Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

2-Bromo-6-Methoxypyridine

    • Product Name 2-Bromo-6-Methoxypyridine
    • Alias 2-Bromo-6-methoxypyridin
    • Einecs 612-223-6
    • 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
    VTB
    Specifications

    HS Code

    748387

    Product Name 2-Bromo-6-Methoxypyridine
    Cas Number 69327-59-3
    Molecular Formula C6H6BrNO
    Molecular Weight 188.02 g/mol
    Appearance White to off-white solid
    Melting Point 46-50 °C
    Boiling Point 261-263 °C
    Density 1.57 g/cm³
    Purity Typically ≥ 98%
    Synonyms 6-Methoxy-2-bromopyridine
    Smiles COC1=CC=CC(N)=N1Br
    Solubility Soluble in organic solvents such as DMSO and methanol

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

    Packing & Storage
    Packing Amber glass bottle containing 25 grams, sealed with a screw cap, labeled with ‘2-Bromo-6-Methoxypyridine’ and all hazard information.
    Shipping 2-Bromo-6-Methoxypyridine is shipped in tightly sealed containers, clearly labeled according to regulatory standards. The chemical is handled as a hazardous material and transported under appropriate safety and temperature-controlled conditions to prevent leaks or degradation. Shipping documentation includes Material Safety Data Sheets (MSDS) and meets international chemical transportation requirements.
    Storage Store 2-Bromo-6-Methoxypyridine in a tightly closed container in a cool, dry, and well-ventilated area, away from direct sunlight and incompatible substances such as strong oxidizers. Keep the container clearly labeled and protected from moisture. Ensure appropriate chemical spill containment and restrict access to trained personnel. Follow all relevant safety and environmental regulations during storage and handling.
    Application of 2-Bromo-6-Methoxypyridine

    Applications of 2-Bromo-6-Methoxypyridine in Industrial Manufacturing

    2-Bromo-6-Methoxypyridine serves as a specialty intermediate in regulated chemical manufacturing, supporting proven industrial workflows from API synthesis to advanced agrochemical development. As a direct manufacturer, we ensure strict quality control and traceability at every stage, meeting audited supply chain requirements for mission-critical downstream processes. The following application scenarios highlight established industrial uses, batch formulation details, technical production flows, and relevant compliance standards.

    1. Pharmaceutical Active Ingredient Synthesis (Pyridine-Based Drugs)

    This material acts as a key functionalized building block for the synthesis of several pyridine-derived drug molecules in GMP-compliant pharmaceutical manufacturing. Its implementation supports structural modifications in custom API routes, especially in the development of anti-tumor agents and select central nervous system (CNS) modulators. Leading multinational API producers utilize it for electrophilic substitution steps and as a halogen source in routes requiring high regiochemical fidelity.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • USP, EP, JP monographs (where applicable via intermediate registration)
    • US FDA 21 CFR Part 210/211 (for cGMP APIs)
    • EDQM and REACH registration dossier compliance

    Typical usage ratio

    • Applied at 0.09–0.22 molar equivalents per API target batch, adjusting for desired substitution pattern and impurity thresholds in multi-step syntheses

    Downstream process integration

    • Added as a core intermediate during mid- or late-stage pyridine ring functionalization, often following initial core assembly
    • Introduced under controlled temperature with catalyst/solvent system to drive halogen exchange and methoxy group preservation
    • Subjected to reaction workup, extraction, and purification (chromatography or crystallization) before coupling or ring closure steps

    Final product types

    • Small molecule APIs (anti-cancer drugs, CNS therapeutics, anti-infectives containing substituted pyridines)
    • Registered pharmaceutical intermediates

    2. Agrochemical Intermediate for Crop Protection Agents

    The compound is widely adopted as a structural intermediate in the synthesis of certain novel herbicides and fungicides, where it facilitates the introduction of methoxy- and bromo-substituted pyridine motifs. Agrochemical technical grade plants select this material for ring-closure and subsequent functionalization processes, exploiting its reactivity to efficiently generate target scaffolds under environmentally regulated processing lines.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • ISO 9001:2015 for agrochemical ingredient traceability
    • EU 1107/2009 Plant Protection Products Regulation
    • China ICAMA registration for agrochemical intermediates

    Typical usage ratio

    • Used at 0.08–0.16 molar equivalents per finished active, optimized for ring reactivity and waste minimization in technical formulations

    Downstream process integration

    • Charged during the core synthesis phase for constructing pyridinyl functional groups prior to downstream conversion via oxidation, amination, or halogen exchange
    • Quality monitored for residual solvent and trace impurity carryover post-reaction

    Final product types

    • Select herbicide actives (e.g., pyridine-carboxamide herbicides, proprietary fungicide scaffolds)
    • Precursor intermediates for seed treatment and foliar protection agents

    3. Functional Intermediate in Electronic Chemical Manufacturing

    This raw material supports the synthesis of specialty organic materials in the electronics sector, especially for the preparation of fluorinated or substituted pyridine derivatives used in liquid crystal display (LCD) and organic light-emitting diode (OLED) production. Semiconductor chemical manufacturers select it for its high purity and controlled halogen functionality, critical to tuning electronic and photonic characteristics in specialty molecular assemblies.

    Industry compliance standards

    • IATF 16949:2016 (for automotive electronic chemicals, where applicable)
    • Restriction of Hazardous Substances Directive (RoHS) for component residuals
    • Advanced semiconductor QC protocols (ISO/IEC 17025 for purity analytics)
    • Customer-specific QMS for optoelectronic intermediate supply

    Typical usage ratio

    • Added at 0.03–0.10 molar equivalents, adjusted to molecular design of the final optoelectronic polymer or precursor and functional group density required

    Downstream process integration

    • Fed into batch reactors for further functionalization, frequently via cross-coupling or nucleophilic substitution to yield highly substituted building blocks
    • Product isolated through high-performance distillation and advanced purification to meet electronics industry purity benchmarks

    Final product types

    • Pyridine-based intermediates for LCD alignment layers
    • OLED emitter material precursors
    • Specialty dopants for organic semiconductor thin films

    4. Intermediate for Specialty Dye and Pigment Production

    In advanced dye and pigment manufacturing, the compound serves as an important precursor for creating functionalized pyridine-based chromophores. Dye producers incorporate it to introduce specific substitution patterns that enhance colorfastness and enable novel electronic effects, critical in technical textile, inkjet, and digital printing applications. Manufacturing lines demand high-purity lots to prevent dulling or unpredictable hue shifts in final pigment dispersions.

    Industry compliance standards

    • EN 71-3 (Toy Safety Directive, for dyes in children's products)
    • OEKO-TEX® Standard 100 (for certified textile dyes)
    • REACH Annex XVII (restriction of hazardous substances in colorants)
    • ISO 105-B02/B04 (color fastness testing standards)

    Typical usage ratio

    • Utilized at 0.07–0.15 molar equivalents in chromophore precursor syntheses, ratio varies with target shade, desired hue intensity, and downstream coupling strategy

    Downstream process integration

    • Introduced in the early-stage condensation or cyclization step to build core aromatic structure, followed by functional group elaboration or azo coupling (if applicable)
    • Pigment-forming reactions conducted under tightly regulated temperature and pH to achieve target performance in final applications

    Final product types

    • Technical textile dyes with enhanced light and wash fastness
    • Digital printing pigment dispersions
    • Specialty colorants for high-definition industrial inks

    5. High-Performance Coating Additive Synthesis

    Manufacturers in the performance coatings and specialty polymers domain utilize the material to engineer pyridine-containing additive molecules. These additives strengthen chemical resistance or build in specific cross-linkable sites for advanced resin matrices. The compound’s reactivity in nucleophilic aromatic substitution routes provides design flexibility for next-generation UV-cured and chemically resistant coatings on automotive, aerospace, and industrial equipment surfaces.

    Industry compliance standards

    • ISO 9001 (Quality management for specialty chemicals)
    • GB/T 23986 and ASTM D6900 (coating additives)
    • REACH pre-registration for additives
    • Automotive OEM Acceptance Criteria (for coatings raw materials)

    Typical usage ratio

    • Blended at 0.05–0.12 molar equivalents in intermediate formulations; amounts vary with the cross-linking density and end-use mechanical or chemical exposure requirements

    Downstream process integration

    • Charged during prepolymer synthesis or post-polymer functionalization, then integrated into the additive modifier matrix under solvent-borne or solvent-free processing conditions
    • QC labs monitor for residual halogen and free amine after reaction completion

    Final product types

    • UV-cured coatings for automotive plastic trims
    • Anti-corrosive powder coating additives
    • Solvent-based and high-solids industrial floor coatings
    Free Quote

    Competitive 2-Bromo-6-Methoxypyridine 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.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    2-Bromo-6-Methoxypyridine: An Informed Perspective from the Manufacturer

    Understanding 2-Bromo-6-Methoxypyridine in the Real World of Chemical Synthesis

    Manufacturing 2-bromo-6-methoxypyridine involves precision, long-term know-how, and commitment to consistent purity. We started producing this compound years ago, recognizing its importance as an intermediate for the pharmaceutical and agrochemical industries. We haven’t simply followed market trends; we’ve listened to process chemists, development teams, and formulation experts. Real-world feedback shapes every decision here. As producers, not just handlers, we’ve seen the impact that slight variations in batch synthesis can have on final product utility, downstream yield, and project timelines.

    Our Model: Thoughtful Synthesis, Practical Applications

    At our facility, 2-bromo-6-methoxypyridine isn’t stocked in bulk as an afterthought. Each lot draws on refined bromination procedures, monitored by experienced technicians with years at the reactor lines. Typical batches are pale yellow solids, each one closely tracked from raw material selection to finished product. With every drum or kilo delivered, our technical staff recalls the days when barely anyone discussed trace impurities or byproduct isolation; now, every chemist expects full transparency. Because of repeated demands for analytical clarity, we regularly document HPLC profiles and NMR reports alongside each shipment. Over time, the standard evolved to not just meet basic regulations but to anticipate the troubles our customers might face if quality slipped even slightly. Our specifications reflect what chemists in high-stakes applications truly need—high purity, consistent melting ranges, and well-documented moisture and residual solvent content.

    Where 2-Bromo-6-Methoxypyridine Earns its Place

    From our experience, this molecule has become a crucial handle for introducing functional groups on the pyridine ring. We’ve seen how the methoxy group at position 6 and the bromo group at position 2 open doors for new approaches to cross-coupling, especially for phenylation or alkylation under palladium catalysis. Years back, development chemists in our area struggled with regioselectivity problems until they found how this particular arrangement improved coupling efficiency. In one practical case, a key pharmaceutical intermediate needed a reliable methoxypyridine backbone—attempts to source from less experienced suppliers led to inconsistent reaction profiles. We learned from these customer headaches, reinforcing the importance of tightening every control in our own plant. For medicinal chemists, this compound helps build complexity into molecules used in CNS-active compounds, kinase inhibitors, and select crop protection products.

    Specifications That Have Been Shaped by Use, Not Just Standards

    Specifications weren’t handed down on a silver platter. Over years of customer feedback, the market pushed for higher and higher purity—well above 98%. We closely track trace hydrolysis and overbrominated impurities, since we’ve lost count of how often sensitive reactions suffered due to unseen contaminants. Today, each package typically exceeds 99% purity (HPLC), with water content below 0.5%. Melting points usually run between 60 and 65°C, an easy visual check for our packing team and for chemists in the lab. On-site, we commit to batch consistency because our daily operations proved that only tight controls deliver reproducible outcomes in industrial-scale syntheses. With each lot, gas chromatography and mass spectrometry analysis uncover even the faintest residual solvent. Our own process optimization reduced chances of side reactions—practical changes sparked by real-world complaints. After all, we realized that off-color lots or unfamiliar odors often meant more process trouble down the line, so we focus on minimizing even those seemingly minor defects.

    Why This Product Differs from Others on the Shelf

    Ask any process chemist: not all 2-bromo-6-methoxypyridine on the market builds molecules the same way. We’ve handled off-spec samples from other plants: toluidine impurities, uneven granule size, or mishandled packaging can make otherwise standard lots unpredictable. Our production prioritizes uniform particle size and minimal dust, because operators handling the product every day give us honest feedback on ease of transfer and weighing. Over time, we replaced certain seals and switched to custom drum liners when a single puncture led to a costly moisture pickup. Unlike generic versions, our batches see handheld NIR checks right at final packing. These steps might sound routine until a synthesis campaign jeopardizes months of work over minor variations. Packaging decisions weren’t dictated by marketing, but by loaders who actually carry drums out the warehouse door and chemists who see firsthand what two months of improper storage can do. That means every drum leaving our facility has faced the scrutiny not just of the lab, but of hard-won, daily plant experience.

    Listening to Chemists: The True Measure of Product Value

    We’re not in the business of selling theoretical molecules. Each batch represents hundreds of small improvements based on real user pain points. If the product releases fine particles in the air, we respond by updating our sieving and dust control. When a drug developer worried about leaching from container walls, we began offering tailored packaging. Although many may claim their product is “interchangeable,” we know that performance in the lab depends on details invisible to any quick inspection. A few years ago, a pharma partner shared that a trace metal from poorly sourced bromine led to catalysts failing in late-stage development. Following this, we went back up the supply chain, sourced cleaner reagents, and adjusted our filtration steps. Our staff holds each kilogram accountable, aware that a week lost to resynthesis can mean thousands of dollars and lost confidence. As a manufacturer, the challenge isn’t simply whether we produce enough; it’s whether our customers can rely on our material for every run, every time.

    Supporting Innovation While Meeting Time Pressures

    In pharmaceutical discovery or high-throughput screening, timing is everything, and so is reliability. Teams racing to meet development deadlines have little patience for variances between shipments. A reliable stock of 2-bromo-6-methoxypyridine underpins timelines for new molecule pipelines or scale-up transitions. We’ve seen formula optimization grind to a halt simply because the intermediate kept failing QC. Traditional “just good enough” attitudes don’t hold up under today’s regulatory and scientific demands. Thanks to years spent partnering directly with end-users, we dedicate resources to both rapid-turnaround orders and comprehensive documentation. Instead of generic datasheets, clients ask, and we provide full impurity profiles on request as well as stability reports under various storage conditions. The focus stays on keeping product quality high, but also on responding to the unforeseen issues that real-world timelines and product evolution present.

    Product Handling and User Experience: Small Details, Big Outcomes

    Over time, we learned product success means more than synthesizing a chemical that passes a purity test. Packing off-grade material not only hurts us; it slows innovation everywhere downstream. Our loading crews, lab chemists, and customer reps collaborate to identify points where losses or product breakdown could occur during shipping. Moisture ingress, temperature shocks, and light exposure all degrade chemical integrity. When a partner complained of caking after an intercontinental shipment, we examined transit conditions and started tracking dew point against packaging resilience. These kinds of feedback loops never end, because each new scale or geography reveals unique handling challenges. Safety isn’t an afterthought: we train our workers both onsite and at customer locations, often visiting in person when partners request support with handling or process troubleshooting. We keep SDS documentation ready and up-to-date, and we actively participate in cross-company safety briefings to prevent accidents before they start. Our team doesn’t see safety as a liability measure; it’s an opportunity to embed know-how into every step of the product’s lifecycle, from reactor to receiving dock.

    Environmental Responsibility: Beyond Theory

    No matter how advanced our process becomes, chemical manufacturing bears a responsibility to the workforce and surrounding community. With 2-bromo-6-methoxypyridine, brominated waste and solvent runoff posed challenges in earlier years; ignoring these risks would raise costs for everyone. We chose to set up on-site solvent recovery, reducing both our environmental impact and raw material costs. By recycling and purifying wash solvents, we send less byproduct to waste treatment. We track bromine levels in effluent, voluntarily reporting to local environmental authorities. Air emissions, a concern for neighbors and staff, get filtered and scrubbed—not because regulations forced our hand, but because we take pride in the neighborhood we work in. Over the years, safer chemistry has helped us reduce halogenated byproducts and minimize temperature extremes during bromination—process “tweaks” driven not by compliance, but by intergenerational stewardship. Our employees often live near the plant, raising families in the community, so we build safety not just for today but for future generations. Transparency takes precedence: we host local open houses, walk visitors through the process, and share emissions data with anyone who asks. From aspiration to implementation, these efforts give our partners tangible proof of responsible manufacturing.

    Global Reach, Consistent Supply

    Fluctuating global supply chains have transformed how specialty chemicals reach their destination. We’ve sustained long-term partnerships across North America, Europe, and Asia by balancing steady inventory and responsive logistics. Large pharma companies demand reliable shipments and supply chain visibility. Smaller biotech firms look for flexible minimum order quantities and shorter lead times. Our logistics coordinators work hand-in-hand with production and sales, tracking every shipment, troubleshooting customs issues, and ensuring proper documentation follows every consignment. Different countries enforce different regulatory and safety hurdles; we adapt batch documentation and logistics to suit both the paperwork-heavy EU markets and fast-turn Asian development centers. When disruptions hit—whether political, logistical, or due to raw material swings—our long-standing supplier relationships buffer shocks. The digitalization of tracking, from batch origin to customs forms, has cut errors and sped up delivery. Global reach doesn’t mean warehouse anonymity; it’s a daily balancing act that starts with predictable output in the plant and ends at the chemist’s bench thousands of kilometers away.

    Comparing 2-Bromo-6-Methoxypyridine to Its Relatives

    Chemists have more choices now than ever when it comes to functionalized pyridines. We’ve made, tested, and analyzed dozens of related isomers and halogenated pyridine derivatives. 2-bromo-6-methoxypyridine distinguishes itself from 2-chloro or 2-fluoro variants by its unique reactivity in classical cross-couplings. The bromo leaving group balances reactivity—neither too slow like some chloro analogs nor prone to excessive side reactions like iodo derivatives. The position of the methoxy group at site 6 impacts resonance, changing how the pyridine ring takes part in nucleophilic aromatic substitution and transition-metal catalyzed transformations. We’ve observed faster conversions and higher isolated yields than with some closer analogs, especially when targeting electron-rich intermediates. For customers screening similar compounds, our own screening assays have documented sharper reaction profiles and fewer byproducts in complex synthesis scenarios. This niche utility keeps the compound in strong demand, despite the rise of newer, flashier building blocks. Simply put, process chemists return to this product year after year for its reliability and the hard data behind each lot.

    Ongoing Adaptation and the Road Ahead

    Markets evolve. Supply chains shift. Regulations change. What remains constant is our commitment to adapting in response to new demands, not just to keep pace, but to set the tempo. We invest in modernizing reactors and automation to keep output consistent, but we don’t cut corners on technical support. Every inquiry passes through chemical engineers or application scientists, not call centers. We invest not only in sustainable production but in training the next generation of staff—embedding lessons learned from years on the reactor floor. Sustainability audits run hand-in-hand with product R&D, pushing new ways to further purify our product, salvage more materials, and minimize waste. It’s one thing to talk about responsible sourcing; it’s another for employees to stick around long enough to see their process improvements make a difference, both in revenue and in the health of the community. We invite scrutiny and use it to get better, batch after batch. The result: clients in pharma, agrochemicals, and fine chemicals trust our 2-bromo-6-methoxypyridine not for words on a datasheet, but for the hands-on results seen with each delivery.

    The Manufacturer’s View: Past, Present, and Future

    Looking back on years of production—through cycles of discovery, scale-up, regulatory scrutiny, and generational handovers—we see 2-bromo-6-methoxypyridine as more than just a line item. It’s a collaboration between our shop floor, our partners, and everyone who relies on chemical synthesis to drive progress. Products like these connect scientist to process, risk to solution, and innovation to daily effort. Every drum reflects the long hours, revisions, and feedback loops that make real manufacturing different from the world of trading or reselling. The challenges don’t stop, but neither do the lessons learned each time a chemist reaches for our material. This ongoing exchange ensures tomorrow’s batches are better than today’s—and that’s a promise we keep every day, right at the source.