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HS Code |
248827 |
| Chemical_Name | O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate |
| Molecular_Formula | C9H18N2O3PS |
| Molecular_Weight | 264.29 g/mol |
| CAS_Number | 333-41-5 |
| Appearance | Colorless to pale yellow liquid |
| Boiling_Point | 100-102°C at 0.8 mmHg |
| Density | 1.16 g/cm3 at 20°C |
| Solubility_in_Water | Slightly soluble |
| Melting_Point | -20°C (approximate) |
| Common_Use | Insecticide (pesticide) |
| Vapor_Pressure | 1.40 mPa at 20°C |
As an accredited O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Opaque, white HDPE bottle with tamper-evident cap, labeled 100g, hazard symbols, batch number, and clear chemical identification in bold. |
| Shipping | Shipping of O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate must comply with all relevant regulations for hazardous chemicals. It requires secure, leak-proof packaging, appropriate labeling, and documentation. Temperature control and restricted access may be necessary. Only authorized carriers trained in handling toxic substances should be used to ensure safety during transport. |
| Storage | O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate should be stored in a cool, dry, and well-ventilated area away from heat, sparks, open flames, and direct sunlight. Keep the container tightly closed and properly labeled. Store away from food, feed, and incompatible substances such as oxidizers and strong acids. Ensure storage complies with local environmental and safety regulations. |
Applications of O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate in Industrial ManufacturingOur factory-grade O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate supports high-throughput downstream production across key segments of the agrochemical industry. We ensure traceable quality and detailed application know-how, supporting large-scale and specialty manufacturing by direct supply to industrial users. 1. Crop Protection: Formulated InsecticidesThis active ingredient undergoes conversion in technical agrochemical plants to produce finished insecticidal products for broad-acre and specialty crop protection. Formulators rely on accurate dosing and purity to meet modern residual control requirements, notably in combating resistant pest populations. Products from our synthesis line integrate efficiently within concentrated suspension and microemulsion formulations, ensuring residue compliance and targeted field performance. Industry compliance standards
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2. Public Health Vector Control ProductsGovernment and private industrial users deploy vector management products in indoor residual spraying and larvicide programs. Our supplied material serves as the core ingredient for manufacture of fast-acting mosquito and fly control formulations essential to disease vector abatement in urban environments and disaster response operations. Rigorously controlled particle size, purity, and batch traceability are mandatory for strict regulatory approvals in this market segment. Industry compliance standards
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3. Seed Treatment Product ManufacturingMajor seed treatment factories use our intermediate as a systemic insecticidal additive to protect seeds against soil-dwelling and early-season pests. The compound’s compatibility with polymer coatings and biological inputs lets industrial formulators combine chemical and biological agents in a single matrix, reducing downstream logistics for integrated pest management programs. Proven storage stability and low phytotoxicity in controlled dosages are essential for regulatory acceptance. Industry compliance standards
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4. Industrial Pest Control and Grain Storage ProtectionCommercial grain storage operators and food industry clients utilize formulated bulk protection products incorporating this phosphorothioate compound for controlling stored-product insect infestations. Application requires precise quality assurance due to direct contact potential with food-grade materials, robust documentation for maximum residue compliance, and proven long-term efficacy for bulk and bagged grain stabilization throughout transport and warehousing. Industry compliance standards
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Competitive O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate prices that fit your budget—flexible terms and customized quotes for every order.
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O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate earns a long name in the laboratory. Beneath this mouthful lies a thoughtfully designed organophosphorus chemical. Every day, our production teams rely on robust procedures to generate this molecule. The product takes shape through continuous investment in quality inputs and hands-on experience with synthesis pathways, and what emerges from each reaction vessel reflects both fundamental science and practical know-how.
The identity and unique touch of this compound come from the way its sulfur atom links the carbamoylmethyl moiety with a phosphorothioate backbone. That bond is not a trivial detail—it directly influences the product’s performance in agricultural settings and advanced chemical syntheses. Years of method development taught us that the smallest shift in raw material purity or process conditions changes the end-product in ways you only notice after repeated trial and error, or worse, after hearing from the field. Knowledge builds batch by batch, so every kilogram shipped reflects countless refinements.
As the manufacturer, we observe the transformation of raw materials into finished product up close. Each batch starts with precisely measured ethylating agents and protective chemistry, handled with calibrated temperature control. We learned through experience that moisture control trumps fancy theoretical recipes—water in the process brings inconsistencies downstream, so daily vigilance and strict handling protocols run deep in each shift.
Every batch carries its own record of temperature logs, reagent sources, and technician oversight. These aren’t just compliance steps—they translate to reliability when a customer counts on tight melting point ranges, low impurity profiles, and predictable flowability. We know the frustration of having off-color material or unwanted side-products because we’ve been standing at the reactor when those problems arise. Closer attention at source brings confidence later, all the way to the final end user, whether that’s a formulator of pesticides or a chemical R&D lab.
The target parameters for O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate grew out of direct feedback from long-term industrial customers.
We usually manufacture this compound in technical grade, offering purity above 95% by weight. At this threshold, conversion yields remain robust without waste, and performance in application satisfies even demanding users. Controlled moisture content—kept below 0.2%—prevents caking and eases transfer into mixers or reactors. The physical appearance runs from pale yellow to off-white crystalline powder, though subtle variations may occur due to differences in feedstock or run conditions.
Impurity profiles draw attention in our daily checks; the downstream performance depends on a tight handle of phosphorus esters and minimal organosulfur residuals. Any spike outside the expected range signals operators to troubleshoot, often backtracking days to the very first charge. Over time, this discipline means formulations exhibit consistent behavior with every new lot.
Agricultural professionals know that active ingredient purity alone does not ensure successful application. Consistency of batch texture and particle size, for instance, determines how well the compound blends into emulsifiable concentrates or wettable granules. Years of manufacturing and shipping volumes worldwide pushed us to refine our grinding and sieving protocols, since early customers reported clumping or poor suspension in local water conditions. Adjustments in post-reaction drying and mill speed corrected those defects, making the product more adaptable to a wider range of environments year after year.
On the synthesis side, researchers often need a clean, predictable starting material for further chemical reactions. Our production approach—maintaining minimal trace solvents and offering tightly screened particle size distribution—emerged after direct discussions with those working at the bench. Their observations about how side impurities interfere with organophosphate coupling prompted us to fine-tune extraction and drying. Sometimes, small details noticed by a chemist far away ripple back into our choices about filtration, recrystallization, or packaging right at the source.
Manufacturing this compound week in and week out builds a memory for quality and trouble-shooting. On tough days, temperature control resists summer humidity or winter cold; we know what it’s like to coax a stubborn reaction to completion. Breaking down a run for cleaning and maintenance is routine, yet every incident offers a chance to catch tiny points of improvement. Hazard management, correct labeling, and proper waste recovery grew out of this everyday exposure, and we carry through from batch logs all the way to the shop floor.
A difference emerges between product offered from a true manufacturing perspective and that circulated by intermediaries: source knowledge runs deeper. We answer customer questions by tracing real records or pulling comparison samples from past production, rather than marketing answers built on specification sheets alone. Questions about reactivity, storage recommendations, or unexpected behavior can draw on years of troubleshooting, not theoretical modeling.
Years spent building a reliable workflow reveal shortcuts and common errors to avoid. It’s tempting to relax specs or push yields to hit output targets, but every time a small corner was cut, we tracked complaints up the supply chain—downstream caking, off-odors, weak field efficacy. Teams react by tightening checks and following up, reinforcing the value of honest processes and well-documented controls.
Not all phosphorothioate products solve the same needs in industry or field practice. Some offer shorter alkyl chains paired to the phosphorus atom, giving them a different volatility or environmental interaction. Others, based on oxygen instead of sulfur, take on improved hydrolytic stability or gentler handling profiles. Our O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate presents a balance of properties: sufficient persistence for agricultural needs, a manageable toxicity profile, and a reactivity profile that allows precise tailoring by downstream users.
We’ve processed requests for comparative samples, sent side-by-side packs for high-throughput screening projects, and collected the feedback from herbicide, insecticide, or chemical intermediate synthesis groups. Often, lab groups comment on the predictable decomposition temperature and ease of dissolution in common organic solvents. Technical staff on the shop floor notice less equipment fouling compared to similar compounds, likely due to our optimized filtration steps and attention to bulk stability. These are not advantages you learn from textbooks—they arrive from constant communication between the plant and the end user community.
Our in-house experience shows that minute differences in impurity spectrum, even among products with identical names on a spec sheet, translate to measurable changes in application setups. Certain phosphorothioates from the same chemical group, whether sourced domestically or internationally, exhibit batch-to-batch variation that only emerges after field application or subsequent chemical synthesis. Experience with quality troubleshooting led us to invest in batch retention and analytic crosschecks, so we catch emerging problems before our customers ever notice.
With every new lot shipped, we reflect on how best to advise storage and transport. The real world rarely matches the neat rows of a climate-controlled warehouse; end users in tropical or desert regions battle temperature swings and humidity. Repeated calls from the field—after cakes that wouldn’t remix, powders that hardened in drums, or altered reactivity due to unnoticed moisture—drove us to recommend specific desiccant types, double-bagging, or improved drum sealing techniques. Feedback from bulk handlers or international logistics partners prompted us to move toward heavier-gauge liners and new palletization methods, countering rougher handling and variable customs inspections across borders.
Proper labeling and hazard warnings are vital not just for our legal peace of mind but for protecting everyone in the supply chain. Every spill report or compliance audit exposed gaps in initial storage advice, so over time packaging and transport recommendations grew more detailed. We relay not just what’s required by policy, but what works in the flux of real distribution—drums moved in rain, truck delays at border checks, or responding to regulatory shifts in import countries.
Routine production audits taught us the parts of the process most susceptible to error: incomplete drying at harvest time, over-pressurized packaging, or inadequate labeling in bilingual regions. Direct involvement at the plant, communicating regularly with forwarders, strengthens the trust both ends of the chain feel. No technical datasheet replaces the comfort that the manufacturer—not a remote third party—is backing quality and safety from synthesis to final site.
Manufacturing organophosphorus compounds carries an obligation to downstream communities, applicators, and the wider ecosystem. Raw material selection gets as much attention as the finished product, because small choices upstream can multiply risks downstream. We’ve seen regulatory tightening on precursor chemicals affect both sourcing and allowable impurity limits, so we monitor changing guidance and adapt purchasing to stay ahead of compliance issues. Skimping on pre-reaction cleanup seems attractive on paper but creates bigger headaches in waste handling or regulatory reviews further down the line.
Batch waste streams receive as much scrutiny as output, since we live with the outcomes in the plant’s footprint. Stringent controls on effluent, wet scrubbing systems, and in-house recycling distinguish a responsible producer from those aiming to move volume without regard for impact. Our operators carry this sense of stewardship in daily actions, reinforced by periodic training and outside reviews.
We document changes in practice, analyze their impact, and adjust regularly in light of new guidance from local and international bodies—always adjusting to improve both process reliability and environmental safety. The value of this mindset appears not only in audit statements but also in the trust and repeat business built over years.
Some of the most impactful changes to our manufacturing process didn’t come from top-down mandates. They grew organically from field complaints: slow dissolution in application tanks, separation in mixed solutions leading to uneven dosing, or unforeseen side reactions causing acrid odors during formulation. Our process engineers run test-batches with different customer formulations, simulate dilution protocols, and consult with those actually handling the product at the usage point.
Understanding these everyday challenges makes problem-solving more meaningful. Sometimes changes as modest as altering filter paper pore size or adjusting solvent cut-points on the distillation step led to dramatically cleaner product. We see direct impact through reduced customer complaints, fewer field returns, and fewer technical “fire drills” to patch quality issues downstream.
As a manufacturer, every familiar face in logistics or customer relations has a story of learning the hard way—damaged payloads, unsatisfactory mixing, or sample inconsistencies undermining customer trust. We build in buffer stocks, retain historical batch samples, and maintain open reporting lines from the first day a technician logs a deviation. This focus on transparency helps prevent blips from becoming crises.
Every kilo we ship carries a story—when it emerged from the reactor, who signed off the batch, under what storage order it left. As production scale grew over the years, the discipline of traceability became more than a buzzword; it’s a lifeline for identifying and solving issues rapidly. For example, if a customer reports an anomaly, we trace immediately back to reactor logs, material sourcing, and lab data. Lessons from each root-cause analysis reinforce daily routines, and transparency with customers, partners, and regulators builds a network of mutual trust.
Open lines of communication matter. We openly publish lot data summaries and are always willing to disclose full analytic runs on request. We answer technical application cases by pulling out real production history, not canned answers. Direct contact with the crew working the plant floor means we never have to guess about a batch’s background. This level of access and openness reduces worry both in the lab and in the field.
Market needs shift, and so does regulatory oversight. Local agricultural authorities frequently revise their guidance, sometimes adding new impurity limits, recommended application rates, or reformulated mixtures that demand stricter compatibility. We witness trends—demand for higher purity, smaller lot sizes, or specific solvent-free grades—and adapt operations to match. Sometimes, this means upgrading reactor controls or investing in new testing instruments. Other times, it means closer relationships with agricultural consultants, learning about real, seasonal user challenges.
Readiness for change comes not from rigid SOPs alone but from decades of hands-on learning and accountability during scale-up, troubleshooting, or a product recall. Feedback cycles, full transparency, and ongoing investment stand behind the product customers use today. Competition challenges us to do better, but practical feedback from use in the field shapes priorities more than any outside pressure.
Each order of O,O-Diethyl-S-[N-(1-Cyano-1-Methylethyl)Carbamoylmethyl] Phosphorothioate carries the attention of those who produced it. Direct manufacturing experience isn’t just a point of pride—it means we respond faster, anticipate needs better, and guarantee every batch remains traceable, reliable, and repeatable. Every spec, from purity to grain size, and every process change, comes out of an ongoing conversation with users in the real world.
Long-term attention to detail and customer realities shapes each drum, bag, or sample. From the chemistry of the initial feedstock to the trouble-shooting lessons logged during night shifts, we bring authenticity and reliability to every shipment. This approach continues to define our place in the field and earns the ongoing confidence of those relying on our specialty chemicals, now and into the future.