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O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride

    • Product Name: O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride
    • Alias: Fenamiphos
    • Einecs: 614-153-6
    • Mininmum Order: 1 g
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications
    HS Code 142077
    Chemical Name O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride
    Molecular Formula C15H23Cl3N2O3PS
    Molecular Weight 447.75 g/mol
    Appearance White to off-white crystalline solid
    Solubility Slightly soluble in water
    Melting Point Approximately 72-76°C
    Boiling Point Decomposes before boiling
    Storage Conditions Store in a cool, dry place, keep container tightly closed
    Synonyms No common synonyms reported
    Odor Odorless or faint characteristic odor
    Stability Stable under recommended storage conditions
    Uses Primarily used as a pesticide or insecticide intermediate
    Hazard Classification May be harmful if swallowed or inhaled

    As an accredited O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride 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 sealed 500-gram amber glass bottle with a tamper-evident cap and hazard labeling for safe handling.
    Shipping **Shipping Description:** O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride must be shipped in tightly sealed, chemical-resistant containers under cool, dry conditions. Handle as a hazardous material; comply with all regulatory requirements for toxic and corrosive substances. Ensure appropriate labeling and documentation for safe transport. Avoid exposure to moisture and incompatible chemicals during transit.
    Storage O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-dichloro)phenyl phosphorothioate hydrochloride should be stored in a tightly closed container, in a cool, dry, well-ventilated area, away from heat, sparks, and incompatible substances. Protect it from moisture and direct sunlight. Store in a chemical storage cabinet, preferably dedicated for toxic and organophosphorus compounds, and ensure it is clearly labeled as hazardous.
    Application of O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride

    Applications of O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride in Industrial Manufacturing

    This specialty phosphorothioate ester serves as a core intermediate in select agrochemical and advanced fine chemical sectors. Our product is manufactured in compliance with rigorous production and quality control standards, ensuring suitability for critical downstream use. Below we outline the leading application scenarios, distinguishing each by its industrial standards, real formulation practices, manufacturing process flow, and end product profiles.

    1. Insecticidal Active Ingredient Synthesis for Crop Protection

    Manufacturers in the crop protection sector rely on this material for the synthesis of organophosphate insecticides that target sap-sucking and leaf-chewing pests in high-value crops. Process engineers integrate it at the core condensation stage when producing active technical grades before further formulation steps. Compliant agrochemical companies use real-time analytics and strictly controlled reaction parameters to maximize active content and control impurity profiles before granulation or emulsification.

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    2. Intermediates for Veterinary Ectoparasiticide Formulation

    Specialized animal health manufacturers source this compound as a synthesis step in the manufacture of active ingredients utilized in pour-on and topical solutions to control livestock ectoparasites. The controlled environment in pharmaceutical GMP or veterinary cGMP workshops ensures the purity and quality necessary for regulatory market access. Technologists track in-process quality at each stage from raw intermediate to bulk actives before downstream formulation into applicable product forms.

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    3. Precursor for Advanced Functionalized Organophosphate Compounds in Specialty Synthesis

    Fine chemicals producers adopt this molecule as a starting point for custom organophosphate synthesis, particularly in the development of functionalized esters demanded by the electronics, materials science, or advanced lubricant additive segments. The specificity of phosphorothioate reactivity permits tailored modifications according to downstream application requirements, and process chemists rely on batch documentation and robust analytical controls throughout scale-up.

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    4. Raw Material for Industrial Synthesis of Soil Fumigants

    This compound enters the workflow at the main coupling step when manufacturing select phosphorothioate-based soil fumigants. Manufacturers preparing registered soil treatments for nematode and insect control leverage its reactivity under controlled plant conditions to ensure purity, stability, and compliance for agricultural use in pre-plant soil treatment solutions.

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    Free Quote

    Competitive O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Introducing O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride

    Deep Roots in Synthesis: A Manufacturer’s Perspective

    We manufacture O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride after years of continual process refinement. Teams on our floor monitor each reaction stage, especially where subtle shifts in temperature or pH impact the final crystalline structure. Tight controls on raw material purity and storage shield the intermediate steps from moisture and oxidation. This is not just about hitting an assay target. The subtle balance in each lot guides how easy it is for our clients to scale operations or adjust formulations on their end. When customers turn to us for this compound, they often notice the distinct lack of haze in their solutions—small details that signal on-spec delivery, batch after batch.

    Why This Compound Matters in Modern Chemistry

    O,O-Diethyl-O-(6-Diethylaminomethylene-2,4-Dichloro)Phenyl Phosphorothioate Hydrochloride supports a range of technical fields in ways other products cannot. Its molecular structure, with the combined dichlorophenyl and diethylaminomethylene groups, favors selective reactivity in synthesis. As direct manufacturers, we have seen how minor adjustments to HCl management during salt formation can either open up the product to downstream side reactions or protect it and carry the benefits into new derivatives. Few other phosphorothioates bring this blend of chemical reactivity, environmental stability, and solubility in both polar and some nonpolar solvents.

    Physical Characteristics and Real-World Handling

    On our line, this product emerges as off-white, free-flowing crystals under qualified drying conditions. Residual moisture stays well below industry limits, translating to lower caking risk during transport. Our shift engineers routinely test bulk lots for melting point drift and colorimetric purity, because these shifts signal upstream issues that could ripple into the finished product. In our warehouse, forklift operators keep the drums in climate control, as ambient humidity can gradually undermine lot stability. Each year, we invest in better packaging film and vapor barriers after seeing how leaky seals compound minor impurities into bigger headaches months down the line. These lessons become part of our spec—never as bullet points, but as small preventive disciplines that our customers can see in the final clarity of the product.

    Model Numbers and the Role of Specifications

    Within our plant, model numbers identify variations meant for targeted downstream applications. Some lots are tuned for maximal bulk density, favored by clients managing automatic dosing lines. Others focus on solvent viscosity. Rather than one-size-fits-all, we customize filtration protocols so end users can skip extra purification. Our internal catalog links order numbers to origin within a single facility, avoiding the confusion that comes from multi-site blending, which dilutes batch-to-batch consistency. Clients in polymer synthesis or pharmaceutical intermediates flag particular particle sizes, so our technical teams keep experimental logs on micronization and granule hardness next to the finished product tanks. These details help users avoid extra sieving or grinding at the point of use.

    How We Approach Product Purity

    Consistently high purity is no accident. It traces back to upstream selection of feedstocks and rigorous segregation from structurally similar compounds during synthesis. Technicians monitor trace contamination—chlorinated byproducts, stearic acid residues, phosphate carryover—because we know routine spot checks do not catch sudden process upsets. Regular instrument calibration in our QC labs keeps each certificate of analysis connected to physical samples with full chain of custody. For lot traceability, we embed reference retention samples and keep tabs on older product in distributor inventory, so we can intercept outliers before they become field issues.

    Mindful Handling in End-Use Applications

    End users appreciate this product’s behavior in multi-step synthesis, where stable yields and predictable side reactions make development cycles shorter. Its hydrochloride salt form brings a useful balance for solubility across a wider pH range, compared with related phosphorothioate esters. In agrochemical synthesis, for example, lab staff can cleanly isolate active intermediates without aggressive solvents or temperature swings. Factory setting matters. A loose, uniform granule structure means dosing errors are rare even with older batch dispensers. One major difference clients see with our material over others is the reduced need for in-plant filtration, which saves both labor and re-work time. This reflects back to how small upstream tweaks—filter micron rating, temperature controls—show up in the finished good.

    How We Improve Over Competing Products

    We focus on aspects that create value in routine operations. Many alternatives on the market are brokered through third parties who purchase from multiple origins. We manufacture each kilogram under a unified spec sheet, with regular technical staff training to catch outlying events before packing. In the rare case of customer feedback about product flowability or shelf life, our R&D group studies root causes directly, often requesting product samples or visiting facilities to map the point of failure. Our ongoing technical support draws from years of tracked outcomes in field trials and end-user installations.

    Distinctiveness in Reaction Profiles

    Some chemical kin of this product perform similarly in side-chains or base moieties, but subtle differences change compatibility. For instance, bromine-substituted analogs tend to offer broader reactivity but may hydrolyze faster or pose extra waste handling requirements. Our experience with this dichloro variant shows stronger resistance to oxidative degradation during extended storage, maintaining better shelf-life in multi-year stocks. The hydrochloride salt, compared to free-acid or methylated analogs, travels more safely, since dusting and volatilization concerns remain lower. These physical features matter less on paper than they do across frequent warehouse moves and overseas shipping.

    Environmental, Health, and Safety In Practice

    Manufacturing practices go beyond compliance paperwork. We run closed-system reactor lines to minimize operator exposure. Fume hoods and local exhaust options throughout our process halls keep air concentrations below action thresholds. Our plant’s pre-delivery testing not only checks for product specs but also measures trace-level emissions, which informs best practices for downstream processing. Over the years, this vigilance turned up a few process leaks—minor, but enough to motivate valve upgrades or improved vapor capture. In our waste handling, we neutralize off-spec or spent streams before they leave the property, and this policy reflects our conviction that responsible stewardship belongs as much on the plant floor as in office documents.

    Regulatory Considerations Across Jurisdictions

    Product registration and documentation require more than filling out forms. Our compliance team monitors regional policies—some countries impose additional import permits for dichloro-phenyl phosphorothioates, others demand specialized labeling. We maintain open lines with regulators, providing full synthesis details upon request. For clients registering formulations, we offer guidance based on records pulled from past audits and customs documentation. Transparency in ingredient declarations and quality certifications helps downstream users avoid unexpected holdups at ports or during regulatory renewal. Over years of supplying to various markets, we have adapted labeling, REACH dossiers, and transport documentation to reflect each change in policy, minimizing customs clearance delays or refusals.

    Supporting Our Customers’ Innovation

    Customers count on more than just a physical shipment. In synthetic chemistry, small failures often tie back to hard-to-detect impurities or product aging. Our in-house technical liaisons field questions from formulating chemists on solubility behavior, side-reaction risks, or method transfers. We review proposed changes in user batch instructions, drawing from our internal pilot data and drawing on lessons learned from hundreds of campaigns. Sometimes a formulator may want a slight tweak—changing solvent compatibility, shifting particle size, or extending stability for long-distance shipment. Our teams work with theirs directly, sending trial samples with full analytical data so clients can run their own lines in parallel. This cycle of feedback, refinement, and re-validation informs internal standard-setting and keeps our spec sheets responsive.

    Supply Chain Reliability from Batch to Batch

    Direct manufacturing control helps us shield end users from many disruptions. During global logistics peaks, we have prioritized raw material contracts and kept emergency feedstock on-site, ensuring that clients rarely face shortages. Full in-house synthesis means we are not exposed to last-minute spec changes from suppliers or brokers, and our dedicated logistics group tracks each shipment until the destination site accepts and signs off. We audit our freight and forwarding partners, ensuring that bulk containers arrive sealed and within temperature windows. Our clients’ ability to run just-in-time lines often depends less on absolute speed than on predictability, which we back up with consistent cycle times and proactive communication if upstream events threaten schedules.

    Continuous Improvement in Production

    Quality standards only matter if they keep improving. Operators routinely submit feedback after each run, noting pump fouling, color shift, or easy wins for more efficient drying. We log every deviation or downtime instance, running root-cause analysis for persistent bottlenecks. Lessons drawn from process hiccups—such as vapor line condensation or filter septum wear—translate directly into adjustment of cleaning schedules or capital improvements. Every annual audit results in a few actionable changes, whether in solvent recovery, waste acid scrubbing, or packaging upgrade. Customers feel the result: fewer interruptions, minimized off-spec material, and a product steeped in operational discipline. This cycle keeps our team focused not just on compliance but on actual process upgrades visible in the delivered product.

    Collaboration Across the Value Chain

    Our involvement stretches from basic feedstock processing through to customer technical support. It’s common to work with user facilities on root-cause analysis when a downstream process veers from expected output. By reviewing facility parameters and running parallel batch studies in our own pilot labs, we help isolate whether the issue lies in the chemical or its use. This collaborative approach means we stay in close touch with the needs of synthetic chemists, formulation experts, and environmental health officers, adding value well beyond standard product delivery. By drawing on failings—such as a batch flagged for unexpected discoloration from a customer site—we identify gaps and address them in future runs, making our production more robust. Partnerships last longest when mutual candor drives technical progress for all parties involved.

    Outlook and Future Developments

    The chemical landscape never stands still. As green chemistry becomes more than a catchphrase, we invest in both process changes and fundamental research. Recently we initiated solvent recycling in the alkylation step, reducing waste while maintaining product purity benchmarks. Continuous reactors for some intermediates are under validation, promising safer operations and tighter spec control. We also explore ways to enhance biodegradability in downstream use cases, approaching new formulations with partners from academic and industry sectors. Every advance comes with new hurdles, but these motivate ongoing improvements and investments in team training and equipment. Our expectation remains: reliability, safety, and ongoing technical guidance keep our product in the lead for specialty phosphorothioate applications.

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