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HS Code |
991622 |
| Cas Number | 660-73-1 |
| Molecular Formula | C7H14NO3P |
| Molecular Weight | 191.17 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 110-112°C at 1 mmHg |
| Density | 1.104 g/cm3 at 25°C |
| Refractive Index | 1.428-1.432 |
| Melting Point | -50°C (approximate) |
| Flash Point | 126°C |
| Solubility | Soluble in common organic solvents (e.g., dichloromethane, ethanol) |
| Purity | Typically >97% |
| Storage Temperature | 2-8°C, Keep tightly closed |
As an accredited Diethyl Cyanomethylphosphonate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Diethyl cyanomethylphosphonate, 100g, is supplied in a sealed amber glass bottle with a tamper-evident cap and detailed hazard labeling. |
| Shipping | Diethyl Cyanomethylphosphonate must be shipped in accordance with hazardous material regulations. It should be properly labeled, securely packaged in UN-approved containers, and transported by certified carriers. Shipping documentation must include safety data sheets (SDS). Storage and handling protocols must ensure protection from moisture, heat, and incompatible substances during transit. |
| Storage | Diethyl Cyanomethylphosphonate should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from sources of ignition, moisture, and incompatible substances such as strong oxidizers and acids. Protect from direct sunlight and store at room temperature. Properly label the container and ensure appropriate safety precautions, including secondary containment, to prevent leaks or accidental exposure. |
Applications of Diethyl Cyanomethylphosphonate in Industrial ManufacturingDiethyl cyanomethylphosphonate serves as a key intermediate in specialized chemical synthesis across several tightly focused industrial sectors. Its unique reactivity enables precise downstream transformations, supporting the development of high-value end products where purity, consistency, and regulatory compliance are mission-critical. We supply industrial producers with material specification transparency, facilitating streamlined formulation and reliable process integration at global manufacturing sites. 1. Active Pharmaceutical Ingredient (API) Synthesis for Antiviral and Oncology DrugsManufacturers use this compound as a phosphorus-containing alkylating agent during the multi-step production of nucleoside analogs and select kinase inhibitors. The ingredient enters at a late-stage functionalization to introduce the cyanomethylphosphonate group, allowing for site-selective incorporation critical to the bioactivity of finished APIs. Stringent regulatory oversight demands precise batch record control and analytical verification at each stage. Industry compliance standards
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2. Agrochemical Synthesis: Herbicide and Plant Growth Regulator ManufacturingThis intermediate functions as a phosphorus donor in the construction of organophosphonate-based crop protection agents. The ingredient is introduced during the synthesis of active compounds targeting weed and grass control, particularly in the assembly of analogs that require robust soil stability and plant uptake performance, demanding precision to control off-target residues. Industry compliance standards
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3. Flame Retardant Additive Intermediate for Engineering PolymersProducers incorporate this phosphonate compound as an intermediate for synthesizing phosphorus-containing flame retardants used during engineering plastic resin modification. Manufacturers rely on precise metering to generate flame-retardant additives with defined decomposition profiles and limited migration during processing, enabling certified fire-resistance in finished polymer goods. Industry compliance standards
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4. Synthesis of Phosphonate Ligands for Metal Extraction and CatalysisMetal processing and chemical catalyst manufacturers apply this intermediate to construct phosphonate ligands for complexation, supporting selective extraction and homogeneous catalyst applications. Controlled dosing and monitoring allow for reproducible ligand architecture, important for downstream processes with strict impurity or stability requirements. Industry compliance standards
Typical usage ratio
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Decades of experience on the production floor have taught us there’s no shortcut to quality—especially when working with specialty chemicals like Diethyl Cyanomethylphosphonate. In our facility, every reaction vessel, batch record, and quality check is influenced by firsthand knowledge of what chemists, process engineers, and research teams truly look for. This compound, with its distinct formula and versatile reactivity, has found a vital place in many synthesis processes, particularly for those engaged in pharmaceutical development, agrochemical research, and fine chemical innovation.
Colleagues in R&D often remark on the challenge of finding a reliable phosphonate reagent that delivers both purity and batch reliability. Diethyl Cyanomethylphosphonate, engineered and manufactured under our direct oversight, answers this challenge. Each batch we prepare starts with carefully sourced raw materials and a reaction protocol we have tuned over years of hands-on production—from temperature control down to the timing of each addition.
Few chemicals demand more attention to detail during synthesis than this one. We recognize that downstream applications—such as the Horner–Wadsworth–Emmons (HWE) reaction—can be unforgiving if a phosphonate’s by-product profile isn’t kept in check. All of our lots are produced under strictly controlled spectral verification, including NMR and GC-MS screening, making sure impurity levels remain at trace amounts.
Customers walk us through their needs: a simple batch for reagent evaluation, or multi-kilogram quantities for patented process steps. Whether they’re optimizing a formulation for an advanced drug candidate or pushing the limits in preparing novel pesticides, the feedback is clear. Material consistency is non-negotiable. Over many years supplying Diethyl Cyanomethylphosphonate to these innovators, we’ve learned that purity matching their specifications often spells the difference between a promising reaction and a dead end.
The molecule’s structure—bearing a cyanomethyl group attached to diethyl phosphonate—gives it unique reactivity for carbon–carbon bond formation. Our standard model, offered in a purity range exceeding 98 percent, delivers low water content and narrow-range impurity profiles. The distinctive smell, color, and viscosity serve as quick indicators for our team during critical QA stages. These hands-on checks matter, especially for customers scaling reactions for the first time.
Academic collaborators often ask what makes our Diethyl Cyanomethylphosphonate stand apart from generic or resold alternatives. The answer often comes down to small things: cleaner reaction footprints, reduced side products, and fewer headaches during workup. Not all phosphonates behave the same in the field. Trace levels of previous-batch carryover, excess ethanol, or unwanted phosphorylated byproducts can introduce surprises at scale. Years of experience have helped us build safeguards into every batch—such as dedicated glassware, solvent purification protocols, and in-process analytical checkpoints.
Any manufacturer can list a specification sheet on their website, but not all can point to months of pilot feedback on crystallization, purification behavior, or post-synthesis handling. Our conversations with process chemists highlight why they keep coming to us for Diethyl Cyanomethylphosphonate. The chemical’s performance in actual reaction systems—its solubility in typical organic solvents, stability under atmospheric conditions, and absence of stubborn emulsions—means shorter troubleshooting, less downtime, and more reproducible yields.
Chemists working at scale have commented on the practical difference: minimal batch-to-batch variability, clear phase separations during workup, and a product that doesn’t force them to waste time on extra purification. This comes from actively listening to their challenges and feeding those lessons back into our production methods—stirring speeds, vacuum drying, and the use of modern inert transfer technologies all stem from those long lab discussions.
As manufacturing chemists, we know that demands shift almost faster than the product lifecycle. Some months focus on enabling rapid small-batch syntheses for method development. Other seasons bring requests for multistep GMP synthesis and kilogram-scale lots for commercial launches. A close partnership with downstream users keeps us informed on what’s really required: not only clean material but also on-time release and reliable post-sale support. Stories come in about how a sudden project redirect called for expedited shipment or on-site product handling advice. We treat each of these as opportunities to refine both product and service.
Our Diethyl Cyanomethylphosphonate model has evolved in response to these real needs. Users requested tighter moisture controls for water-sensitive ligation reactions. Analytical labs flagged microgram-level impurities that impacted advanced HPLC analytics. We brought new purification columns, high-purity solvent loops, and staged vacuum systems online directly as a result of these requests. The cumulative knowledge from each feedback cycle means our current lot numbers carry with them a lineage of direct problem-solving, not just a spec listing.
Phosphonate chemistry opens doors to advanced synthesis not easily reached by other reagents. Diethyl Cyanomethylphosphonate’s blend of nucleophilicity and stability gives medicinal chemists room to explore new carbon frameworks, especially in the hands of those advancing small-molecule candidates. Our direct conversations with these scientists highlight the product’s role in allowing selective coupling, minimizing byproduct complexity, and shortening chromatography time.
It’s not only pharmaceutical labs that find value here. Agrochemical researchers, seeking to modify pesticide backbones or introduce novel functionalities, repeatedly draw on this reagent’s performance. We’ve seen it work in both traditional and emerging reaction protocols, including those requiring robust reactivity toward aldehydes and ketones with high selectivity. Our technical team, having worked through hundreds of user-supplied procedures, tailors support not just on material supply, but also on troubleshooting and optimization directly with the researchers shaping tomorrow’s solutions.
Questions regularly come to us about what sets Diethyl Cyanomethylphosphonate apart from other phosphonates on the market. Users sometimes consider alternatives like Triethyl phosphonoacetate or Dimethyl methylphosphonate, but these differ not only in structure but also in reactivity and handling profiles.
Unlike simple methyl or ethyl phosphonates, our product contains a cyano group—delivering a more activated methylene position. This feature enhances condensation reactions, which lets chemists form complex frameworks in fewer steps with improved selectivity. In our customers’ words, this cuts weeks from experimental timelines. Attempting the same transformations with alternative phosphonates often brings lower yields, unwanted migration, or extra protection/deprotection cycles. We’ve supported troubleshooting for several teams who initially tried generic options, only to switch back after hitting solubility or purity obstacles.
Another recurring difference relates to volatility and thermal stability. Some common phosphonates display substantial volatility or breakdown under mild heating, complicating scale-up work. Our model, with decades of design improvements, maintains a thermal profile suited for both bench-top and pilot scale use—no sudden outgassing, no unexplained weight loss, and consistent melt points. Safety teams have noted reduced fume episodes and clearer handling information, which supports both lab morale and compliance efforts.
We also field inquiries about supply chain reliability. Many competitors source intermediates from brokers or third parties, placing risk on consistency. By owning each step, from reagent sourcing to in-house synthesis and packaging, we offer not just quality but also accountability. Project leads have told us how much they value having a direct line to the people who actually produce their materials—removing confusion if questions arise mid-process, or if a project pivots late in the development cycle.
Experienced chemists know reagent selection isn’t just about logging catalog numbers. One missed impurity can undo weeks of reaction work. We’ve built an open-door policy between production and technical support, so scientists using our Diethyl Cyanomethylphosphonate can reach out for firsthand advice. Reports have come in about how a quick phone call with our process chemists resolved a late-stage crystallization issue or clarified storage requirements for an upcoming regulatory audit. Maintaining this channel is as important to us as meeting every analytical specification.
Our knowledge base doesn’t stop with synthesis routes. Knowledge from workplace training, firsthand troubleshooting, and user feedback feeds into our ongoing process refinements. By being transparent about origin, controls, and potential limitations, we build trust grounded in reality, not just marketing bullet points. Any time we spot a trend—recurring inquiries about shelf stability in humid climates, or special requests for packaging bulk quantities—we adapt right away, ensuring the actual product matches laboratory and industrial realities.
Modern chemical manufacturing doesn’t happen in a vacuum. Environmental and regulatory expectations have added new layers of complexity—and opportunity. Over recent years, our facility has focused on reducing solvent usage, introducing solvent recovery systems, and shifting toward lower-energy purification cycles. Not every process can be made green overnight, but we have made progress batch by batch. Several routine users have commented on how these upgrades have kept their own environmental audits simpler, especially when tracing the provenance and carbon impact of specialty reagents like Diethyl Cyanomethylphosphonate.
Feedback from both multinational R&D centers and lean startups has guided additional protocol changes. Requests have included more recyclable packaging, detailed supply chain documentation for internal compliance, and improvements to inventory tracking for critical path projects. We have worked these requirements directly into our workflow—prioritizing re-sealable containers, electronically logged batch documents, and barcoded shipment tracking. These may sound like small steps, but in aggregate, they reduce delays, prevent loss, and enhance user confidence.
Customer input has also prompted us to review—and improve—our post-sale technical and regulatory support. Many companies now want in-depth traceability for each reagent used in their synthesis route, especially when submitting for regulatory review or intellectual property filings. Our commitment to full-lot documentation, traceable from raw material to final drum, meets these needs directly. As a manufacturer, standing behind each number on our CoA is a badge of our accountability and direct experience.
Over years of producing Diethyl Cyanomethylphosphonate, we’ve learned that supporting both small-lab innovation and industrial rollout demands a very active approach. This involves more than just watching sales volumes. We engage regularly with laboratory heads, scale-up engineers, and procurement leads to gauge shifting needs—sometimes even customizing glassware, refining temperature staging, or adjusting batch sizes on the fly.
Emerging sectors, particularly those blending organic synthesis with material science or advanced biology, have begun integrating this reagent into new frontiers. Applications in specialty polymers, site-selective labeling, and even electronics development have surfaced during tech exchanges. Our role as a hands-on manufacturer allows us to respond at the speed of research, rather than lagging behind it with generic catalog offerings. Scaling up to semi-bulk while preserving every technical advantage for niche use cases means walking the floor ourselves, not just reading market reports from a distance.
Tales come in from labs who tried contract processors or anonymous suppliers—only to run into delays, mismatched batch logs, or unexplained purity shifts. In this field, that degree of uncertainty costs time and money. By owning the process end to end—raw materials selection, procedural execution, direct QA, and prompt shipping—we give our customers direct answers and direct results. When a project needs rapid turnaround, the person shipping the product is often also the person who oversaw its synthesis. This feedback loop narrows the gap between what’s made and what scientists actually need.
We understand that trust builds slowly, often one batch at a time. Reliable manufacturing, open communication, and honest acknowledgment of both the product’s strengths and its limitations set a foundation for long-term collaboration. Many projects only reach commercial success after dozens of synthesis iterations and process tweaks. Being a partner throughout each cycle—not just a supplier—means carrying each lesson, adjustment, and technical advance forward for everyone’s benefit.
Chemistry doesn’t stand still. With new synthetic methods and automation protocols arriving regularly, we keep one eye on adaptability. Continuous discussions with research leaders shape our investments in new reaction vessels, improved safety staging, and digitalized batch tracking. The feedback loop never closes, whether about single-use process runs, long-term shelf stability, or compatibility with next-generation reaction systems.
Requests for more granular documentation, on-demand analytics, and rapid release to labs drive updates in our batch release standards. We don’t just welcome these challenges—we rely on them to keep our Diethyl Cyanomethylphosphonate production not just current, but a step ahead of demand. In our experience, matching technical flexibility with stable batch quality serves both trailblazers in discovery chemistry and process teams building tomorrow’s commercial standards.
Manufacturing Diethyl Cyanomethylphosphonate isn’t just a technical pursuit; it’s a practice grounded in respect for those who push chemical synthesis forward. That perspective—born out of real, hands-on work—continues to guide every choice we make, every improvement we drive, and every conversation we share with those relying on our product to solve tough chemical problems.