| HS Code | 934283 |
| Chemical Name | 3-Dimethylaminomethylideneiminophenyl-N-Methylcarbamate |
| Synonym | Aldicarb |
| Molecular Formula | C7H14N2O2 |
| Molecular Weight | 158.20 g/mol |
| Physical State | Solid |
| Appearance | White crystalline solid |
| Solubility In Water | Moderately soluble |
| Melting Point | 100-104°C |
| Boiling Point | Decomposes before boiling |
| Cas Number | 116-06-3 |
| Toxicity | Highly toxic |
| Common Use | Pesticide (carbamate insecticide) |
| Odor | Odorless |
| Stability | Stable under normal conditions |
| Pka | 10.2 |
As an accredited 3-Dimethylaminomethylideneiminophenyl-N-Methylcarbamate (Or Its Hydrochloride) factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250-gram amber glass bottle with tamper-evident cap, labeled with product name, CAS number, hazard warnings, and lot information. |
| Shipping | Shipping of **3-Dimethylaminomethylideneiminophenyl-N-methylcarbamate (or its hydrochloride)** must comply with relevant regulations for hazardous chemicals. The product is securely packaged to prevent leaks and is shipped in UN-certified containers. Safety data and labeling are included. Temperature, light, and moisture protection are ensured during transit to maintain chemical stability and safety. |
| Storage | 3-Dimethylaminomethylideneiminophenyl-N-methylcarbamate (or its hydrochloride) should be stored in a tightly closed container, away from light, moisture, and incompatible substances such as strong oxidizers. Store at room temperature in a cool, dry, well-ventilated area. Ensure proper labeling and restrict access to authorized personnel. Follow all relevant chemical safety regulations and guidelines during storage and handling. |
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A chemist walking along the production line will see plenty of well-known active ingredients, yet few of them have generated as much discussion in our conference rooms as 3-Dimethylaminomethylideneiminophenyl-N-Methylcarbamate. Among colleagues in organic synthesis, this compound carries a reputation for reliability balanced with narrow application. Its hydrochloride salt opens another set of uses, so it becomes important to look directly at real-world properties, benefits, and where alternatives fall short.
Our process engineers built years of know-how into the repeated manufacture of both the free base and the hydrochloride salt. Structural analysis points out the key methylcarbamate function on an aromatic backbone, with the dimethylaminomethylidene imine side group contributing to reactivity. Each batch, from kilo lab through full-scale reactor, carries assurance in NMR, HPLC, and GC traces. Purity typically sits well above 98% by mass, with water controlled below 0.5% in the free base—a result checked against specification for every lot. Unlike some intermediates, both the base and the hydrochloride maintain visual consistency: fine white to off-white crystalline powder.
The hydrochloride form, with a consistent melting point and greater air-stability, holds increased appeal for process developers looking to build repeatability into multi-step syntheses. Packing the batch into double-lined drums ensures material integrity along transit routes exposed to variable humidity and temperature. Production volume scales to customer demand but keeps a focus on accuracy. Each step in our synthesis, from charge of dimethylamine to carbamoylation, reflects lessons learned over years of campaign work.
One clear application profile comes from crop protection research. As a structural analog to known carbamate pesticides, customers utilize the base or the hydrochloride in biological screening. Success of these assays often relies on fresh, high-purity intermediates, especially when selectivity profiles drive product discovery. Colleagues in contract synthesis regularly note that the hydrochloride’s solubility in water, methanol, and dichloromethane allows for broader formulation choices—a real plus for accelerated screening campaigns.
Medicinal chemistry teams have also shown interest in this carbamate, not just for its direct activity but as a building block to probe nerve agent antidote candidates and cholinesterase inhibition pathways. Timing in delivery matters for these projects, because lab priorities can change week to week, so we built production scheduling to adapt batch size with short lead times. GMP synthesis remains available for pharma research requiring additional documentation and process traceability.
Custom orders occasionally request isotopically labeled versions or scale-up to multicentric research programs, and our chemists feed back process improvement findings to keep certainty in each delivered lot. Core property—achievable with both forms—is the balance between reactivity and manageable handling risk compared to lower-molecular-weight carbamoyl chlorides or more volatile methyl isocyanates. Customers have said this specific molecule can sometimes replace multi-step intermediate constructions, saving them laboratory time.
The world of carbamates covers simple synthetic agents to advanced bioactives. We notice a few details: many alternatives bring handling headaches, with moisture sensitivity a recurring theme. For example, methyl isocyanate homologs demand extra diligence in PPE and engineering controls due to toxicity and volatility. 3-Dimethylaminomethylideneiminophenyl-N-Methylcarbamate in the hydrochloride salt avoids those extremes—a customer can open a drum, aliquot material, and store unused substrate with routine lab practice.
Compared with methylcarbamates bearing strong electron-withdrawing groups, our product straddles synthetic flexibility with reduced environmental persistence after use. Customers engaged in green chemistry frequently cite this point: its breakdown profile under normal hydrolysis tilts their favor toward this compound over longer-lived carbamates. That does not eliminate downstream environmental management, but practical experience in field trial applications has returned feedback: their cleaning cycles run smoother, with less leftover residue complicating disposal audits.
Our technical team took cues from direct user feedback when optimizing the process for the hydrochloride—a salt form designed not for shelf-appeal, but for real, everyday wear and tear in process environments. The hydrochloride maintains compatibility with robust solvents, which supports customers scaling lab procedures up to kilo plant use. Not all carbamates will provide such flexibility, and many require custom pre-conditioning, which means downtime and extra validation protocols.
Property aside, customer field reports signal patterns. Academic research labs use both forms to map biochemical pathways, profiling the material’s interactions in model enzyme systems. Pharmaceutical R&D groups rely on batch documentation supplied with each shipment, including impurity profiles and safety data honed by in-house validation and third-party review. Our environmental chemists liaise with field teams to help create safer, lower-impact application methods where residuals present a risk.
Manufacturers of fine chemicals have sought out the hydrochloride for intermediate coupling steps. Feedback over several years underscores the importance of manageable dusting, strong lot-to-lot consistency, and compatibility with heterogeneous reaction schemes. The compound’s performance in pilot-scale reactors—assessed directly in our contract manufacturing department—confirms that both the free base and the salt avoid common drawbacks attributed to clump formation or solvent incompatibility.
Partnerships with industrial process teams helped refine our post-reaction purification. Some competitors introduce trace side-products at the dimethylamine step due to temperature excursions; our in-house controls now ensure repeat runs free of measurable contaminants. With each scale adjustment, QA staff recheck critical points, using automated NMR sampling and rapid chromatography to halt issues before final packaging.
Nothing in our operation substitutes for hands-on oversight. Chemists on the shop floor have flagged water sensitivity issues in past runs, so our protocol keeps strict moisture control from weighing to final sealing. Stability studies under ICH conditions, run over 24 months, demonstrate the hydrochloride form’s robustness under ambient storage. By keeping impurities under 1%, and documenting every production variable, customer trust builds batch by batch.
Often, users mention that irregular supply from overseas vendors delays their R&D timetables. Our capacity—increased only after years of running smaller, reliable campaigns—lets us maintain schedule. Drum-to-vial-to-reaction flask, analysts and packers both check for cross-contamination. Whether in twenty-five kilo batches or small pilot lots, every stage carries the same analyst sign-off.
Anecdotes from procurement managers suggest rejections of imported supplies that lack complete, traceable paperwork. We back each shipments with data direct from our analytical suite—no extrapolations, only the numbers measured for that exact lot. Our logistics group, coordinating directly with end-users’ receiving staff, plans routes to minimize transit time and exposure to temperature swings, recognizing how real-life disruptions impact process chemicals most acutely at moments of seasonal shift.
Our process teams never consider a synthesis “finished”—the last five years brought a series of upgrades based on direct user comment. One example: customers moving toward flow chemistry systems needed particle sizes to meet strict suspension flow criteria. We ran successive pilot lots, adjusting granulation protocols, until the average particle diameter dropped to match flow reactor requirements. Instead of forcing every client to adapt their hardware, we change the process at source.
Direct calls from QC labs highlighted specific problems: contamination from time-expired packaging, loss of potency due to light exposure, and cross-reactivity with common inorganic salts. Each prompt led us to trial new storage, double-wrap, and opaque drum options. Today, inspections at raw material intake catch problem lots before ever hitting synthesis. It costs us time up front, but lowered the return rate by half in the last two years.
Process analytics now include single-lot tracing—each package lands with a barcode linked to full production and QA records. Project teams inspecting trackbacks told us this minimizes investigation time after an anomaly crops up in the customer’s lab run. A system honed by feedback, not theory, runs through the entirety of our workflow.
Academic and regulatory interest in carbamates keeps shifting as environmental monitoring sharpens. Nationwide, field studies in soil microbe degradation now include panels that capture all structurally similar carbamates, including ours. Our regulatory liaison tracks and reviews all public reports touching these profiles, relaying data back to both synthesis and disposal planning.
Changing compositions in agchem and pharma pipelines put pressure on every raw material. Our R&D group expects to see more demand for multi-functional intermediates—compounds like 3-Dimethylaminomethylideneiminophenyl-N-Methylcarbamate and its hydrochloride that can bridge several product spaces. The ability to offer both a base and a salt lets us react to evolving formulation needs.
Competitor tracing suggests that alternative carbamates occasionally win on price point alone. In our review, savings dry up when hidden costs from inconsistent shipping, failed reactions, or downstream cleanup get tallied. Our sales team hears from partners who made the switch: reliable shipping timelines, traceable testing, and a single-point complaint resolution outweigh minor sticker price differentials over time.
The industry now approaches carbamates with the expectation that suppliers do more than just fulfill paperwork. Our technical support teams advise users at both early R&D and process transfer stages, helping to evaluate the best fit. Informed by conversation, we strive for measurable reduction in residues left post-processing. The hydrochloride form often receives preference among environmental teams looking to minimize secondary waste. It dissolves promptly, avoids excessive solvent loads, and demonstrates predictable hydrolysis—a trait that fits current best practice for post-use site monitoring.
We responded to customer concerns about safe disposal by developing detailed guides, referencing actual study findings on environmental breakdown. When new research highlights a breakdown byproduct, our R&D heads review supply chain and begin work with partners to address any emergent risks. The process for such adjustments involves rigorous in-lab simulation before release of each updated recommendation.
Every day brings fresh requirements from research, manufacturing, and regulatory teams. Lessons learned from supplying 3-Dimethylaminomethylideneiminophenyl-N-Methylcarbamate and its hydrochloride shape the way we look at both established and future product lines. Our chemists—who remember shifting from gram to kilo scale—understand the practical gaps in supply, so they continue to refine not just bulk synthesis, but downstream packaging and delivery standards.
Decision-makers weighing product choices often reach out to discuss performance claims or blend reliability. We do not see those questions as administrative hurdles. They lead directly to concrete improvements in workflow, purity monitoring, and customer support. If one thing stands out after repeated campaigns, it is that deep technical experience, carefully gathered feedback, and open communication carry more weight than isolated specification sheets.
Whether used for screening new candidate molecules or as a pivot point in multi-step syntheses, this carbamate—base or hydrochloride—sits right at the intersection of lab, plant, and global supply chain. Our commitment remains: adapt production with transparency and rigor, build strength in partnership, and never allow quality to depend simply on routine instead of reflection.