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HS Code |
194828 |
| Iupac Name | 1-(6-methylpyridin-2-yl)ethanone |
| Cas Number | 24342-94-5 |
| Molecular Formula | C8H9NO |
| Molecular Weight | 135.16 g/mol |
| Appearance | Pale yellow to brown liquid |
| Boiling Point | 238-240 °C |
| Density | 1.09 g/cm³ |
| Smiles | CC(=O)C1=CC=CC(N=1)C |
| Inchi | InChI=1S/C8H9NO/c1-6-3-2-4-8(9-6)5-7(10)8/h2-4H,5H2,1H3 |
| Solubility | Soluble in organic solvents |
| Refractive Index | 1.538 |
| Flash Point | 102 °C |
| Storage Conditions | Keep container tightly closed in a cool, dry place |
As an accredited 1-(6-Methyl-Pyridin-2-Yl)-Ethanone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical is packaged in a sealed amber glass bottle, labeled "1-(6-Methyl-Pyridin-2-yl)-Ethanone, 25g," with hazard and handling information. |
| Shipping | Shipping of 1-(6-Methyl-Pyridin-2-Yl)-Ethanone requires secure, leak-proof packaging, compliant with local and international regulations for chemical transport. The container must be labeled with hazard information if applicable. Transport is typically by ground or air freight, with safety data sheets included. Handle and store in cool, ventilated conditions. |
| Storage | 1-(6-Methyl-Pyridin-2-yl)-ethanone should be stored in a tightly sealed container in a cool, dry, well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizing agents. Keep the container protected from light and moisture. Proper labeling and segregation from food and drink are essential. Use under a chemical fume hood with appropriate personal protective equipment. |
Applications of 1-(6-Methyl-Pyridin-2-Yl)-Ethanone in Industrial ManufacturingAs a proven chemical intermediate, 1-(6-Methyl-Pyridin-2-Yl)-Ethanone has established value-added roles in several downstream industries. Our production experience shows that this material consistently meets the stringent formulation and quality consistency required in regulated manufacturing environments. Below, we outline verified industrial scenarios where this compound is widely employed, detailing compliance frameworks, realistic usage ratios, process stages, and finished goods supported by its integration. 1. Active Pharmaceutical Ingredient (API) SynthesisThis pyridine ketone is often utilized as a building block in the synthesis of complex APIs, where its structure contributes essential moieties to heterocyclic active cores. Process chemists employ this intermediate primarily in condensation and cyclization reactions within the multi-step production of certain antihistamine and CNS-active compounds, where control of purity and traceability is required throughout. The material's predictable reactivity supports batch-to-batch reproducibility in custom pharmaceutical manufacturing. Industry compliance standards
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2. Agrochemical Intermediate for Crop Protection AgentsMany agrochemical formulators use 1-(6-Methyl-Pyridin-2-Yl)-Ethanone as a crucial intermediate in synthesizing pyridine-based herbicides and insecticides, particularly those targeting resistant weeds and novel pest management requirements. Researchers specify it for its specificity in constructing bioactive ring systems and its compatibility with large-scale reactor systems. It supports consistency in batch purity which is critical to downstream formulation stability and regulatory approval in different agricultural markets. Industry compliance standards
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3. Intermediate in Dye and Pigment ManufacturingDye and pigment manufacturers incorporate this pyridyl ethanone in the synthesis of high-stability azo and heterocyclic colorants. The compound enters amidation and coupling reactions, producing chromophores with durable fastness and intense hues used in specialty textile and plastic coatings. Its purity profile minimizes unwanted byproducts during pigment crystallization, crucial for color consistency in mass production applications. Industry compliance standards
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4. Synthesis of Custom Electronic ChemicalsSpecialty electronic chemical producers use this compound in the assembly of functionalized pyridine units that become part of photoresists and organic semiconductors. Material scientists value its defined reactivity for assembling extended π-conjugated systems, and its batch consistency supports the rigorous trace impurities mandates of microelectronics manufacturing lines. It is often included during the construction of functional group scaffolds that dictate deposition and patterning efficiency for semiconductors. Industry compliance standards
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5. Input for Fragrance and Aroma Chemical ProductionCertain aroma chemical companies source this compound to create pyridine-core ingredients conferring green, musty, or earthy nuances in fine fragrances and flavorings. The compound reacts in acylation and subsequent reduction stages to yield aroma actives that require high-purity intermediates to ensure olfactory consistency and avoid sensory-off notes in the final batches. It is used under tight QC protocols due to regulatory scrutiny in the aroma field. Industry compliance standards
Typical usage ratio
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As a long-term manufacturer of specialized pyridine derivatives, we've watched industry demand for 1-(6-Methyl-Pyridin-2-Yl)-Ethanone expand steadily. For researchers and industrial partners, both scale-up and consistency have become top priorities in delivering fine chemicals like this one. Our production lab first started producing 1-(6-Methyl-Pyridin-2-Yl)-Ethanone to address clear challenges: a limited supply of high-quality product and a lack of real, responsive support from producers willing to tailor to evolving applications. Chemistry doesn’t operate in a vacuum. More and more, the pharmaceutical, agrochemical, and material science sectors rely on consistent supply and clear traceability—not just for regulatory peace of mind, but to reduce batch-to-batch variability in their own end products.
During our initial scale-up trials, it became apparent that minor changes in reagent source, reaction temperature, and crystallization solvent could alter impurity profiles and physical appearance. To maintain anhydrous (or effectively dried) material, we've invested in tight moisture controls throughout each step. Our specification sets, based on client input and our own process experience, support both R&D and production-scale users. The final crystalline solid falls well within a melting range suitable for most synthetic schemes, and analytical purity always exceeds industry-accepted thresholds.
The best performance with 1-(6-Methyl-Pyridin-2-Yl)-Ethanone starts well before shipment. We avoid long storage times and keep everything under inert atmosphere to prevent degradation and color shifts. Our batch logs include not just standard NMR and HPLC traces, but full elemental analysis, Karl Fischer moisture, and controlled residue-on-ignition data. We're transparent about the few unpredictable factors, as new data comes from users in peptide, API, and dye synthesis. Real chemists, not just machines, handle every release.
Physical appearance signals process reliability to us just as much as it does to users. Any yellowing or haze leads us directly back through our audit trail, identifying root causes and, if required, retesting retained samples. We keep our global supply chain close, using well-audited secondary producers for feedstocks, so the critical 6-methylpyridine intermediate never fluctuates. Most problems trace right back to raw material fluctuation, so stability in sourcing isn’t optional.
End users approach 1-(6-Methyl-Pyridin-2-Yl)-Ethanone from a range of directions. For heterocyclic pharmaceutical scaffolds, the acetyl functionality proves essential as a handle for building more complex molecules. Process chemists in clinical trials mention its clean reactivity profile, avoiding unexpected side products during C–C bond-forming steps. Agrochemical researchers, on the other hand, press for low-odor and volatility for safe handling in sensitive synthesis. Specialty pigment makers use it when pyridyl scaffolds are required for long-term light stability, and that's guided our focus on minimizing trace metals and color-causing impurities.
We see the most feedback about solvent compatibility and crystallization. Because crude isolation can doom a year’s work if sensitive downstream conversions fail, we developed a process producing a stable solid that survives storage, even in high humidity. We’ve trialed a range of solvent mixes for post-reaction purification, and provide guidance based on what the product will actually experience, from industrial gloveboxes to open-bench research environments.
Feedback often centers on recovery rates and downstream purification. Analytical chemists have told us that our material keeps downstream silica chromatography running smoothly, reducing streaking and tailing. Users who once struggled with sticky residues or strange byproducts now find a more manageable isolation step. That lessens the risk of contaminant carry-through into final drugs or catalysts—a lesson we took seriously after a large customer flagged repeat baseline irregularities in 2018. We traced it to an upstream process change at a raw materials provider and immediately updated our vendor controls.
Our experience shows that no one specification fits every customer, even for a “routine” intermediate like 1-(6-Methyl-Pyridin-2-Yl)-Ethanone. Small-molecule pharma startups want analytical reports listing every trace contaminant; established agrochemical firms may accept broader limits as long as their downstream steps work reliably. We run three core offerings: one for small-quantity, research-grade requests with full analytical support; one mid-range for scale-up pilots; and bulk lots for established production routes where every cent counts, but purity can't dip below an agreed floor.
By keeping our in-house synthesis routes both flexible and under strict control, we've kept average batch purity consistently high. Moisture readings stay below 0.1%, while residual solvents and trace metals rarely trigger out-of-spec rejections. Laboratory director oversight ensures that no batch ships without cross-checks from another team, and we provide melt-point, spectral, and chromatographic data with every lot. This attention to traceability means less time qualifying new suppliers for your own audits, because every package lands with all supporting certificates on file.
Chemists evaluating heterocyclic acetyl compounds have multiple options. Side-by-side, 1-(6-Methyl-Pyridin-2-Yl)-Ethanone outperforms related analogues (like the 4-methyl variant or simpler methylpyridines) when downstream functionalization specificity matters. The methyl group at the 6-position enables selective transformations not possible in other pyridyl ethanones. Synthesis teams looking for high-yield coupling often report less byproduct formation when working off the 2-position material. When we tested cross-catalysis for C–H activation and acylations, this distinction mattered: alternate substitution patterns sometimes forced extra purification cycles or suffered from stability issues.
Functional groups determine more than just reactivity. Subtle differences in melting point and solid-state stability between positional isomers dictate handling protocols. We keep separate production lines for structurally similar intermediates to eliminate cross-contamination risks. By specializing our process design to favor the 6-methyl product, we found batch scalability and long-term stability improve significantly in comparison tests.
Some partners have asked us about cost trade-offs. The 6-methyl variant takes more precise temperature control and more rounds of purification, increasing overhead, yet results in fewer lost downstream batches and less overall waste. We believe it's more cost-efficient to invest in process discipline, rather than push questionable material out the door, only to face complaints and delays. Many of our long-standing customers started with alternate materials and switched over after facing recurring issues—yield loss, inconsistent color, trouble reproducing analytical spectra. That practical feedback means a lot when real-world results determine a synthesis campaign’s success.
Our production backbone differs from approaches seen at contract-only manufacturers or trading firms. We own the core reactors and waste-stream controls. Team members designing the synthetic pathway stay involved when transferring lab routes to production, so troubleshooting remains fast and direct. Each scale shift triggers a complete process hazard analysis and full product stability check. This keeps recalls at zero and lets us respond right away if a partner’s application calls for a unique particle size or filtration profile. With critical intermediates like this one, missing a beat in process control doesn’t just hurt our reputation—it disrupts our partners’ launches and innovation schedules.
Manufacturing on our own terms has also protected us from supply shocks. Across the last decade, sudden disruptions in international solvent or chemical markets have hobbled some fine chemical suppliers. By qualifying multiple local and international raw material sources years in advance, we prevented Sudden Out-Of-Stock issues during regional lockdowns. Each alternative supplier undergoes the same analytical scrutiny to ensure fingerprint matches with ongoing stock. Partners often mention our reliability during industry conferences, noting that stable, predictable supply lets their own labs refocus on research rather than emergency resourcing.
Problems solved on the production floor translate into better tools and service for end users. A few years back, rising humidity at our site led to aggregation in stored material. Instead of issuing temporary fixes or caveats, our engineering group redesigned the drying ovens and invested in automated alerts for any deviation in ambient moisture. That same year, repeated customer requests for custom particle sizes led us to bring micronization in-house, opening new doors for research chemists in catalysis and controlled-release projects.
Environmental requirements shape both our process and our partnerships. Maintaining REACH and domestic environmental compliance starts with cleaner synthesis: recycling as much solvent as possible, comprehensive waste-stream tracking, and minimizing use of halogenated reagents. Where possible, we work with clients in developing green chemistry protocols, offering feedback drawn from real experience running these routes, not just literature reports.
Customer partnerships push us to advance analytical transparency. When even a minor lot shows unexpected trace peaks, we proactively contact purchasing and technical teams instead of waiting for possible complaints. Working through root cause analyses together, we've built trust and helped researchers avoid months of lost work. Scientists in process R&D confirm real improvements in their workflows since switching to a product with fewer unknowns, and we stay available to troubleshoot experimental outcomes.
Researchers placing repeat orders for 1-(6-Methyl-Pyridin-2-Yl)-Ethanone know supply alone isn't the end of the story. We've responded to custom packaging requests—special vial materials for sensitive applications, precise fill weights, double-checked closures—because off-the-shelf solutions don’t fit every synthesi. International freight schedules sometimes stretch delivery times, so we developed cold-pack protocols and tested shipping routes in heatwaves to guarantee stability regardless of customs holdups.
Our product documentation reflects not just what’s required for customs, but what our partners actually want—clear, multi-language COAs, copies of full analytical uploads, and, when possible, authentic real-time batch images. This translates to fewer qualification headaches at users’ quality-control labs, with new certificate requests handled in hours, not days. Some of our best process improvements have come from these practical demands—real supply chain concerns, not top-down marketing.
We survey key customers every year about their own application success rates. Synthetic yields, reaction reproducibility, and any observed side reactions form part of an ongoing improvement cycle. These direct data points let us refine upstream processes as user needs change—from pharmaceutical discovery pivots to new crop protection molecules. Fast-moving R&D operations benefit from any incremental gain in intermediate reliability.
We provide full safety documentation and open access to in-house technical support for every order. Our team has resolved complex questions covering storage stability and handling in gloveboxes, cold rooms, and different solvent systems. Users handling multi-kilo quantities rely on our recommendations for safe unsealing, product dissolution, and residue management. Feedback on packaging improvements—stronger seals, moisture indicator strips in every drum—has led us to refine delivery protocols.
We value clear, science-first documentation above boilerplate or jargon. Each new batch triggers an internal safety review based on operator reports and real incident records. Training updates go in place as soon as plant reality changes, be it process throughput, reagent hazards, or environmental profiles.
Quality in the field of fine chemical manufacturing rests on more than published specifications. For 1-(6-Methyl-Pyridin-2-Yl)-Ethanone, we've learned that transparency and relationship-building are what let research, pilot-scale, and industrial users trust each shipment. We keep lot and shipment records to the gram, including all batch numbers and analytic trace files.
Users gain from these controls every time an internal audit or regulatory question arises. For our customers, confidence comes not from promises but from repeated real-world experience—on-time supply, prompt responses, and a willingness to adapt as the chemistry itself advances. Listening to the needs of the people running these syntheses in labs and pilot plants shapes our workflow more than any abstract “best practice”. That feedback has kept us innovating and refining, and contributes to the broader reliability in a sometimes opaque chemical market.
We aren’t just selling a molecule; we’re delivering the backbone of research and manufacturing ambitions across pharmaceuticals, agrochemicals, and advanced materials. Each lot of 1-(6-Methyl-Pyridin-2-Yl)-Ethanone reflects a mix of technical expertise, transparency, and user feedback. Our ongoing dialogue with diverse partners keeps product quality in focus amid changing global markets and new scientific challenges.
The true distinction of our product comes from experience—troubleshooting, custom requests, transparent problem-solving, and investment in honest partnership. Each step, from synthesis optimization to after-sales technical advice, stands on a track record of meeting the needs of those who turn basic molecules into world-changing innovations. At heart, that’s what being a true manufacturer means in today’s chemical industry.