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2-Acetyl-6-Bromopyridine

    • Product Name 2-Acetyl-6-Bromopyridine
    • Alias 2-Acetyl-6-bromopyridine
    • Einecs 261-933-6
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    894012

    Chemical Name 2-Acetyl-6-Bromopyridine
    Molecular Formula C7H6BrNO
    Molecular Weight 200.03 g/mol
    Cas Number 15997-85-6
    Appearance Off-white to pale yellow solid
    Melting Point 57-61°C
    Smiles CC(=O)C1=CC=NC(=C1)Br
    Inchi InChI=1S/C7H6BrNO/c1-5(10)6-3-2-4-9-7(6)8
    Synonyms 6-Bromo-2-acetylpyridine
    Solubility Soluble in organic solvents

    As an accredited 2-Acetyl-6-Bromopyridine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle labeled "2-Acetyl-6-Bromopyridine, 25g." Tightly sealed, chemical hazard symbols, lot number, and safety instructions included.
    Shipping 2-Acetyl-6-Bromopyridine is shipped in sealed, inert containers to ensure stability and prevent contamination. It should be transported under ambient temperature conditions, away from moisture, heat, and incompatible substances. All shipments comply with relevant safety and regulatory standards, and packages are clearly labeled for chemical identity and hazard warnings.
    Storage 2-Acetyl-6-Bromopyridine should be stored in a tightly sealed container, away from moisture and incompatible substances, such as strong oxidizing agents. Keep it in a cool, dry, and well-ventilated area, ideally in a designated corrosives or organic chemicals cabinet. Proper labeling and secondary containment are recommended to prevent accidental spills and ensure safe handling.
    Application of 2-Acetyl-6-Bromopyridine

    Applications of 2-Acetyl-6-Bromopyridine in Industrial Manufacturing

    Our 2-Acetyl-6-Bromopyridine serves as a precision intermediate in several specialized industrial sectors. Below, we outline key downstream applications, showing real-world use cases, regulatory frameworks, production process integration, and associated finished goods.

    1. Pharmaceutical API Intermediate Synthesis

    Major innovator and generic drug manufacturers employ this compound as a building block during the synthesis of active pharmaceutical ingredients, particularly within heterocyclic drug pipelines. Medicinal chemists include it in stepwise coupling and bromination phases to introduce selective functionalities. GMP lines tightly control incoming quality of each lot, tracking this intermediate through validated procedures and batch documentation systems. End use often focuses on certain anti-inflammatory, anti-infective, and central nervous system drug candidates.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • European Pharmacopoeia monographs (as applicable per API destination)
    • US FDA 21 CFR Part 211 cGMP requirements
    • China NMPA Registration and GMP (for Chinese formulations)

    Typical usage ratio

    • Employed at 0.2–1.1 molar equivalents relative to the target API yield, variable based on the desired synthetic route and required yield. Adjustment depends on multi-step pathway and overall conversion efficiency.

    Downstream process integration

    • Introduced at the heteroaryl assembly phase, usually joined with acyl transfer or palladium-catalyzed coupling reactions on automated reactor lines.
    • QC tested post-reaction for residual bromine content and chromatographic purity inline with batch release protocols.

    Final product types

    • Nonsteroidal anti-inflammatory drug APIs
    • Pyridine-based antiviral pharmaceuticals
    • CNS-active ingredient precursors
    • Anti-tuberculosis candidate compounds

    2. Agrochemical Active Ingredient Precursor

    In crop protection manufacturing, this building block supports the creation of selective insecticides and fungicides formulated for regulated markets. R&D and technical teams introduce it to molecule scaffolds requiring electron-withdrawing substituents, leveraging the bromine functional group for targeted reactivity. Strict compliance with agrochemical regulatory filings ensures safe incorporation and tractability through pilot and full-scale blends.

    Industry compliance standards

    • FAO/WHO specifications for pesticide ingredients
    • OECD Good Laboratory Practice in active ingredient development
    • REACH Regulation (EC) No 1907/2006
    • US EPA Pesticide Registration (40 CFR Part 158)

    Typical usage ratio

    • Blended at 0.5–2.0% of the total weight in multi-step technical grade active synthesis. Process engineers adjust ratio according to yield optimization and impurity control.

    Downstream process integration

    • Fed into the halogenation or condensation phase of agrochemical technical powder synthesis using high-shear reactors.
    • Post-process refining by crystallization and impurity removal, monitored by HPLC or GC-MS.

    Final product types

    • Insecticidal technical concentrates
    • Fungicidal intermediate blends
    • Herbicidal bulk active materials
    • Formulated crop protection emulsifiable concentrates (EC fluids)

    3. Electronic Chemical Synthesis

    Manufacturers of specialty materials for the electronics sector use this pyridine derivative in the precursor synthesis of liquid crystal monomers, photoresist agents, and advanced OLED display chemicals. Its unique aromatic and halogenated structure enables predictable functionalization critical to semiconductor and optical material performance. Processing lines maintain high-purity standards with trace metal monitoring.

    Industry compliance standards

    • SEMI MS2-1108 standards for chemical purity and metals
    • ISO 9001:2015 certified electronic chemical production facilities
    • RoHS Directive 2011/65/EU substance restrictions
    • IPC-4101B/24 laminate requirements for electronics

    Typical usage ratio

    • Integrated at 0.4–1.5% by weight within liquid crystal or monomeric synthesis reactions. Ratio fine-tuned during R&D to improve dielectric or optical features of the end product.

    Downstream process integration

    • Added during arylation or alkylation reaction steps in controlled solvent systems.
    • Finished intermediates filtered and purified to electronics-grade specification before inclusion in downstream monomers or formulations.

    Final product types

    • Photoresist base chemicals for PCB production
    • Liquid crystal mixture components for advanced displays
    • OLED/OPV small molecule intermediates
    • Semiconductor processing aids

    4. Fine Chemical and Flavor Intermediate

    Flavor and aroma houses utilize this building block in the manufacture of specialty aroma molecules, particularly in the synthesis of complex, high-impact pyridine-based flavorants. In these facilities, food grade and pharmaceutical grade raw materials must pass rigorous scrutiny with trace impurity and allergen testing. Output undergoes strict composition and sensory evaluation prior to downstream blending.

    Industry compliance standards

    • FEMA GRAS (Generally Recognized as Safe) listings for aroma substances
    • IFRA code of practice for safe flavor ingredient handling
    • ISO 22000:2018 Food Safety Management Systems
    • EU Regulation (EC) No 1334/2008 on flavorings and certain food ingredients

    Typical usage ratio

    • Employed at 0.05–0.2% of total blend mass, precisely calculated according to target aroma profile and regulatory maximum residue limits for brominated compounds.

    Downstream process integration

    • Charged as a key intermediate during stepwise condensation or cyclization to produce specialty flavor molecules in batch reactors.
    • Quality assurance screens for specific aroma release and absence of off-odors with headspace GC and sensory panels.

    Final product types

    • Pyridine-natural aroma compounds
    • Beverage and confectionery flavor bases
    • Flavor encapsulation pre-blends
    • High-purity food-safe aroma intermediates

    5. Research and Diagnostic Chemical Reagents

    Specialty research chemical firms rely on this material as a functional scaffold in the custom design of bioreactive probes and diagnostic ligands. Due to its positional flexibility and halogen functionalization, chemists can tailor molecule reactivity and bioconjugation efficiency. Handling and documentation often adhere to strict laboratory control and hazard communication regulations with traceability for regulated laboratory use.

    Industry compliance standards

    • ISO/IEC 17025:2017 laboratory standards
    • OECD Test Guideline 407 for chemical safety in research
    • GHS/CLP Regulation (EC) No 1272/2008
    • REACH Notification and Safety Data Sheet (SDS) compliance

    Typical usage ratio

    • Applied between 0.03–0.3 mmol per synthesis, scaling up as required by probe or ligand yield during small-batch experimental work. Ratio hinges on specific reactivity and downstream conjugation targets.

    Downstream process integration

    • Initiates heteroaromatic coupling in the early synthetic phase of bioreactive labeling chemicals.
    • Batch purity confirmed by NMR and LC-MS prior to specialty use in diagnostic kits or analytical workflows.

    Final product types

    • Bioreactive labeling probes
    • Diagnostic assay ligands
    • Custom research reagents for molecular biology
    • Analytical chemistry QC standards
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    Certification & Compliance
    More Introduction

    2-Acetyl-6-Bromopyridine: A Reliable Choice from the Production Floor

    What Drives Us to Deliver Quality

    In the world of fine chemicals, certainty and consistency make all the difference. Every batch turned out under our roof represents hours of hands-on care, rigor, and respect for the craft. Our team understands the challenge of matching specification sheets with real-world results, especially in the business of building blocks like 2-Acetyl-6-Bromopyridine. Years of close collaboration with downstream users have made it clear that there’s no shortcut to manufacturing a pyridine derivative that truly meets expectations—lab data alone never tells the full story.

    Beyond the Formula: Our Approach

    2-Acetyl-6-Bromopyridine carries the formula C7H6BrNO and a molecular weight of 200.037 g/mol. This isn’t just another intermediate on the shelf; it is a precise tool for shaping the next step in agrochemical, pharmaceutical, and flavor compound synthesis. In our facility, every kilogram comes from a process honed for both purity and reproducibility. Control starts with the raw inputs—sourcing the right grade of pyridine ensures each reaction stays within line, so downstream users avoid variability and errant side-reactivity.

    Some might see a stack of barrels as just inventory, yet putting our name behind each drum means more than that. Operators on our line track temperature, pressure, and residence time every run. We have put in the work to marry bench chemistry with upscaled production. Manual checks buttress every instrument reading before a batch is cleared for packing. These steps slow us down—but over decades, they have paid off with tighter specifications and far fewer customer call-backs.

    The Specifications That Matter—And Why

    Customers usually ask about assay, water content, and halogen contamination before anything ships. Our typical analytical batch shows a minimum assay of 99% by GC. Moisture, checked with Karl Fischer titration, routinely comes in under 0.2%. Inorganic bromides and related pyridine impurities rarely drift above 0.5%. These aren’t just marketing points—they give trickle-down benefits with every ton. No one wants to strip out extra moisture or scrap work because co-distillation dragged along a contaminant.

    Our product arrives as a pale yellow to light brown crystalline solid. The color varies slightly batch to batch, and that reflects a transparent process rather than superficial polishing. Other manufacturers sometimes deliver a product with more off-notes or discoloration, telling us they’ve allowed minor degradation or underreacted raw materials through. For people scaling up, these little inconsistencies can ruin weeks of planning.

    Reliable Sourcing, Responsible Production

    We believe in straightforward logistics and honest communication with every order. Our quality is not the work of a hidden subcontractor, but the result of our own on-site crew’s vigilance. By insisting on keeping each stage under one roof, we’ve avoided the frustration that comes when materials sourced through a trader arrive out-of-spec or untraceable. This has never been more important than now, as traceability, solvent management, and batch identity weigh heavier on both regulators and conscientious buyers.

    Not every manufacturer of 2-Acetyl-6-Bromopyridine controls emissions and waste streams as tightly as we do. Volatile organic compounds and bromine-containing byproducts pose problems for the environment. It takes real investment in abatement systems and careful recycling protocols to minimize discharge without driving up cost or compromising yield. The result: cleaner effluent, safer storage, and a process our neighbors can trust. These are issues we take seriously because our operations support communities where we live, not just anonymous balance sheets.

    Why This Molecule Matters in Synthesis

    2-Acetyl-6-Bromopyridine remains a sought-after intermediate because of its reactivity profile. The acetyl group directs metal-catalyzed couplings. The bromine at the six-position opens pathways for Suzuki-Miyaura and Buchwald-Hartwig reactions. In the labs that depend on predictable chemistry, even a small shift in regioisomer or trace error in substitution causes headaches—reactivity is a game of margins. We keep a close eye on byproducts like 2-bromopyridine, 6-bromopyridine, and isomeric acetyl-pyridines by HPLC, limiting their presence so downstream routes stay clean. Feedback from repeat users has led us to tweak purification processes over the years, especially to reduce the kind of baseline noise that gums up columns or spikes final NMR purity claims.

    Comparing Ours with Others on the Market

    Many buyers come to us after finding out the hard way how much batch-to-batch difference can matter. One customer, scaling a pilot line for a pharmaceutical API, struggled for months with clogging in their catalyst bed. The source turned out to be unreported halogen contaminants in their previous supplier’s product. Our tighter synthesis control and documentation helped them return to smooth operations.

    A handful of producers treat this molecule as a commodity—content to blend different origins as long as paperwork aligns. Our approach costs more upstream but pays off across our user base. The feedback loop, where buyers tell us what issues crop up in real-world conditions, shapes every plant adjustment we make. We’d rather have a dissatisfied customer call us and discuss openly than push a problematic batch down the supply chain.

    Process Yields and Consistency—An Insider’s Perspective

    Efficient, reproducible yields separate professionals from pretenders. Our process average sits above 92% isolated yield across dozens of consecutive campaigns. To outsiders, points on a yield chart may look trivial. On the plant floor, giving up even 2–3% on a multi-stage synthesis amounts to a significant hit—not just on material cost, but on time. Losses multiply with every downstream step.

    We monitor every fraction during isolation by both in-process GC and titration. When an anomaly pops up, the reaction run is quarantined, not reblended. This discipline means fewer surprises for us and for those relying on our material. Consistent in-house testing—six-point calibration curves, real retention time checks, mass balance confirmation—anchors every shipment. These checks are what insulate customers in Asia, Europe, and the US from mysterious “process deviations” that show up all too often.

    The Nuance of Handling and Storage

    Handling 2-Acetyl-6-Bromopyridine isn’t merely about following safety data sheets. Shoot for bone-dry transfers and sealed drums. Even brief exposure to humid air or poorly sealed caps increases hydrolysis risk, and nobody wants to chase down byproduct peaks at QC due to careless storage. We invested early in humidity-controlled packaging rooms and automated filling under inert gas. Our outbound shipments ride in drums lined with chemically compatible materials to avoid bleed-through or reactivity with the walls. Products sitting at distributors’ docks or in unconditioned containers lose integrity, so we always counsel direct delivery when possible.

    Those touches might sound small, but field feedback makes it clear that consistent, tight-packing and real-world labeling (not just theoretical storage temperature) keep waste down and projects on schedule. In a lab, you might skip precautions and still get a good analytical sample; in scale-up, every risk compounds. For those formulating active ingredients or complex reagents, our stability ensures the next stage proceeds as planned.

    Real Input from Practicing Chemists

    The best ideas often come not from the inside but from those further down the chain. Production teams and researchers in pharma, agro, and flavors have sent back suggestions, complaints, and sometimes praise. The feedback details get fed into our next engineering review. One company using our product in a multi-kilo batch of a flavor ingredient noticed regular off-odors with previous lots from other vendors. On inspection, GC/MS showed residual solvent peaks unlisted on the COA. This isn’t rare—the only way to rule out contamination is tighter fractional distillation and better post-reaction cleanup, both of which now structure our protocol.

    Users scaling up tend to notice what goes unsaid on data sheets: how the product transfers, whether it cakes or flows, if it interacts with transfer lines, and whether barrels arrive dry or sweating on the rim. Our operations people flag even minor feedback, because confidence in a chemical comes from repeated, predictable performance. Our investment in operator training shows in cleaner fills, filtration with two-point verification, and more transparent reporting of batch notes. The result is a relationship with buyers that looks more like teamwork than transaction.

    What Sets Our 2-Acetyl-6-Bromopyridine Apart

    On-site manufacturing gives us finer control over every stage. We don’t rely on outside partners for reaction, isolation, or packing. Tighter integration of analytical labs with production lines means faster response to deviations and closer alignment with user needs. Our scale enables us to take on both regular scheduled orders and urgent requests without compromising standards.

    Many ask why our product rates higher among repeated users. The reason is not just purity, but an honest, open process. We maintain a transparent log of batch histories and welcome technical audits. Those who face regulatory or sustainability audits get full traceability back to the lot level, including raw material origins. We don’t offer cut-rate pricing by leaning on variable “external batch blends”—every shipment carries our full data pack and client-specific reporting. This approach helps customers avoid unexplained process hiccups in their own shops.

    While price pressures never let up, we have steered away from cost-saving moves that undercut process rigor. Customers stay with us because they see fewer interruptions, lower scrap rates, and more predictable timelines in their own operations. Most of our technical team have backgrounds in actual plant operation, not just quality assurance—giving them firsthand understanding of what can go wrong, how to spot creeping impurity, and when an analytical method needs adjusting before trouble starts.

    Continuous Improvement, Real Results

    No manufacturing line runs perfectly, and we have faced our share of setbacks. Supply chain shocks—a shortage of high-purity brominating agents, logistical delays in solvent delivery, even local power interruptions—have tested our resolve. Each event forced us to document, adapt, and build better back-up protocols. These releases of lessons learned translate into less downtime, more stable scheduling, and increased secondary testing. In this business, the best supply partners earn loyalty not via a glossy brochure, but through support during the hard moments.

    We don’t shy away from feedback. Whether it’s a small color shift, an anomalous GC peak, or an unexplained byproduct identified by an end user, we treat customer insight as an extension of process control. Our plant’s senior operators routinely debrief with buyers’ teams, clarifying findings so we both evolve. True partnership looks more like shared troubleshooting and less like shifting blame.

    Responsibility from Start to Finish

    Producing 2-Acetyl-6-Bromopyridine in a way that satisfies technical demands and environmental responsibilities takes more than compliance. Our emission controls exceed the minimum, not because of paperwork, but because the people making these decisions live nearby. Waste minimization protocols, solvent recycling, and energy efficiency investments yield products people trust. Workers take pride in knowing their attention to detail makes life easier for those further down the chain, with less environmental impact to address in future audits.

    We stay in close contact with customers building active pharmaceutical ingredients and crop protection formulations. Those sectors face rising regulatory scrutiny, and integrity in sourcing now serves as a prerequisite to market access. We keep every record for trace-back, providing batch documentation and analytical support that stand up to third-party review. This transparency takes time but means fewer surprises down the road.

    What We’ve Learned in Decades of Manufacture

    Experience teaches that close control over process, honest reporting, and prompt adaptation to feedback outpace any fancy marketing. Our 2-Acetyl-6-Bromopyridine may cost more than bulk-origin blends from high-throughput plants elsewhere. Yet year after year, buyers come back for a consistent product that lets them plan, scale, and deliver—not troubleshoot or retrain with every order.

    Turning out a pyridine derivative to this grade is not glamorous work. Operators still lean over hot vessels, track real-time readings, and run manual pulls. Chemists stay immersed in the paperwork to confirm each batch matches both internal and external targets. The result? Materials that perform as expected, not just under an IR lamp or in the fume hood, but at the full operational scale where the stakes climb and error costs multiply.

    Looking Forward—What’s Next in the Industry

    Innovation never stops. In our own plant, efforts focus on improved solvent recovery, real-time in-line purity monitoring, and more advanced impurity fingerprinting. Researchers exploring new coupling technologies continue to push the requirements for intermediates like 2-Acetyl-6-Bromopyridine. We work to stay ahead, investing in staff, pilot studies, and process tweaks based on evolving application requirements.

    More customers ask for “greener” production and better documentation. We respond with life-cycle assessments and full disclosure reporting, not just for their audits but for our own progress tracking. The downstream sector’s growth—in areas such as specialty pharma, crop solutions, and advanced flavors—demands reliability, and we rise to that call because our longevity depends on it.

    In Conclusion: Dependability from the Source

    2-Acetyl-6-Bromopyridine has earned its place as a trusted intermediate for those building advanced molecules. Our experience as the originator—not merely a link in a distant chain—gives us the insight to troubleshoot, adapt, and constantly improve. Customers, regulators, and end users benefit from this approach, not just once but batch after batch. As we look toward the next generation of chemistry challenges, our investment in honest, rigorous practice pays dividends for everyone who depends on quality materials to keep projects moving forward.