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3-Bromo-2-Hydroxy-6-Picoline

    • Product Name 3-Bromo-2-Hydroxy-6-Picoline
    • Alias 3-Bromo-6-methyl-2-hydroxypyridine
    • Einecs 249-567-4
    • 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

    765564

    Chemicalname 3-Bromo-2-hydroxy-6-picoline
    Casnumber 57964-72-6
    Molecularformula C6H6BrNO
    Molecularweight 188.02 g/mol
    Appearance Off-white to pale yellow solid
    Meltingpoint 88-92°C
    Solubility Soluble in most organic solvents
    Purity Typically >98%
    Synonyms 3-Bromo-2-hydroxy-6-methylpyridine
    Smiles CC1=NC=C(C(=C1)O)Br
    Inchi InChI=1S/C6H6BrNO/c1-4-2-3-5(7)6(9)8-4/h2-3,9H,1H3

    As an accredited 3-Bromo-2-Hydroxy-6-Picoline factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The chemical `3-Bromo-2-Hydroxy-6-Picoline` is supplied in a 25g amber glass bottle with a tamper-evident screw cap.
    Shipping 3-Bromo-2-Hydroxy-6-Picoline is shipped in tightly sealed, chemical-resistant containers to prevent leaks and contamination. It is transported in compliance with hazardous material regulations, ensuring proper labeling and documentation. Protective packaging shields it from moisture, heat, and physical damage during transit, maintaining the chemical's integrity and safety.
    Storage Store 3-Bromo-2-Hydroxy-6-Picoline in a tightly closed, clearly labeled container in a cool, dry, and well-ventilated area, away from direct sunlight, heat sources, and incompatible substances such as strong oxidizers. Handle under a fume hood and use appropriate personal protective equipment. Ensure the storage area is equipped with spill containment measures and complies with all relevant chemical safety regulations.
    Application of 3-Bromo-2-Hydroxy-6-Picoline

    Applications of 3-Bromo-2-Hydroxy-6-Picoline in Industrial Manufacturing

    As a dedicated producer of 3-Bromo-2-Hydroxy-6-Picoline, we supply this pyridine derivative for tightly defined segments in industrial chemistry. Our applications focus on advanced pharmaceutical precursor synthesis, pesticide intermediate manufacturing, specialty dyes production, and the fabrication of electronic chemicals. Each outlined section describes the respective downstream landscape, real industry standards, typical usage levels, process requirements, and the final category of goods delivered by our partners.

    1. Pharmaceutical Intermediate for CNS Drug Synthesis

    3-Bromo-2-Hydroxy-6-Picoline functions as a key intermediate in the custom synthesis of CNS-active pharmaceutical ingredients, particularly those relying on pyridine scaffolds for targeted activity. This material enters the process after initial bromination, driving selective coupling reactions under stringent GMP conditions. Pharmaceutical processors consistently monitor input quality and ensure full batch-to-batch traceability from specialty raw material through to the finished API stage. Careful adjustment of molar ratios supports yield maximization in multi-step programs responding to exacting regulatory and customer requirements.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • European Pharmacopoeia (Ph. Eur.) process documentation
    • FDA cGMP (21 CFR Parts 210 and 211)
    • USP General Chapters & Specific Monographs (as relevant to downstream API)

    Typical usage ratio

    • 0.8–1.3 molar equivalents per target intermediate, adjusted for route yield and side reaction profile

    Downstream process integration

    • Charged during early-stage coupling or halogen exchange prior to key cyclization reactions
    • Maintained under inert atmosphere to prevent oxidative loss
    • Fully consumed in multi-step batch or semi-batch synthesis
    • Quality control by HPLC and NMR at each reaction stage

    Final product types

    • Intermediates for antipsychotic and antidepressant APIs (e.g., arylpyridine derivatives)
    • Highly pure pyridine-based CNS drugs
    • Contract-manufactured API supplies for originator and generic manufacturers
    • Pilot and commercial batch scale outputs for global pharma

    2. Agrochemical Intermediate for Selective Herbicide Synthesis

    In agrochemical production, this compound builds into key heterocyclic intermediates during synthesis of new-generation selective herbicides. Formulators employ precise dosing strategies, integrating 3-Bromo-2-Hydroxy-6-Picoline within multi-step reactions where the compound’s reactivity and purity directly impact final crop protection agent performance. Material purity control supports compliance with regional crop safety and residue regulations, critical for product registrations globally.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • OECD Guidelines for the Testing of Chemicals
    • ISO 9001:2015 Quality Management Systems (for agrochemical production)
    • REACH Regulation (EC) No 1907/2006 for chemical substance registration in the EU

    Typical usage ratio

    • 0.5–1.1 equivalents depending on desired substitution pattern and target molecule complexity

    Downstream process integration

    • Introduced during core ring construction and modification phases
    • Subject to in-process residue checks to ensure complete conversion
    • Integrated within closed reactor systems to contain hazardous intermediates
    • Outbound QA by GC-MS and residue analysis per export market regulations

    Final product types

    • Pyridine-based pre- and post-emergence herbicides
    • Bulk actives for formulation of concentrated and ready-to-use crop protection products
    • Technical-grade intermediates supplied to branded agrochemical groups
    • Custom-blend herbicide mixtures for specific resistance management

    3. Intermediate in Synthesis of Azo and Metal-Complex Dyes for Specialty Textile Applications

    3-Bromo-2-Hydroxy-6-Picoline serves as a precision building block within the synthesis of advanced azo and metal-complex dye molecules. The brominated position allows selective functionalization, essential for achieving stable color characteristics and improved fastness in technical textiles. Dye manufacturers carefully manage the ratio of starting material, since even minor byproduct formation can affect product consistency. Integration within the closed-loop batch processes ensures predictable chromophore assembly aligned with leading textile regulations and environmental limits.

    Industry compliance standards

    • OEKO-TEX Standard 100
    • ZDHC MRSL (Manufacturing Restricted Substances List)
    • EU REACH Annex XVII (Restricted Substances for textile and leather)
    • ISO 9001:2015 for dye formulation and processing

    Typical usage ratio

    • 0.7–1.2 equivalents per dye batch, adjusted to target chromophore configuration and color strength requirements

    Downstream process integration

    • Added at nucleophilic substitution or condensation stages during azo/metal-complex dye synthesis
    • Reaction temperature and pH controlled for selectivity and minimal side reactions
    • Intermediate purification to reduce aryl bromide carryover into final dye
    • Final QC via UV-Vis spectroscopy and color consistency panels

    Final product types

    • Reactive and direct dyes for cellulose-based technical textiles
    • Metal-complex dyes for wool, polyamide, and industrial blends
    • Specialty dyes for industrial apparel, automotive textiles, and high-durability fabrics
    • Dye intermediates supplied to contract colorant manufacturers

    4. Raw Material for Electronic Chemical Synthesis (OLED & Display Technology)

    Our material fits within the core structure-building sequence for electron-transport and light-emitting compounds in the optoelectronics sector. Engineers demand high consistency and ultra-low trace metal or halogen impurity levels, as minor variance impacts device efficiency and lifespan. 3-Bromo-2-Hydroxy-6-Picoline enters multi-step coupling or Suzuki-Miyaura cross-coupling, enabling assembly of high-purity organic emitters. Input control and exhaustive downstream analysis support robust compliance with international electronic chemical supply specifications and batch documentation trail.

    Industry compliance standards

    • IEC 62474 Standard for material declaration (Electronic Industry)
    • JEITA Material Guidelines for flat panel display chemicals
    • RoHS Directive (EU 2011/65/EU and amendments) for hazardous substances
    • ISO 14644-1 Cleanroom Standards (for integrated circuit chemical production)

    Typical usage ratio

    • 0.9–1.05 equivalents relative to key aryl halide or boronic acid partner, based on high-value material costs and contamination controls

    Downstream process integration

    • Introduced at organometallic coupling stage after stringent input filtration
    • Processed within inert-atmosphere reactors to limit oxidative side reactions
    • Repeated purification (e.g., chromatography, sublimation) to reach semiconductor grade
    • Tracking of lot genealogy for traceability under OEM supplier audit protocols

    Final product types

    • Pyridine-based electron transport materials for OLED displays
    • Small-molecule organic emissive layers
    • Intermediate products for active matrix flat panel displays
    • Custom-formulated electronic materials for consumer and automotive display technologies
    Free Quote

    Competitive 3-Bromo-2-Hydroxy-6-Picoline prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

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    Certification & Compliance
    More Introduction

    3-Bromo-2-Hydroxy-6-Picoline: A Closer Look from the Laboratory Floor

    Shaping the Details: What Goes into 3-Bromo-2-Hydroxy-6-Picoline

    Behind every bottle of 3-Bromo-2-Hydroxy-6-Picoline, there’s a long history of laboratory practice, drawn from the pursuit of precision and consistency. Our job as chemical manufacturers is more than measuring out reactants and controlling temperatures. It takes a clear focus on reaction pathways, a respect for the hazards bromine introduces, and a continued drive for purity, batch after batch.

    This compound, which experienced chemists know by its CAS number 388994-86-4, takes shape through selective bromination, carefully monitored to avoid any over-bromination or contamination that muddles the isolation of the hydroxy-picoline ring. As we proceed with the process, a team member checks visual, spectroscopic, and chromatographic signatures at each stage. If any reading drifts out of the expected range—whether it’s a subtle color shift in solution, or an unexpected spot on a TLC plate—it triggers a quick halt and a discussion at the bench. That’s how we handle potential side reactions, anticipating where they lurk, never cutting corners just to finish the run sooner.

    Specifying the Output: Actual Traits, Not Just Numbers on a Sheet

    What sets the finished 3-Bromo-2-Hydroxy-6-Picoline from a reliable source apart is more than just its melting point or purity percentage. Our output averages 98% purity, confirmed by both NMR and HPLC, but the real story sits in what doesn’t make it into the final product—no traces of dibromo or polybrominated byproducts, no mysterious peaks that ruin the user’s downstream chemistry. Viscosity, color, and particle size distribution all matter, especially to those running subsequent reactions that need smooth handling. Each lot’s documentation describes results from every QC checkpoint, spanning physical appearance to spectral confirmation. That precision makes it the favored choice in many process research settings, especially since repeat orders come from those who know the difference between a flawless intermediate and a troublesome one.

    Our facilities dedicate specific reactors and glassware to handling halogenations, knowing how cross-contamination can scar a batch for good. Nothing is left to chance. Every individual involved in the synthesis and packaging of 3-Bromo-2-Hydroxy-6-Picoline possesses years of floor experience and clear training on both synthetic sequences and responsible chemical stewardship.

    Why Scientists Bother: Real Applications in the Fine Chemicals World

    On the application side, it’s never about just filling a bottle. Research chemists often rely on this compound as a building block for medicinal chemistry, agrochemical development, or the creation of new heterocyclic scaffolds. We’ve watched talented teams use this material to assemble kinase inhibitors, anti-infective agents, and advanced herbicide candidates. The hydroxy and bromo groups bring diverse reactivity into play—Suzuki couplings, nucleophilic displacement, or directed ortho-metalation all open new synthetic avenues.

    One customer uses 3-Bromo-2-Hydroxy-6-Picoline as the foundation for a substituted pyridine ring during a multi-step API synthesis. They count on the defined position of the bromo and hydroxy moieties, since even a minor impurity at another ring position can derail activity studies or waste entire weeks of hard work. Another collaborator from the flavor and fragrance sector values the compound’s role as an intermediate, given its reliable conversion into specialty aldehydes with unique aromatic profiles.

    Comparing to the Rest: Not All Feedstocks Are Created Equal

    We’ve handled so-called “equivalent” materials from other suppliers over the years, especially during times when customers struggled with inconsistent delivery or questionable documentation. Half the challenge comes not during synthesis, but in what follows—purification headaches, strange off-smells, or residual yellow tints that make the product hard to dissolve in common solvents. Some market versions fail to hit the mark when it comes to lot-to-lot reproducibility. We’ve received vials for independent analysis that carry minor bromination byproducts at levels high enough to cause knock-on effects on the next steps in a synthetic route.

    Rather than chasing cheaper routes, our focus remains on controlling each reaction variable and tracking every lot. Over time, this commitment builds confidence—not only in our material, but also in the reliability of each step taken thereafter in the customer’s lab. Unlike generic pyridine derivatives, this compound’s selective substitution pattern requires particular care both for the bromination stage and for downstream workup. Users appreciate our willingness to discuss every aspect of the preparation, from the chlorinating agent selection to final drying protocol, offering troubleshooting advice directly from chemists who make the product, rather than from salespeople.

    Safety and Handling: Beyond the Standard Label

    Anyone handling halogenated pyridines knows the sensitivity required at each stage. 3-Bromo-2-Hydroxy-6-Picoline carries certain hazards—both due to its bromination state and because the hydroxy group can act as a nucleophile in unexpected ways under elevated temperatures. Procedures here account for each exposure risk, and ventilation and PPE use stand as non-negotiables. During packaging and shipping, we emphasize minimization of headspace, robust sealing, and transparent labeling. Shelf stability matters a great deal for clients who store intermediates over long periods before use.

    While standard safety sheets provide a baseline, there is no substitute for hands-on knowledge born from years of direct handling. It’s why every outbound batch includes not just regulatory paperwork but also access to specific advice—how to minimize side reactions during long-term storage, or how to prevent sticky residues that could complicate flask cleaning. These efforts cut down on hazards, leftover waste, and costly downtime for both sides.

    Sustainability and Regulatory Insights

    We’ve watched environmental regulations evolve rapidly, bringing in stricter thresholds for brominated organics in effluent and airborne emissions. Internally, solvent recovery sits as a top priority, allowing us to limit the total carbon footprint associated with every kilogram produced. All waste streams from our bromination processes receive on-site treatment or certified disposal, and regular audits track that we meet or exceed remarks set by regulatory agencies.

    Over time, this approach pays off. It streamlines the ability for customers to import and use the product without delay. For their regulatory teams, having clear source documentation and reliable QA protocols smooths out approvals. In addition, it keeps our own operations ahead of the compliance curve—no chasing documents or re-validating lots due to poor internal tracking. These habits build a legacy in the market that goes beyond a simple transaction.

    Listening and Constantly Improving

    Several years back, a medicinal chemistry group came to us with a complaint: their workup protocols yielded a new persistent impurity, not seen in previous batches. Our technical team examined both our lot histories and their procedures, pinning the culprit on an unexpected batch of solvent that slipped past routine QC. That one incident prompted an overhaul in our vendor vetting and storage conditions. Not many suppliers take user feedback that far, but we treat it as a chance to refine our process and avoid ever underestimating those small factors that build—or erode—trust.

    Manufacturers see what can go wrong not just from our own lines, but by listening to research chemists, production engineers, and regulatory advisors. If a user finds reduced solubility or batch-to-batch color changes, we do not hand off the issue to customer service. Instead, process supervision and technical staff examine every record, ask follow-ups, run test syntheses, and only then suggest real fixes. This culture shapes each batch of 3-Bromo-2-Hydroxy-6-Picoline beyond the routine, fitting it to both high-volume and bespoke lab needs.

    Why Steady Supply Still Matters

    Supply chain disruptions remain a constant topic across industries, and advanced intermediates like 3-Bromo-2-Hydroxy-6-Picoline are not immune. In our experience, redundancy and local inventory play a key role. We hold strategic stock of both raw ingredients and finished intermediates, keeping buffer lots under climate-controlled conditions. Past market interruptions due to bromine shortages or logistical bottlenecks have made us wary of relying solely on distant suppliers for critical components.

    To support steady customer operations, shipments are coordinated in close communication with buyers, ensuring arrival dates line up with their own production schedules. More than once, this attention to timing has prevented research teams from missing important grant deadlines or regulatory milestones. Batch tracking is kept transparent for each shipment, permitting easy reconciliation for even the most compliance-driven users.

    Choosing the Right Intermediate: Small Details with Big Impact

    Among pyridine derivatives, subtle substituent changes can make or break a synthetic plan. The ortho-hydroxy and meta-bromo arrangement found in 3-Bromo-2-Hydroxy-6-Picoline offers unique leverage for those seeking selective functionalization downstream. The hydroxy group at position 2 enhances hydrogen bonding capacity, while the bromo at position 3 promotes high-yield coupling reactions under palladium-based catalysis. Chemists value this specificity—incorrect placement or poor purity cannot simply be “worked around” during complex syntheses.

    Other common intermediates, like simple 6-Picoline or 2,6-Dibromopyridine, provide broader usage profiles but lack this finely-tuned reactivity. Manufacturers pursuing structure-activity relationship studies, especially in lead optimization for pharmaceuticals, rely on well-characterized intermediates at each step. An off-specification batch can set research back months or drive costs well beyond initial estimates. That’s why attention to every molecular detail matters.

    Direct Collaboration: From Process Chemist to Project Lead

    Every manufacturing campaign for 3-Bromo-2-Hydroxy-6-Picoline involves a line of communication running directly between the plant floor and senior technical leads at customer sites. Our chemists and engineers participate in calls with project leaders, learning exactly where the compound fits into the chemical sequence—and what properties might affect final outcomes. This collaborative approach brings greater accountability, since advice and recommendations come straight from those who handled, synthesized, and sampled each batch.

    On occasion, we’ve adjusted drying methods, switch reaction solvents, or deployed alternative crystallization protocols to align with user requirements. These decisions rest on hands-on know-how from our own experiences troubleshooting reactions, purifications, and packing. We see the product go out our doors, and maintain that connection—remaining available to solve problems long after delivery. That direct line is what users rely on when looking for not only a reliable intermediate, but a technical partner invested in their project’s success.

    The Intersection of Experience and Innovation

    There’s always a balance between established routine and the flexibility to upgrade or tweak a process. Our legacy as a manufacturer of 3-Bromo-2-Hydroxy-6-Picoline springs not from rigid adherence to what’s been, but from ongoing investments in analytical equipment, skilled staff training, and vigilant monitoring of raw supplies. We document every procedural change not just for internal records, but as a resource for customers navigating tighter regulatory scenarios or more ambitious synthetic targets.

    Each improvement effort, whether it’s to reduce solvent waste, enhance product stability, or compress lead times, grows out of repeat runs and data-backed tweaks at the bench. We believe this blend of real-world synthesis and honest feedback grounds our product in practicality, not promises. The foundation remains respect—for the chemist using the material to push innovation, for the safety and reliability demanded in every shipment, and for the unbroken chain of experience that shapes the outcome at scale.

    Pride in Our Process, Commitment to Your Chemistry

    Every drum and flask of 3-Bromo-2-Hydroxy-6-Picoline we send out carries our reputation. Our manufacturing teams know that behind every downstream molecule—or publication, patent, and product—stands the quality of these fundamental building blocks. This hands-on dedication to controlled synthesis, documented purity, safety, and open communication guides us through every production run.

    It’s a steady discipline of minding the details, predicting and solving problems before they reach our customers’ doors, and standing by every batch with the confidence born from actual experience, not just words on a website. As the fields of pharmaceuticals, agrochemicals, and fine materials continue to evolve, our role stays anchored to one truth: careful, repeatable chemistry brings the breakthroughs that define the next era.