivity with certain polymers. Sometimes the solution lies in a small tweak to drying protocols or using alternate packaging designed for their workflow. We listen, investigate, and adjust our process.
    Some clients have reported bottlenecks when scaling their syntheses from gram to pilot scale with third-party materials. Tracing their issues, we realized that unnoticed trace impurities altered reaction kinetics. By fine-tuning our solvent purification steps and controlling exposure to light and air, we closed those gaps, yielding a material that performs identically whether the user starts with one gram or ten kilograms. Our chemists support these tough transitions with real experience, not theory—advising on everything from safe transfer techniques to handling bulk orders without product loss.

    Environmental and Workplace Safety on the Factory Floor

    Chemistry does not happen in a vacuum, and the realities of handling a molecule bearing both dichloro- and fluorine substituents call for robust safety practices. Our workforce suits up in full PPE for every shift. Monitoring panels catch even trace vapors from point sources; if thresholds creep up, production pauses and the team troubleshoots before resuming. Spent phases from mother liquors and extractants are neutralized and go to our in-house waste treatment loop. Regular environmental audits keep our impact well below local and international limits for hazardous intermediates.
    Investments in safety are never cut for the sake of output—downtime due to a missed protocol is more costly than missing a day’s production target. We train for real emergencies, simulating spill containment and rapid evacuation so everyone knows their role before a crisis appears. Relationships with local regulators are open. Inspectors consult our records, walk the plant floor without warning, and talk with our hourly staff—not just managers—about how the real process functions.

    Building on Experience: R&D and Continuous Improvement

    Even after production reaches a steady state, process engineers and chemists revisit the details. At quarterly reviews, our cross-functional teams dissect batch data, checking for yield drifts or emerging byproducts. If a new analytical tool rolls out, we retest archived samples to update our standards. Process improvements do not just stem from top-down directives—operators weigh in with hands-on insights, sometimes catching vessel fouling trends or proposing tweaks that shave hours from a step without compromising quality.
    Pilot runs for special orders test the boundaries of our system. One large agrochemical development required us to tune the polymorph distribution for direct formulation use. By adjusting crystallization temperature ramps and seeding strategies, we delivered on the spec—reducing downstream filtration steps for the client and helping them hit their project milestones on schedule.

    Real Product, Real Value: Traceability and Responsiveness

    Traceability matters to partners counting on this compound. Each production run gets a unique identifier, encoded on every drum and linked back to supply logs, QC results, and operator notes. If a customer flags a concern, we chase the root cause through every documented step. That approach once allowed us to spot a shipping delay pattern tied to extreme weather in a supplier’s region, enabling a fast reroute of shipments to avoid a repeat.
    Our culture values the truth behind every test. Shipment samples stay archived for up to five years, letting us verify or dispute any field performance report with real samples, not memory. Clients have access to the data that informs these records, not with redacted printouts or outsourced technical jargon, but with the direct voice of the chemists and QC team who managed their batch.

    Practical Insights from the Manufacturing Perspective

    There is a distinction between reading about a molecule and living with it for years in the plant. Seeing the toll that small compositional differences take on our customers’ outcomes shapes every improvement. Over time, we prioritized supplier relationships with upstream producers who share our no-shortcuts approach—after one too many lessons with contaminated raw materials. Some innovations came from necessity, like upgrading drying ovens for ultra-low moisture, while others came from feedback from a customer batch that would not dissolve as expected. The chain from our reactor to a customer’s application is only as strong as our willingness to adapt and respond.
    Professional pride anchors our workflow. Staff take responsibility for trace missives, alerting supervisors the minute a batch shows atypical color or aroma. Our workers see their job as more than a routine task—it is about the reputation of a product that often ends up as the keystone in customers' R&D projects. We keep ownership close to the ground. Management circulates routinely between labs and plant floors, seeking out operator feedback and tracking how decisions upstairs shape daily reality in production.

    Market Trends and Long-Term Lessons

    Shifts in global regulation, supply chain reliability, and client expectations all shape the way we work with specialized compounds like N,N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide. Over the years, we have seen demand cluster around industries seeking high-value, high-reliability intermediates, rather than bulk commodity resins where cost per kilogram matters more than subtle performance gains. Researchers, and the businesses behind them, seek transparency: they want supplier commitment and chemistry expertise, not just minimum conformance to spec sheets. We earned repeat business by sharing raw details—failures as well as successes.
    In chemical production, long-term viability rests on skillful risk management. Pricing pressures sometimes push competitors to cut corners, but we found that true stability results from overengineering safety, raw material sourcing, and customer documentation. We maintain buffer inventory on critical intermediates and keep long-term contracts with backup suppliers in case disruptions appear out of nowhere. These practices reflect the hard lessons learned during volatile years in global supply chains.

    Science-Driven Product Distinctions: More than a Name

    The full value in N,N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide does not rest in its lengthy name or its formula sheet. Real researchers appreciate the differences that come from the manufacturing approach. Batch crystallinity, impurity profiles, and packaging standards all shape the way the product performs far downstream in trials that few outsiders see.
    Clients working in advanced materials or crop chemistry need reliability when trialing complex molecules. Minor shifts—a fresher surface, a lower trace metal load—help chemists avoid false negatives in research screening. Some labs look for ultra-high-purity cuts; others focus on bulk cost and ease of handling. From the production side, we weigh all feedback cycles and keep improving our approach so every order builds trust, not just volume.

    Regulatory and Quality Dialogue: No Substitute for Direct Experience

    Navigating regulatory changes in hazardous chemicals calls for readiness, honest self-assessment, and solid technical records. Legislative shifts affect what end-users can do with specialty sulfamides, especially those bearing organofluorine or organochlorine features. We stay tuned to updates and engage proactively—sharing current product data with compliance teams at client companies. Regulators have full access to our testing labs; their sign-offs are based on the information we generate, not wishful thinking or generic certificates.
    Staff training ties closely to this workflow. Workers do not execute plans blind—they understand the stewardship that comes with handling, documenting, and certifying our batches. No checklist can substitute for the instincts shaped by years on the floor. That blend of frontline judgment with up-to-date procedural knowledge lets us respond to regulatory audits without scrambling.

    Shared Successes and Sustainable Product Partnerships

    Over time, the real worth of a chemical product—especially one as specialized as N,N'-Dimethyl-N'-Phenyl-N'-(Fluorodichloromethylthio)Sulfamide—derives from the relationships built on it. Product launches draw on our open dialogue with formulation specialists worldwide. We adjust grades for emerging needs, whether a research group asks for a subtle tweak to crystallinity or a production facility requests easier bulk handling.
    Manufacturing this molecule at scale has highlighted one key lesson: product quality rests on how closely the chemical plant stays connected to customer needs, scientific rigor, and realities on the ground floor. We adapt, troubleshoot, and learn not just for the sake of meeting a shipment—but so that our partners never need to think twice about the solid foundation that lets their next breakthrough happen.