| HS Code | 967631 |
| Chemicalname | Dimethylcarbamoyl chloride |
| Casnumber | 79-44-7 |
| Molecularformula | C3H6ClNO |
| Molecularweight | 107.54 g/mol |
| Appearance | Colorless to yellowish liquid |
| Odor | Sharp, irritating odor |
| Boilingpoint | 93-94°C (199-201°F) |
| Meltingpoint | -12°C (10°F) |
| Density | 1.168 g/cm³ at 20°C |
| Solubility | Reacts with water, soluble in organic solvents |
| Vaporpressure | 19 mmHg at 25°C |
| Flashpoint | 20°C (68°F) |
| Refractiveindex | 1.424 at 20°C |
As an accredited Dimethylcarbamoyl Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Dimethylcarbamoyl Chloride, 250g, is packaged in a sealed amber glass bottle with hazard labeling and a secure screw cap. |
| Shipping | Dimethylcarbamoyl chloride is shipped in tightly sealed containers made of materials compatible with corrosive and toxic substances, such as glass or high-density polyethylene. It is classified as a dangerous good, requiring appropriate hazard labeling, documentation, and handling by trained personnel according to international regulations such as IMDG, IATA, and DOT guidelines. |
| Storage | **Dimethylcarbamoyl chloride** should be stored in a tightly closed, corrosion-resistant container under a dry, inert atmosphere, such as nitrogen. Keep away from moisture, water, and incompatible substances like bases and alcohols. Store in a cool, well-ventilated area, preferably in a dedicated poison cabinet or fume hood. Clearly label all containers and restrict access to trained personnel only. |
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Every batch of Dimethylcarbamoyl Chloride we produce carries the signature of more than just strict quality standards—it’s the result of years boiling, distilling, and refining our understanding of this compound. Familiar from its distinct odor and clear, colorless liquid appearance, Dimethylcarbamoyl Chloride—often recognized by its CAS number 79-44-7—finds its primary home in the workshops of pharmaceutical and agrochemical companies, as well as among those creating specialized intermediates for advanced syntheses.
The numbers on the spec sheets carry weight because they tie back directly to what we see on the line. We run every lot through a battery of checks: purity consistently above 98%, moisture less than 0.1%, and traces of N,N-dimethylurea cleaned out below detection limits. Over the years, uncontrolled trace water has caused more headaches than most contaminants, so drying and storing in nitrogen atmosphere have turned into rituals.
Some manufacturers accept minor off-spec levels when the process feedstock isn’t as demanding. Around here, to keep reactivity sharp and control the extent of side-product formation, we work to maintain a narrow window for the acid chloride functional group. That translates to less waste in downstream syntheses, meaning faster turnovers and fewer vessel cleanings for our customers down the line.
Our production workers know that Dimethylcarbamoyl Chloride doesn’t allow for casual mistakes. Exposure to atmospheric moisture initiates hydrolysis, forming hydrochloric acid fumes that damage both equipment and product purity. As a manufacturer, safeguarding against water exposure isn’t about following a checklist. It’s about tight maintenance plans, double-checked seals, and making sure transfer lines never get left half-open on humid days. Leaks mean rework, and that costs both time and money.
On the storage side, stainless steel holds up better than glass in large-volume tanks, thanks to the material’s resistance to chloride-induced splintering. We cycle stock quickly, seldom holding lots for more than a few weeks, because the longer Dimethylcarbamoyl Chloride sits, the higher the chance for slow degradation. Some customers have asked for packaging in pressurized drums for additional safety. We’ve found that labeling, container selection, and carefully monitored warehouse environment make the difference between predictable deliveries and spoilage.
Looking back through our packing logs, the bulk of our shipments go to pharmaceutical intermediate makers. Dimethylcarbamoyl Chloride plays a starring role in the production of dimethylcarbamates, ureas, and selective herbicides. Chemistry students read about its use in synthesis of anti-cancer compounds and CNS drugs. Our customers often engage in custom reactions, combining it with a wide range of nucleophiles under anhydrous conditions. Years ago, industry used less selective acyl chlorides for similar chemistry, but batch inconsistency and impurity levels made those routes less appealing over time.
Agrochemical firms see value in the precise reactivity profile Dimethylcarbamoyl Chloride provides. It inserts readily under controlled temperature and pressure, allowing for high yields of carbamate esters used as pesticide actives or stabilizers. The difference between pharmaceutical and agrochemical applications often comes down to volume and purity cutoff. In both, trace amines and uncontrolled acid formation can skew results or damage downstream equipment, so the process knowledge behind every liter counts.
In a sea of functionalized acid chlorides, Dimethylcarbamoyl Chloride stands apart. We’ve trialed methyl and ethyl carbamoyl chlorides in similar processes. Each has its niche, but both tend to introduce excess volatility, increased toxicity, or challenging byproducts compared to our product. The reactivity of Dimethylcarbamoyl Chloride, likely due to the dual methyl groups, lands in a sweet spot—strong enough to drive selective acylation or carbamoylation, controlled enough to minimize overreaction on sensitive substrates.
N,N-Dimethylcarbamoyl Chloride also distinguishes itself from isocyanates and phosgene derivatives frequently used for related transformations. Isocyanates introduce excess hazard and tend toward lower selectivity, which complicates downstream purification. Phosgene alternatives hold a reputational burden, not just for toxicity but for equipment corrosion and waste handling hurdles. There’s a practicality angle here—on every run we balance regulatory pressure, operator safety, and the technical need for consistent reactivity. That’s why real-world experience with Dimethylcarbamoyl Chloride trumps lower-cost options that often create more work than they save.
No matter what label gets slapped on a drum, chemical companies across the globe all feel the squeeze from tighter regulatory oversight. Dimethylcarbamoyl Chloride doesn’t sit out that trend. In manufacturing, the pressure comes both from local workplace-safety guidelines and shifting international expectations about impurity reporting. The margin for error shrinks every year as new analytical tools let buyers pick up on trace contaminants that would have slipped through unnoticed a decade ago.
We’ve responded not by ticking boxes, but by throwing resources behind process optimization. That means more chromatography testing, investing in real-time reaction monitoring, and hiring operators who actually have hands-on experience with both the hazards and quirks of this chemical. Transferring best practices to our logistics partners is now a standing operating procedure, and our warehouse teams train for emergency response well above any regulatory baseline. These details don’t show up in the product specs but make all the difference in customer experience.
Dimethylcarbamoyl Chloride isn’t a commodity for casual use. That’s something our senior technicians remind the next generation of plant operators during training. This substance doesn’t tolerate shortcuts. While other products might forgive a lapse in drying protocol or storage temperature, one misstep with Dimethylcarbamoyl Chloride means corrosive vapor, hazardous off-gassing, or ruined feedstock. Our customers, typically PhDs and experienced engineers, often call to discuss fit-for-purpose use and scale considerations before placing an order. They’ve learned, sometimes the hard way, that success or failure starts before the drum is even opened.
From synthesis of specialty polymers to production of electroactive materials, creative chemists leverage Dimethylcarbamoyl Chloride’s predictable reactivity. Some users seek new ways to use its unique chlorinating power for fine chemicals or dye intermediates. The product’s physical properties—boiling point and vapor pressure—set real limits on process design, containment, and even ventilation specs for pilot plants. On the shop floor, we’ve seen ambitious projects fail due to underestimating incompatibilities between Dimethylcarbamoyl Chloride and basic amines or alcohol solvents. That’s why a seasoned manufacturer keeps lines open with clients, trading process notes before trouble starts.
Handling Dimethylcarbamoyl Chloride comes with real hazards—not just for lab workers, but at every step from reactor charging to drum loading. We’ve put a lot of thought and real investment into keeping our team and our neighbors safe. Air scrubbing systems and local exhaust aren’t just installed for compliance, but because anyone who’s felt the sting of hydrochloric acid vapor knows the risks firsthand. Operator training treats proper PPE, fast cleanup, and correct decontamination as more than just routine—they’re survival habits. In our daily meetings, supervisors go over potential incident reports, root cause analysis, and lessons learned, so every production run gets a little safer and sharper.
On the environmental side, waste minimization starts with tight process controls to limit off-spec batches. Leftover Dimethylcarbamoyl Chloride gets carefully destroyed in our on-site treatment system. Wastewater streams pass through neutralization and advanced scrubbers before they leave our property. Sometimes a customer will ask for advice about setting up their own treatment protocols, especially when scaling up for the first time. We share the lessons from our own journey—like the time a missed instrument reading led to an acid spill and forced us to rethink our secondary containment approach. Improvements to safety procedures never stop, because both regulatory rules and real-world risks keep evolving.
Many newcomers to the industry assume all Dimethylcarbamoyl Chloride works alike. The people who spend their days blending, filtering, and bottling know it’s more complicated. Over the years, we’ve seen how raw material purity, reactor residence time, and even geographic climate influence subtle properties of the finished material. A shipment sourced from bulk traders might pass a basic assay, but struggle in high-sensitivity pharma or electronics uses. Our internal audits catch these gaps before they turn into downstream failures.
Seasoned buyers tell us they reach out directly to manufacturers because they’ve experienced the real difference: less downtime for purification, more dependable shipment times, and technical support that doesn’t end after the invoice is paid. The feedback loop goes both ways. Manufacturing isn’t a static business, and those late-night calls from a frustrated process chemist often reveal where our QC system could tighten or a packing approach could move faster without compromising safety.
As demand for ever-purer intermediates rises, so do the challenges with Dimethylcarbamoyl Chloride. For us, research and engineering teams work side by side to shave a fraction of a percent from impurity levels, or to develop drums that can handle extended transit through multiple climate zones. Some of our R&D chemists look for paths to synthesize the material with less environmental load, searching for recyclable solvents and lower-waste chlorination routes. Getting there means balancing cost, sustainability, and technical integrity—a tough puzzle, but one that’s already driving incremental improvements in our process.
New applications keep emerging. Advanced polymer manufacturers now explore niche uses for Dimethylcarbamoyl Chloride, banking on its ability to integrate unique functional groups without disturbing sensitive backbone structure. Electronics companies test its viability in next-generation battery electrolytes and coatings, where contaminant ions could spell disaster. Our role as a producer means we get a window into early-stage innovation. The more we work with our end-users, the more opportunities we find to refine the product and meet increasingly stringent criteria.
Every liter of Dimethylcarbamoyl Chloride that leaves our facility carries not just a certificate of analysis but the sum of years spent iterating on process know-how. In this business, cutting corners is a false economy. Real discipline, from batch documentation to emergency drills, brings reliability that customers notice—whether they’re running a pilot campaign or producing metric tons every month. Often, a client doesn’t see the quiet work that happens behind the scenes: from fixing vacuum leaks before they become major incidents, to running response time drills late in the evening, to chasing a tiny impurity that can make the difference between a clear NMR and a failed synthesis.
People in this business know chemicals like Dimethylcarbamoyl Chloride reward attention to detail and penalize neglect. That’s something only those on the manufacturing floor truly understand. Every day, our team brings a commitment to constant improvement—because from experience, the margin for error shrinks as new applications, regulatory rules, and customer standards evolve. Our perspective as a manufacturer doesn’t just color how we make product; it shapes every conversation with our clients and every innovation we chase in the lab. With Dimethylcarbamoyl Chloride, deep knowledge drives reliability, safety, and results that matter in the real world.