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Bis(Dimethylamino)Phosphoryl Chloride

    • Product Name Bis(Dimethylamino)Phosphoryl Chloride
    • Alias BAMP-Cl
    • Einecs 237-240-9
    • 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

    543803

    Chemical Name Bis(Dimethylamino)Phosphoryl Chloride
    Chemical Formula C4H12ClN2OP
    Cas Number 2079-00-1
    Molecular Weight 170.58 g/mol
    Appearance Colorless to pale yellow liquid
    Density 1.14 g/mL at 25°C
    Boiling Point 165°C
    Melting Point -32°C
    Solubility In Water Reacts with water
    Refractive Index 1.475 at 20°C
    Synonyms Chlorobis(dimethylamino)phosphine oxide
    Flash Point 74°C

    As an accredited Bis(Dimethylamino)Phosphoryl Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Bis(Dimethylamino)Phosphoryl Chloride, 100g, is supplied in a sealed amber glass bottle with a secure, chemical-resistant screw cap.
    Shipping Bis(Dimethylamino)Phosphoryl Chloride should be shipped in tightly sealed containers under dry, cool conditions, with proper labeling as it is corrosive and moisture sensitive. Packaging must comply with hazardous material regulations, using secondary containment to prevent leaks or contact with incompatible substances. Handle and transport according to local and international chemical safety guidelines.
    Storage Bis(Dimethylamino)Phosphoryl Chloride should be stored in a tightly sealed container under an inert atmosphere, such as nitrogen or argon, to prevent hydrolysis. Store in a cool, dry, and well-ventilated area away from moisture, heat, and incompatible materials like strong acids and bases. Clearly label the container and ensure it is kept away from sources of ignition and direct sunlight.
    Application of Bis(Dimethylamino)Phosphoryl Chloride

    Applications of Bis(Dimethylamino)Phosphoryl Chloride in Industrial Manufacturing

    Bis(Dimethylamino)Phosphoryl Chloride serves as a specialized intermediate in several industrial sectors. We manufacture this compound at commercial scale for downstream producers with high demands on process precision, purity, and compliance. Below are key application segments with dedicated technical details for each use.

    1. Synthesis of Organophosphorus Pesticide Intermediates

    The material acts as a core phosphorylating agent in the production of advanced organophosphorus pesticides. Leading agrochemical firms incorporate it in multi-step syntheses for selective insecticides and acaricides. Producers adjust reaction parameters tightly to achieve targeted activity and safety profiles demanded by regulatory authorities for export and domestic markets.

    Industry compliance standards

    • FAO/WHO Specifications for Pesticidal Active Ingredients
    • EU Regulation (EC) No 1107/2009
    • China National Standards for Pesticide Manufacturing
    • United States EPA Registration Guidelines

    Typical usage ratio

    • In phosphorylation steps, 0.95–1.10 molar equivalents relative to the amine substrate
    • Adjustments based on impurity thresholds and target pesticidal function groups

    Downstream process integration

    • Reaction sequence after initial amination or halide exchange
    • Utilized in batch or continuous reactor systems under controlled temperature (50–80°C)
    • Followed by hydrolysis or quenching before purification and formulation stages

    Final product types

    • Phosphoramidate-based insecticides (e.g., chlorpyrifos intermediates)
    • Selective acaricides for fruit and vegetable protection
    • Active ingredients in crop-protection formulations meeting export residue limits

    2. Production of Flame Retardant Additives for Engineering Plastics

    Polymer additive manufacturers employ this raw material as an intermediate to introduce phosphoramidate groups into specialty flame retardants. This approach delivers both halogen-free and mixed-type flame barriers for polyamide and polycarbonate systems with tight quality control for automotive, electronics, and construction applications.

    Industry compliance standards

    • UL 94 Flame Classification for Plastics Materials
    • IEC 60695 Fire Hazard Testing Requirements
    • RoHS Directive (2011/65/EU)
    • REACH SVHC Assessment

    Typical usage ratio

    • 0.5–1.3 mole equivalent to base diol or diamine for phosphoramidate groups
    • Formulation adapted to polymer matrix reactivity and additive load requirements (standard 10–15% w/w in final masterbatch)

    Downstream process integration

    • Added during pre-polymer functionalization stage
    • Reacts at elevated temperature (80–120°C) in solvent or melt processes before extrusion or compounding
    • Downstream isolation of phosphorous additive followed by solid-state blending with base resin

    Final product types

    • Halogen-free flame retardant masterbatches
    • Fire-resistant polyamide compounds for automotive interiors
    • PC/ABS blends meeting V-0 and V-1 safety standards

    3. Chemical Synthesis of Pharmaceutical Building Blocks

    API and fine chemical producers use the compound as a phosphorus donor in the formation of phosphoramidate linkers and prodrugs. Accurate ratio control and trace metal monitoring ensure compliance with ICH Q3A and Q3D guidelines. Major applications include complex medicinal agents where the purity of linkers and functionalization steps directly impacts biologically active performance and registration approval.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP/NF Monographs on Intermediates
    • EU GMP for Bulk Pharmaceutical Chemicals
    • FDA 21 CFR Part 211

    Typical usage ratio

    • Typically 1.0–1.2 molar equivalents against the amine or alcohol functional group
    • Adjust based on desired phosphoramidate conversion and residual chloride content

    Downstream process integration

    • Reacted post-protection of core intermediates in multi-step synthesis routes
    • Utilizes inert solvent media and nitrogen atmosphere to control hydrolysis and byproduct formation
    • Strict segregation before and after this step to maintain GMP line clearance

    Final product types

    • Phosphoramidate prodrug intermediates (e.g., nucleotide analogues)
    • Phosphate-modified peptidomimetics
    • Specialty linker molecules for antibody-drug conjugates

    4. Functionalization Agent in Specialty Coating Additives

    Producers of advanced coatings and adhesives apply this agent to achieve phosphate and phosphoramidate surface functionalities. These reactive centers enhance adhesion and durability for demanding industrial and architectural environments. The manufacturing process emphasizes repeatable stoichiometry and controlled reaction exotherms to meet strict batch-to-batch consistency requirements.

    Industry compliance standards

    • ISO 9001:2015 Quality Management for Coating Additives
    • EN 927 Weathering Resistance Standard
    • ASTM D3359 Adhesion by Tape Test
    • GHS Safety Data Documentation

    Typical usage ratio

    • 0.6–1.2 equivalents based on available active hydrogen atoms in resin backbones
    • Ratio adjusted with respect to required cross-link density and solvent retention

    Downstream process integration

    • Introduced after prepolymerization and before final chain extension phases
    • Integrated using temperature-controlled feed under continuous mixing for uniform distribution
    • Post-reaction purification by rotary evaporation or column removal of volatiles prior to blending

    Final product types

    • Adhesion-promoting primers for metals and plastics
    • Anti-corrosion polyurethane coatings for infrastructure
    • Hardener systems in epoxy flooring and marine paints

    5. Semiconductor Process Chemical for Wet-Etching Agents

    In the electronics industry, this compound functions as a phosphorus source for custom etchant blends used in integrated circuit fabrication. Leading semiconductor plants demand ultra-low metal and halogen impurities, requiring strict QC at all production stages. Used primarily for surface modification and micro-patterning, this chemical enables technology scaling and device reliability in state-of-the-art fabs.

    Industry compliance standards

    • SEMI C41 Specification for Phosphorus Compounds in Microelectronics
    • JEITA Standards for Electronic Grade Chemicals
    • ISO 14644 Cleanroom Standards
    • ANSI/ESD S20.20 Electrostatic Discharge Control

    Typical usage ratio

    • 0.1–0.3% w/w in proprietary etchant formulations
    • Adjusted according to wafer material, feature density, and etch depth control algorithms

    Downstream process integration

    • Dosed to etching bath systems following initial wafer cleaning
    • Maintained under continuous filtration with in-line metrological monitoring
    • Removed following etch operations by multi-stage deionized water rinsing

    Final product types

    • High-aspect-ratio patterned silicon wafers
    • Semiconductor device substrates
    • FinFET and MEMS device production platforms

    6. Intermediate in Functional Textile Finishing Agents

    Textile chemical companies utilize this compound to synthesize organophosphorus-based cross-linking and flame retardant finishing agents. The manufacturing workflow requires precise charge control and reaction monitoring, as batch consistency directly determines physical durability and flame-resistant rating of finished fabrics supplied to commercial and defense textile converters.

    Industry compliance standards

    • OEKO-TEX Standard 100 for Textile Chemicals
    • ISO 14116 Flame Retardancy for Protective Clothing
    • REACH Regulation (EC) No 1907/2006
    • BLUESIGN Environmental Certification

    Typical usage ratio

    • 0.7–1.3 moles per mole of cross-linkable fiber segment
    • Adjusted to specification for flame spread time and mechanical property retention

    Downstream process integration

    • Applied after primary fiber spinning or weaving, during post-treatment stages
    • Fed in aqueous or solvent process baths under steered reaction kinetics
    • Followed by neutralization and washing before final fabric finishing and QC

    Final product types

    • Flame-retardant cotton and polyester blends
    • Protective clothing fabrics for industrial and firefighting use
    • Home textile materials with enhanced wash durability
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    Certification & Compliance
    More Introduction

    Bis(Dimethylamino)Phosphoryl Chloride: Manufacturing Insight and Industry Role

    Understanding the Value of Bis(Dimethylamino)Phosphoryl Chloride

    As direct manufacturers of Bis(Dimethylamino)Phosphoryl Chloride, sharing first-hand experience always proves more valuable than technical jargon. The chemical, known in labs and production halls for its structural versatility and reliable reactivity, deserves a careful look from those working in advanced materials, agrochemicals, and pharmaceutical research. Even with decades of changes in synthesis routes and increasing scrutiny over process safety, certain benefits stand out year over year.

    The unique appeal of Bis(Dimethylamino)Phosphoryl Chloride rests in its role as a phosphorylating agent with dual dimethylamino groups, making it more reactive and more controlled than many crude phosphorus chlorides. Its clear to pale yellow liquid form comes from precisely balanced feeds and controlled distillation. Every batch tests for density, boiling range, water content, and purity—methods cultivate confidence with each drum or flask. Our plants maintain specification targets around 98% minimum content for the primary compound, with damp-proof packaging to protect material integrity during transport and storage.

    From Reactor to Market: Crafting Quality and Safety

    Producing Bis(Dimethylamino)Phosphoryl Chloride is not an overnight operation. Chlorination and amination steps need consistent feed materials, well-calibrated measurement, and teams prepared for off-gases and thermal swings. From reactor to final packaging lines, years of process optimization guide meticulous loading, cooling, and packaging. These routines do not just maintain purity—they also play a central role in minimizing waste and controlling risks.

    It makes a real difference that we do not operate as a trader or distributor. Our specialists witness each step, adjust operations live, and can spot causes of color shifts or trace impurities long before shipping. The plant’s direct hands-on experience feeds into every technical conversation, offering chemistry teams the details needed for clean-up processes, downstream synthesis, and troubleshooting rare events. This guarantees a consistency that rarely features in bulk commodity channels.

    Key Features Set by Experience

    One handy trait comes from Bis(Dimethylamino)Phosphoryl Chloride’s solubility profile. It moves readily into many organic solvents, making it much more manageable for fine-tuning intermediate reactions than bulkier phosphorus sources. Because it reacts briskly with nucleophiles, manufacturers in pharmaceutical syntheses trust this product for introducing protected phosphoryl groups or selective phosphorylations without stray side reactions. Some will argue that other chlorophosphoramidates could fill the role, but controlling product distribution and color, especially for scale-up work, showcases the advantage of vertically integrated production.

    Researchers value a clean, nearly water-white product—free from higher-molecular-weight impurities or hydrolytic byproducts—particularly in API manufacturing. Years spent tightening vacuum systems and tracing contamination sources in our own stacking tanks have shown that water or trace amines can completely derail hundreds of kilograms of commercial value. Reliable supply with narrow impurity profiles isn’t something a generic or brokered supply can match. Our multi-stage purification and inert gas blanketing practices shape that advantage into every delivery.

    The Competitive Edge Over Other Phosphoryl Reagents

    Chemists routinely ask about differences from other organophosphorus chemicals. The elemental make-up of Bis(Dimethylamino)Phosphoryl Chloride gives a notable edge where selective phosphorylation or amidochlorination is crucial. Trimethylphosphite chloride or phosphoryl chloride, for instance, can flood a process with higher reactivity or raise containment headaches. The precise molecular design of Bis(Dimethylamino)Phosphoryl Chloride lends improved safety and better predictability for demanding pharmaceutical or agrochemical syntheses that require exacting conditions.

    Unlike trialkylphosphates, this reagent permits more controlled substitution reactions and delivers far better yields in processes that suffer contamination or unpredictable side reactions from lesser grades. The chlorination level and the structure lend a subtle but important flexibility; seasoned operators will recognize fewer issues with clumping, reduced risk of runaway exotherms, and improved product isolation. Each operator in a continuous plant line knows the confidence that comes from stable feed—especially when batch-to-batch variation defines market reputation.

    Why Downstream Users Prefer Our Approach

    Our regular customers in pharmaceutical development and agrochemicals do not have patience for unexplained specs or inconsistent reactivity. They report that consistent molarity and a low hydrolyzable chloride content give faster downstream clean-up and better final yields, trimming production costs and timelines for commercial launches. On every production lot, we track and retain sample splits, logging every drum and flask. Such batch documentation and lot recalls become essential for regulatory submissions or patent filings.

    Feedback on particle size, pourability, freeze-thaw stability, and tendency toward turbidity in aged samples all reach the manufacturing line, not only to central quality review teams. We connect directly with the lab staff who push boundaries in process innovation, ensuring requests like split lots or customized packaging find prompt answers. It is not rare to respond within the same production day.

    Performance Under Intensive Synthesis Conditions

    Many fine chemicals experience surprise byproducts or fouling during scale-up, but Bis(Dimethylamino)Phosphoryl Chloride keeps a reliable profile. This proves crucial in continuous reactors or multi-stage processes, where every degree and every fraction of impurity can compound costs. In our own reactors, experience with overhead distillation and nitrogen-purged cooling zones highlighted how trace hydrolysis even below 1% can cause phase separation or color changes. Engineers adapted process controls over the years, learning what it takes to avoid clogging filter screens and to spot early signs of solvent carryover. Chemical manufacturing is never static.

    The robust performance of Bis(Dimethylamino)Phosphoryl Chloride stands out in real-life environments. In many processes, peers see increased clogging or surprise viscosity changes with cheaper or otherwise similar reagents. Those running high-throughput kilo labs or repeated pilot syntheses spot that our quality focus sustains through both bench and production scales. It helps to have eyes and ears on each tank and analytical monitor, shortening learning cycles and preventing issues from escaping to customer sites.

    Applications from Pharmaceuticals to Advanced Agrochemicals

    Uses of Bis(Dimethylamino)Phosphoryl Chloride have evolved over decades. Chemists rely on it for streamlining introduction of phosphorylating groups onto key intermediates—often in ways stubborn to other reagents. Time in our own development labs has proven that this brings out better selectivity during amination of aryl halides, esterification sequences, or in shifting protecting group strategies. In contrast to some alternative phosphorus oxychlorides or mixed anhydrides, users experience fewer setbacks from competing pathways or hydrolytic cleavages, especially under moderate temperatures.

    Some industry peers focus too narrowly on cost per kilogram. Our view, grounded in years at the synthesis bench, emphasizes cost per campaign and cost per kilogram of qualified product. Each wasted purification and breakdown from variable reactivity chews through process budgets and leads to headaches downstream. More than once, a client has called back with a story about saving three days on downstream chromatography by sourcing high-purity Bis(Dimethylamino)Phosphoryl Chloride, enabling quicker turnarounds for drug candidates or specialty crop protectants.

    Biotech and pharma teams defending regulatory filings in Europe or North America also need robust impurity control. Many project owners face complex documentation and stringent impurity reporting; technical support on such needs comes straight from records we produce at plant scale. Being part of that loop means less delay and greater confidence in regulatory reviews and audits, which decides who moves projects to market fastest.

    Differences That Matter: From Lab to Large-Scale Output

    Lab-scale tests do not always predict plant-scale success. Several teams that once relied on lab-scale Bis(Dimethylamino)Phosphoryl Chloride found the transition to commercial batch runs hit unexpected snags—sticking points like batch-to-batch variability, scalable packaging needs, or regulatory documentation gaps. In our own expansion, attention to these transitions has paid off through custom drum sizing, supply chain design, and rapid-response quality troubleshooting. Customers talk directly with our engineers, not an indirect sales chain.

    Each year brings new trends—improved automation, increased regulatory oversight, and tighter downstream tolerances. More chemical plants need digital traceability or real-time batch monitoring. As direct producers, close partnerships with both synthesis teams and in-house IT groups led to barcoded batch tracking and digital release signatures. With direct oversight, we know exactly which run, shift, and operator modified each lot, reducing room for error or confusion in recalls or complaint investigations.

    Clients balancing risk need assurance their raw materials come with thorough technical backing. Years spent dealing with process upsets, learning which antistatic linings or gasket choices prevent accidental leaks, and establishing cross-checks at every stage, mean hurdles faced at our end never pass quietly down the line. Whether preparing a new agrochemical active or seeking custom blends, customers come to us for both process stability and honest commentary—not a menu of possibilities with no context.

    Adapting Process and Quality for Market Demands

    Global demand for specialty chlorophosphoramidates grows alongside innovation in sustainable agrochemicals and selective pharmaceuticals. Getting there with reliable, pure Bis(Dimethylamino)Phosphoryl Chloride means more than finding a supplier with a full warehouse. Quality emerges through disciplined plant practices, fine-tuned reactor parameters, exhaustive batch testing, and innovative waste minimization. When local regulations shift or major buyers adopt new standards, we redesign documentation, revalidate traceability software, and partner with shipping specialists to coordinate safe, compliant delivery.

    Sometimes a customer’s process needs adjustment—custom blending, solvent compatibility trials, or unusual temperature cycling. Our technicians provide direct recommendations, drawing on hundreds of pilot batches and decades of troubleshooting. Technical requests become new learnings for the plant. Bottlenecking over the wrong sealant or discovering a subtle reactivity difference from solvent choice adds practical wisdom to published papers. Close manufacturer-client feedback reduces risk and builds shared value over time.

    Commitment to Research Support and Process Improvement

    Manufacturing Bis(Dimethylamino)Phosphoryl Chloride means ongoing learning—improving purification yields, supporting new analytical needs, and testing safer packaging approaches. Our teams regularly collaborate with research chemists testing new ligation methods or finding applications in oligonucleotide synthesis. Lessons from their work feed back into our analytical routines and documentation standards, bridging plant experience with evolving scientific needs.

    We listen closely to partner requests for less common pack sizes or custom labeling to comply with site-specific handling protocols. Rolling these adjustments through manufacturing workflows takes hands-on knowledge and flexibility, something that rarely filters down from distribution networks. Working with varied research efforts—from 10-liter pilot runs to full plant-scale batches—fine-tunes operational practices, lifts throughput without sacrificing quality, and promotes responsible stewardship for the next generation of chemicals.

    Shaping the Future With Consistency and Open Dialogue

    Chemical manufacturing rewards those who stay alert and responsive. Rigid routines and clean record-keeping shape predictable quality, but fielding customer requests in real time feeds innovation back into every barrel, drum, and flask. We remember the best breakthroughs often arise from fixing hard problems on the reactor floor, not textbook theory. This approach brings practical reliability and constant improvement; it invites open technical dialogue and better support for every new synthesis method or industrial application.

    The Manufacturer’s Promise

    Those who run reactors, test purity, and package every order of Bis(Dimethylamino)Phosphoryl Chloride see the industry’s changing needs up close. The knowledge comes from daily contact with the chemistry and regular communication with people counting on dependable supply. We invest in each batch with the understanding that today’s performance shapes next month’s breakthroughs. This approach anchors our role in the specialty chemicals market—delivering real value every day, one batch at a time.