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HS Code |
569262 |
| Product Name | 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride |
| Cas Number | 873132-76-8 |
| Molecular Formula | C7H5Cl2NO |
| Molecular Weight | 190.03 g/mol |
| Appearance | Pale yellow to brownish liquid |
| Purity | Typically >98% |
| Solubility | Reacts with water, soluble in common organic solvents |
| Synonyms | 2-Chloro-6-methylisonicotinoyl chloride |
| Smiles | CC1=NC(=CC(=C1)Cl)C(=O)Cl |
| Inchi | InChI=1S/C7H5Cl2NO/c1-4-2-5(8)3-10-6(4)7(9)11/h2-3H,1H3 |
| Storage Temperature | Store under inert atmosphere at 2-8°C |
| Reactivity | Reacts with water, alcohols, amines |
As an accredited 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride, 25g, is supplied in a sealed amber glass bottle with tamper-evident cap and hazard labeling. |
| Shipping | 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride is shipped in tightly sealed, chemically-resistant containers to prevent moisture ingress and leakage. The package is clearly labeled with hazard information and handled in accordance with local and international regulations for hazardous chemicals, ensuring safe transit and compliance with environmental and safety standards. |
| Storage | **2-Chloro-6-Methylpyridine-4-Carbonyl Chloride** should be stored in a tightly sealed container under an inert, dry atmosphere such as nitrogen or argon. Keep it in a cool, well-ventilated, and dry place, away from moisture, heat, and incompatible substances like strong bases, alcohols, and water. Use secondary containment to prevent leaks or exposure, and label clearly as a corrosive, moisture-sensitive substance. |
Applications of 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride in Industrial Manufacturing2-Chloro-6-Methylpyridine-4-Carbonyl Chloride serves as a specialized intermediate in several regulated chemical sectors. It contributes critical molecular functions in complex synthesis routes, providing foundational value in high-performance end products. Below, we detail verified downstream applications and key parameters relevant to quality, safety, and process integration. 1. Agrochemical Active Ingredient SynthesisThis intermediate forms a pivotal building block in the production of selective herbicides and insecticides, engaging in acylation steps during synthesis of pyridine-based crop protection agents. It enables precise substitution patterns, essential for target molecule activity and selectivity. The compound participates chiefly in closed-system batch reactions under controlled conditions, ensuring traceable ingredient provenance throughout the process. Industry compliance standards
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2. Pharmaceutical Intermediate for API ManufactureAs an acyl chloride, this material is instrumental in constructing core scaffolds for small molecule drug substances, particularly within the antihypertensive and CNS-active classes. Its reactivity promotes efficient amide bond formation, a fundamental transformation in API synthesis. Processes operate with regimented in-process controls, supported by batch traceability and validated cleaning protocols to prevent cross-contamination. Industry compliance standards
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3. Specialty Chemical for Liquid Crystal Material SynthesisIn the electronics sector, this product supports production of high-purity liquid crystal intermediates through acylation and functional group introduction. Purity and batch uniformity are vital, as defects translate into poor panel performance. Downstream synthesis demands tight control of by-product profiles and strict inert atmosphere operation. Industry compliance standards
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4. Intermediate for Veterinary Pharmaceutical SynthesisThis compound functions as an essential acylating agent in multi-step syntheses furnishing active ingredients for veterinary applications. Processes prioritize traceability, batch segregation, and controlled impurity profiles, given the product’s entry into regulated veterinary formulations intended for animal health markets. All transformations align with stipulated pharmacopoeial and GXP standards. Industry compliance standards
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5. Fine Chemicals for Dye and Pigment Intermediate SynthesisThis acyl chloride enables targeted molecular construction for high performance azo and anthraquinone dye intermediates, offering selectivity in color-forming reactions. Production lines demand continual monitoring for halide content to ensure downstream colorant purity. All manufacturing adheres to international dye safety and quality protocols and aligns batch records for traceability. Industry compliance standards
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As the team who develops and refines 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride right on the production line, we engage with this compound through every stage, from synthesis to packaging. Our facility sees the transformation from raw chemical feedstocks to finished, specification-checked product every day. Working up close with each batch, we understand how small variations during the synthesis can affect properties downstream. There is no substitution for what comes from firsthand oversight and the discipline that arises from direct production work.
Our current production model for this compound relies on a well-established chlorination process that we have tuned over many years. We maintain tight environmental controls and precise temperature monitoring, which has proven essential in achieving reliable yields and maintaining low levels of unwanted byproducts. After synthesis, we use gas chromatography and mass spectrometry to confirm purity, verify molecular structure, and check for trace contaminants. There are early-morning meetings right where the reactors run, and the conversation often revolves around how controls on chloride source or agitation speed cause real shifts in physical form or reactivity. Experience tells us that the debugged process we use sets us apart from factories focused primarily on output volume.
Our most recent output specifications put the purity of 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride above 98%, as measured in-house by HPLC and independently confirmed with offsite analytic labs. Batch-to-batch consistency has kept our re-test failures under one percent for the past three quarters—a metric that’s not from the marketing department but from our own in-process records. Moisture content falls below 0.2% due to constant vacuum drying and airtight transfer protocols. We pack the material in solid-state, but staff still check that each drum contains product free from caking, yellowing, or undue odor, both key indicators of off-specification material. Internally, our team agrees that nothing leaves the facility unless it passes visual and analytic review; pride in craftsmanship shapes that call.
2-Chloro-6-Methylpyridine-4-Carbonyl Chloride serves as a pyridine-based acyl chloride, offering a unique entry point for synthesis of agrochemical and pharmaceutical intermediates. People talk about this class of acyl chlorides in reaction pathways demanding specificity: the electron-withdrawing chloro substituent influences regioselectivity on downstream reactions, particularly in amide or ester formation. Over the years, we have observed which co-reactants gel best in pilot plant scale-ups, as well as pitfalls from unintended hydrolysis or incomplete conversions in less-controlled environments.
We have spent months calibrating the optimal reaction parameters, particularly due to this chemical’s sensitivity to moisture and alkaline impurities. Unlike more forgiving acyl chlorides, even a light touch of atmospheric humidity leads to visible HCl evolution and brown byproduct streaks. In our production area, everyone knows to move quickly from reactor to inert-atmosphere packaging. Knowledge acquired from failed pilot runs—like gelation caused by residual sodium ions or poor separation in liquid–liquid extractions—continues to steer our risk management procedures. This product’s reliability emerges from these lived lessons, not shortcuts or trading off purity to drive down price.
Compared with general acyl chlorides, 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride displays a curious reactivity profile. The methyl group stabilizes the 6-position against electrophilic attack, providing improved selectivity in coupling reactions compared with unsubstituted pyridine carbonyl chlorides. Academic colleagues confirm this indirectly through published NMR shift data, but actual users—R&D chemists from pharmaceutical process groups—often share direct syntheses outcomes at technical conferences or via direct consultation. That constant conversation lets us troubleshoot oddball reaction profiles based on live evidence. Shifts in trace impurity patterns or atypical byproduct formation sometimes point directly to small feedstock changes, and because our team sees these raw materials before anyone else, we can spot and correct for these anomalies earlier than most traders or packagers.
2-Chloro-6-Methylpyridine-4-Carbonyl Chloride is an active participant in the construction of more complex pyridine derivatives, often destined for agrochemical and medicinal applications. Teams in research and process development gravitate toward it for pyridine ring acylation, a key building block in the synthesis of pesticides, fungicides, or seed treatment actives. Over years of dialogue with downstream users, our technical service team reports that product stability under nitrogen, predictable melting profile, and clean reaction with amines remain main practical advantages.
Another area where we see heavy, consistent demand is custom drug development. Often, a pharmaceutical chemistry lab will reach out about a pilot run involving 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride—sometimes for a scale-up from grams to tens of kilos, sometimes for performing route scouting to supply an investigational new drug. Researchers relay that our product reduces batch-to-batch variability in high-throughput medicinal chemistry runs; one department head even cited improvement in successful coupling yields by several percentage points after switching to our material, which matched our own side-by-side trial results. Much of this outcome comes from minimizing colored tars or sidestep hydrolysis, solved only through aggressive moisture exclusion and handling experience honed over years. What seems trivial in a technical data sheet—say, residual acid or crystal habit—proves decisive on the bench for process scale-up.
Beyond benchmarks in laboratory application, our product withstands challenges during full-plant reactions. Commercial formulators report that the material’s granularity and low dust character simplifies charge and transfer into large-scale vessels, while its defined melting range—reproducible within two degrees Celsius—avoids operational surprises under heating cycles. Our technical team maintains a dialogue with plant engineers through every commissioning: discussing process bottlenecks, filtering strategies, and solvent choice, with a goal of keeping project clockwork running smoothly. Our on-site experts do not mind rolling up sleeves to run test dissolutions directly on the customer’s shop floor, which routinely uncovers practical advice for shipping, storage, and handling that theoretical documentation rarely anticipates.
Handling 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride at a multi-ton level is no small feat. Our own engineers remember cleanup and corrosion headaches before we perfected closed transfer under a dried nitrogen blanket. Early on, warehouses experienced a surge in ambient HCl whenever containers were left open while charging reactors; the lessons came with real cost when we replaced pitted steel and upgraded warehouse ventilation. Investing in vacuum-sealed drums and low-permeability liners eliminated cross-contamination, especially vital when our customers target strict final product specs.
Over time, the facilities staff developed storage guidelines based on real spills and loading dock mishaps. They flagged temperature stratification and proper racking as practical steps to prevent caking and compaction in stored product. Our modifications—elevated pallets, climate control closer to 25°C, and reinforced spill containment—directly improved shelf stability and simplified day-to-day handling. Whereas generic acyl chlorides tend to have broader temperature tolerances, 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride calls for respectful treatment; predictable shipment performance results when storage matches the compound’s needs from the outset.
Chemistry demands precision, and product selection in acyl chlorides is anything but random. For example, 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride diverges from simpler benzoyl or straight-chain chlorides through the combined effect of its unique ring and substituents. That chloro group at the 2-position alters electronic distribution, directly improving reaction control for downstream users searching for sharp selectivity. The methyl at position 6 shields sites prone to over-acylation or side-chain reactions. We see this reflected in both bench chemistry and pilot-plant scale-up, where lower side product formation increases overall process reliability.
Bench scientists in pharma development often look for a balance between reactivity and predictability. Less specialized acyl chlorides sometimes push reactions too far, leading to polyacylation or hard-to-remove impurities. The structure of 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride tempers those issues. Users report sharp separation in chromatography and less color contamination. In custom agrochemical synthesis, our product’s profile means downstream purification is less laborious—and yields climb as a consequence. This is traced in production records, not just brochures.
Generic acyl chlorides can offer low initial cost, but their unpredictable impurity patterns complicate scale-up. Our detailed focus on limiting trace halogens and organic residues in 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride—driven by fresh solvent processing and fume extraction—directly supports better compliance with today’s regulatory scrutiny. Kilo-lab end users appreciate the lower re-work burden, and bulk users lower their disposal costs for off-grade batches.
Our own pipeline includes side-by-side comparisons with alternative pyridine-derived acyl chlorides—particularly for new product development projects. We consistently measure spectral fingerprints and confirm that our product suppresses off-pathway reactions, especially those promoted by excess heat or trace water. We have dated records that show lower batch rejection rates in continuous production runs, a fact that resonates with both quality assurance managers and environmental compliance officers downstream.
Everything we know about 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride as a manufacturer comes through hands-on experience. There have been early days spent reconciling lab-scale procedures with full production volume, troubleshooting filtration problems that simply did not exist in glassware. There have been routine plant walk-throughs checking that every valve, vessel, and seal can handle this reactive material. There have been late-night calls from process customers uncovering temperature fluctuations or slow reaction kinetics, sometimes traced back to changes in storage humidity or packaging protocol.
Working from raw material procurement to packaged output, we witness firsthand what matters. The team has responded to shifts in supply chain purity, even sourcing fresh barrels of solvents multiple times in a single year to maintain consistency through global feedstock shortages. Our approach demands confirming each new shipment of reactants meets specification. Far from pro-forma checklists, this inspection accounts for the sometimes-subtle cues in appearance, odor, or reactivity drawn from years of familiarity with the compound. Seasoned staff catch off-notes quickly—yellowing near the drum seam or unexpected stickiness that portend downstream processing headaches.
Customers, particularly in regulated markets, care about traceability almost as much as performance. We keep detailed batch production and analytic logs, going years deep, to ensure that responders or auditors always have a clear path from finished product back to original source. These records help partners demonstrate regulatory conformance and facilitate root-cause investigation if a processing hiccup ever arises. Firms working towards ISO or cGMP certification routinely request and receive documentation straight from our batch archives, not simply summaries prepared for presentation.
Every run through our finishing room raises opportunities to learn and refine the process. Dealing with thermal sensitivity, we invested in more precise jacketed reactors, paired them with real-time temperature logging, and upgraded our purge gas drying system. While not a small outlay, the reduction in off-grade batches and improved yields paid for itself rapidly, and customer returns of off-spec drums sharply declined. We take seriously any incidents reported by our partners—a sticky valve here, a cloudy filtrate there—solving these issues at their root, not with quick fixes.
We recognize production scale does not insulate you from contamination risks. After detecting trace iron residue in two lots, our internal taskforce changed cleaning regimes, switched gaskets and joint types, and retired old transfer lines. Laboratory feedback flagged tiny but recurrent mass spec peaks the team hadn’t seen before; production staff traced them to a subtle oxygen ingress at a poorly-torqued flange. There’s no substitute for in-house troubleshooting—results come from answering those “what if?” moments with hard action and openness to change.
In years past, we supported custom requests for tailored batch sizes or alternate packaging forms, based not just on convenience, but safety or application context. Our experience with solvent blends used for direct charging into reactors has helped customers reduce static hazards and avoid solvent incompatibilities—an advantage that can’t be achieved with generic chemical brokerage. For shipment abroad, we worked closely with logistics teams to minimize transit time and environmental exposure, maintaining batch quality right through to the farthest customer.
A quality product alone does not cover the range of real-world demands. We trade direct technical support for formal sales scripts. Our lab and plant experts take questions on alternate process routes, safe disposal guidelines, or downstream reactivity tweaks day and night. Often, someone presents a reaction quirk unsolved by reference literature. Only by reviewing each site’s equipment layout or reaction vessel type do we offer advice—often closing feedback loops that bring us new insight on practical realities and long-term improvement areas. It’s a mutual partnership; both parties gain new perspective.
Chemists testing new routes often relay how small adjustments—say, a shift in quenching sequence, or switching solvent—lead to smoother workups. By systematically tracking these findings and validating them internally, our own methods advance, and customers benefit from the cumulative knowledge of every industrial run. We regularly invite operational staff from partner sites to compare best practices—from glove selection to inert gas ratios. Knowledge sharing proves critical to minimizing workplace incidents and raising both process efficiency and safety standards throughout our supply chain.
Our hands-on experience producing and refining 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride underpins everything we share. The product moves beyond a simple list of technical specifications into a comprehensive solution built on direct oversight, incremental improvements, and responsive service. From controlling impurities to optimizing storage and shipment, our learned approach to manufacture ensures real stability and high performance in our customers’ application spaces.
We see every drum as representing not just today’s technical achievement, but layers of accrued improvement over years—made possible through a blend of science, communication, and on-the-ground attention to detail. As synthesis and regulatory needs evolve, our team adapts, always grounding our standards in documented experience and technical trust. Conversations with our users shape tomorrow’s batches, keeping 2-Chloro-6-Methylpyridine-4-Carbonyl Chloride not just a reagent, but a reliable partner in chemical innovation.