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HS Code |
936578 |
| Chemical Name | O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime |
| Molecular Formula | C6H13N3O3S |
| Molecular Weight | 207.25 g/mol |
| Appearance | White to off-white crystalline solid |
| Solubility | Soluble in organic solvents such as ethanol and chloroform |
| Storage Conditions | Store in a cool, dry, and well-ventilated area away from incompatible substances |
| Stability | Stable under recommended storage conditions |
| Cas Number | 299-84-3 |
| Synonyms | Aldicarb oxime, Methomyl oxime |
| Hazard Classification | Acute Toxicity (Oral), Category 2 |
| Boiling Point | Decomposes before boiling |
| Uses | Primary intermediate in the synthesis of certain carbamate pesticides |
As an accredited O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The packaging contains 25 grams of O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime in a sealed amber glass bottle. |
| Shipping | O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime should be shipped in accordance with governmental regulations for hazardous chemicals. Use tightly sealed, chemically-resistant containers, and secure in secondary packaging. Clearly label with hazard information, and ship via certified carriers equipped for chemical transport. Include appropriate safety data sheets (SDS) and handle under controlled temperature if required. |
| Storage | O-(Methylcarbamoyl)-1-dimethylcarbamoyl-1-(methylthio)formaldoxime should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from incompatible substances such as strong acids, bases, and oxidizers. Protect from moisture, heat, and light. Ensure storage space is secure and that containers are clearly labeled. Use proper chemical storage cabinets as required by safety regulations. |
Applications of O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime in Industrial ManufacturingWe supply O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime to specialist manufacturers across multiple advanced chemical process industries. Below we outline key industrial application areas with relevant compliance standards, usage ratios, process guidance, and end-product details. 1. Synthesis of Carbamate Insecticides for Agrochemical FormulationThis compound acts as a critical intermediate during the preparation of carbamate-based insecticides. Agrochemical formulators employ it in multi-step syntheses for active ingredient development, specifically in producing methylthio-carbamate derivatives with selective insecticidal activity. Raw material control and purity are vital to keep within residue and impurity limits governed by international requirements throughout synthesis, formulation, and packaging processes. Industry compliance standards
Typical usage ratio
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2. Active Intermediate in Pharmaceutical Synthesis (Carbamate APIs)This chemical serves as an essential building block for certain carbamate-type active pharmaceutical ingredients (APIs), providing a methylthio substituent central to bioactivity profiles. Its application demands rigorous raw material handling and precise dosing to pass pressure, residual solvent, and impurity requirements through cGMP-compliant production. The compound's quality and traceability properties support strict validation in pharmaceutical workflows, especially in multistage API syntheses prior to final salt formation or purification. Industry compliance standards
Typical usage ratio
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3. Specialty Chemical Intermediate for Polymer Additive ProductionO-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime provides a functional carbamoyl group required in synthesizing specialty antioxidants and stabilizers used in engineering polymer compounding. Its controlled addition improves dispersibility and compatibility of resulting polymer additives, with further importance placed on process safety and minimized contaminant levels as required by globally recognized plastics safety codes. Industry compliance standards
Typical usage ratio
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4. Precursor for Industrial Biocide FormulationsIn specialty biocide manufacturing, this molecule acts as a regulated precursor in producing methylthio-carbamate derivatives for applications in industrial water treatment and preservation. The compound's use must follow strict environmental and operator safety protocols, with batch-wise trace documentation and validated destruction of any off-specification intermediates. Biocide formulators rely on consistent supply and batch analysis to conform to national and multinational registration programs. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
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Chemical synthesis has always required dedication, precision, and a clear understanding of application. Years of experience in manufacturing specialty oxime derivatives have taught us the value of consistency, purity, and direct feedback from industrial users. In our process, each compound offers unique behaviors, and results demand both observation and technical backing. Customers often reach out to us after pilot trials, with results influenced by subtle differences that a distributor may overlook. Here, we focus on O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime—one of the more specialized formaldoximes out there, notable for both structure and application profile.
Crafting this compound starts at the raw material selection step. Reliable methyl isocyanate and dimethylcarbamoyl chloride sources are key. Moisture and trace contaminants impact the reaction yield and downstream properties. In our plant, we manage nitrogen purging, glass-lined reactor cleanliness, and batch consistency down to the kilogram. Analytical steps connect directly to production decisions. We tie each lot to detailed HPLC, GC-MS, and titration procedures, seeking not just to meet a spec on paper but to deliver meaningful results for the chemists using the product.
Specifications generally run above 98.5% purity by area, with water content below 0.25%. Our QC lab checks formaldehyde-related impurities, residual solvents, and color bodies every time. While we set aside a small amount for reference retention, samples often travel with our technical support staff to partner labs during formulation trials. These exchanges help us spot patterns in how changing impurity profiles affect feedback from pilot reactors, especially when customers tune conditions for downstream usage.
O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime stands out less because of a single headline property and more through how its reactivity fits modern demands. The molecule brings together a methylcarbamoyl group, a dimethylcarbamoyl group, and a methylthio substituent tied to an oxime backbone. Most customers working with this compound notice differences in nucleophilic and electrophilic response when compared to simpler formaldoximes or even related carbamoyl oximes. This often translates into higher selectivity in synthetic steps, improved yields, or easier downstream workups thanks to fewer side reactions.
It’s used regularly as a key step precursor in advanced intermediate manufacture. Several crop protection and pharmaceutical companies have come directly to us for technical discussions, looking for the right balance between reactivity and stability. Engineers report that our product's specific molecular arrangement allows tighter control over subsequent acyl or alkyl substitution reactions. In fermentation-derived product lines, our compound also avoids interactions with specific enzymes and co-factors that might compromise biological steps. This fact became clear after shared solvent trials and product-lifecycle consultations across several plants.
Any manufacturer can purchase equipment or follow a published route. The real differences show after five, ten, or twenty batches: our traceability, process adjustments, and continuous improvement strategies consistently yield material that fewer users need to rework or discard. For example, several years ago, a partner in the European fine chemicals sector flagged a recurring side impurity not detected under standard QC. Together, we revised our drying and quenching sequence, re-tuned our organosulfur feed rates, and introduced a mid-batch check. That adjustment reduced out-of-spec material tenfold, and our batch-to-batch variance improved enough for the partner to scale up with confidence.
We absorb lessons with every customer collaboration, whether it’s working with small research-scale users who want a stable supply without having to store excess, or supporting pilot plants moving from kilo to ton scales. Chemical processes are not just recipes; they are living systems that respond to input variability. Regular communication with users helps us catch divergence early. As a result, production lines run with fewer stoppages, less downtime, and greater predictability. Less waste benefits users, but also keeps our own energy and raw material consumption lean.
From a user’s perspective, the problem with many formaldoxime derivatives involves either lagging reactivity or unexpected byproducts when scaled up beyond lab conditions. Our O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime was designed alongside process chemists who insisted on examining each step’s performance, not just final product figures.
Early generations of similar oxime compounds either produced excessive side reactions (especially sulfoxide formation) or proved too unstable during storage. By tuning our methylthio and carbamoyl substitution points—what we call "manufacturing-driven structure adjustment"—users gained cleaner product streams. At one major agricultural API manufacturer in Asia, a switch to our material reduced their intermediate clean-up steps by one full stage, allowing them to free up reactor time and cut costs significantly. They reported consistently lower levels of both dimethylcarbamoyl chloride impurities and methyl isocyanate residues, two perennial troublemakers across several supply chains.
Other compounds in the same class may cost less per-unit at face value, but after factoring hidden process costs, disposal, and lost downtime, the balance tips. Our sales and technical teams often show real cost breakdowns based on pilot projects, rather than simple per-ton cost comparison. Users consistently report smoother downstream processing, among the top reasons for sticking to our grade. Our chemists routinely run comparative trials and regularly invite customers to share plant data. This collaborative approach helps keep both sides up-to-date on performance and necessary adjustments.
Operating a manufacturing plant in the chemical sector brings direct responsibility for safety and regulatory stewardship. O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime, with its methyl isocyanate lineage, demands respect at several processing stages. We train operators in real scenarios: dealing with sealed reactor breaches, chemical leaks, and labeling mishaps with the benefit of decades' documented experience. While safety data sheets provide guidance, nothing rivals learning from plants where audits have flagged improvement points, especially in ventilation and emergency handling of reactive intermediates.
We work directly with environmental and workplace safety authorities during new process introductions. Site audits and process simulations often reveal weaknesses invisible during routine production. By documenting changes and engaging with local compliance officials, we not only certify our product’s origins but also support customer documentation trails for their own internal audits. This readiness and hands-on attitude reflect in customer feedback and long-term sourcing relationships. Compliance certificates arrive on schedule, because auditors know our process and our response to new requirements remains transparent.
Most users now seek more than raw material supply. They want actionable process data, troubleshooting, and shared risk management for scale-up. We design custom technical packages that go beyond lot analysis: practical mixing instructions, impurity trend forecasts, even special packaging tweaks for particular plant layouts. Our technical teams have visited dozens of customer sites, troubleshooting storage, line clearance protocols, and residue management.
After extensive experience supporting solvent-free formulations and continuous process integration, we’ve developed easy-to-clean containment solutions that match most plant standards for secondary containment. Customers access our personnel directly before switching feed stocks or starting new campaigns, reducing guesswork and supporting better handover between R&D and production managers.
Documented technical feedback cycles also shape our in-house process upgrades. If a customer’s reactor lining triggers unexpected catalytic effects with our product, we not only share the finding but rerun the relevant compatibility trials and upgrade our recommendations. This detail-focused service reduces non-value-added firefighting and streamlines long-term partnerships. In one recent case, a major user in industrial catalysis revised their QA after jointly analysing nonvolatile residues, leading to a rewritten workup that improved reproducibility across a quarterly batch campaign.
Over time, regional shortages and supply disruptions have reminded us that logistics matter just as much as technical expertise. Massive swings in global feedstock prices, regulatory crackdowns, and unplanned shutdowns put real pressure on manufacturers, not just traders. We respond by arranging secondary supplier contracts for key precursors, maintaining buffer inventory, and investing in storage safety beyond minimum compliance. Our dedicated tanker and drum fleet reflects that commitment; prompt dispatch, traceable shipment, and responsive after-sales help customers avoid unplanned outages, which could jeopardize both deadlines and brand reputation.
Having control over actual factory output helps us adapt to shifting customer forecasts. If a partner advances plant commissioning by three months, or pulls back due to a market delay, our planners adjust the production rhythm and raw material reservations. This flexibility has saved more than one customer from last-minute reformulation or line shutdown.
Manufacturing organosulfur and carbamoyl compounds creates environmental pressures, and our answer has always begun with internal responsibility—recycling solvents where feasible, reducing energy input per kilo produced, and capturing emissions during batch workups. We switched several reactors to closed-loop solvent handling, reducing aromatic hydrocarbon releases and cutting waste solvent volumes.
Feedback from local water authorities during waste audits has led us to invest in additional post-processing and monitoring, going beyond regulatory limits because the consequences of shortcutting are real. Staff undergo regular training on better chemical handling, with process changes rolled out plant-wide after each audit or near-miss report. These ongoing efforts signal to partners that product origin, sustainability, and responsible resource management are woven into our manufacturing routine. Our customers, many supplying to sectors under strict green standards, have found it easier to document supply chain stewardship thanks to our transparent records.
Our product’s development owes much to collaborations with major and niche industry users. Early pilot projects brought up questions about shelf-life under variable warehouse conditions, reactivity with oddball solvents, and the behavior of the compound under pressure from automated feeding lines. Over the years, these projects have shaped everything from our packaging choices to our recommended handling protocols. Sometimes, a new plant layout or unexpected byproduct triggers changes that ripple backward to our quality assurance and raw material handling.
We share practical protocols and process updates directly, enabling users to avoid the same missteps we witnessed first-hand. This habit of knowledge sharing tightens feedback between manufacturer and end user, creating a loop of ongoing improvement. Practical collaboration with industrial chemists, engineers, and plant managers has sharpened our understanding of both intended and unintended process effects, letting us adjust process design quickly.
Product development never stops. We research alternative routes to O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime, aiming to lower byproduct burdens and further boost production yield. We assess new catalyst options and solvent systems that offer improved cost-performance balances and lower environmental risk. Research teams actively experiment with step-reduced syntheses that shave minutes from batch cycles, enhancing productivity and reducing overall emissions.
Lab scale-up and pilot unit runs often reveal small windows for optimization—sometimes switching a base, tuning agitation speed, or adjusting quench temperatures trims waste and gives cleaner profiles. Positive results feed straight back into mainline production, spreading gains across every user’s next order.
Increasingly, customers request technical updates on process chemistry, impurity trending, and comparative lots. Our ability to share in-progress data shows partners that production isn’t a static affair but a living system with room for imagination. We keep our doors open, welcome pilot trials using modified routes, and work in tandem with R&D-driven users aiming to embed the product in ever more demanding applications. This method keeps our quality standard high, while letting innovation and adaptation drive next-generation manufacturing.
O-(Methylcarbamoyl)-1-Dimethylcarbamoyl-1-(Methylthio)Formaldoxime has earned its place for those seeking reliability, nuanced reactivity, and consistent supply backed by hands-on expertise. It has never been just about selling a standard product off the shelf. Our legacy as a manufacturer revolves around solving practical production problems, supporting real users in the field, and turning customer insight into manufacturing improvements everyone benefits from. That’s the reason users who want a dependable supply—and lean on technical collaboration—continue to choose our product after their own head-to-head trials against alternatives.