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2-Amino-3-Bromo-5-Fluoropyridine

    • Product Name 2-Amino-3-Bromo-5-Fluoropyridine
    • Alias 2-Amino-5-bromo-3-fluoropyridine
    • Einecs 837-888-3
    • 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

    597570

    Product Name 2-Amino-3-Bromo-5-Fluoropyridine
    Cas Number 883531-13-1
    Molecular Formula C5H4BrFN2
    Molecular Weight 191.00 g/mol
    Appearance Off-white to light yellow solid
    Purity Typically >98%
    Solubility Soluble in organic solvents such as DMSO and DMF
    Smiles NC1=NC=C(F)C(Br)=C1
    Inchi InChI=1S/C5H4BrFN2/c6-4-2-3(7)1-9-5(4)8/h1-2H,(H2,8,9)
    Storage Conditions Store at 2-8°C, protected from light and moisture
    Synonyms 3-Bromo-5-fluoropyridin-2-amine

    As an accredited 2-Amino-3-Bromo-5-Fluoropyridine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Sealed amber glass bottle containing 10 grams of 2-Amino-3-Bromo-5-Fluoropyridine, labeled with hazard warnings and product details.
    Shipping 2-Amino-3-Bromo-5-Fluoropyridine is shipped in tightly sealed containers, protected from moisture and light. Packaging complies with hazardous materials regulations. Transport is typically conducted at ambient temperature with appropriate labeling. Shipping documentation includes safety data information, ensuring safe handling and regulatory compliance throughout transportation. Handle with care and avoid physical damage during transit.
    Storage 2-Amino-3-Bromo-5-Fluoropyridine should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight and incompatible substances such as strong oxidizers. Keep the chemical at room temperature and avoid moisture exposure. Always label the container clearly and handle in accordance with proper laboratory safety guidelines, including use of personal protective equipment.
    Application of 2-Amino-3-Bromo-5-Fluoropyridine

    Applications of 2-Amino-3-Bromo-5-Fluoropyridine in Industrial Manufacturing

    As a direct manufacturer, we supply 2-Amino-3-Bromo-5-Fluoropyridine primarily for advanced pharmaceutical synthesis and specialty agrochemical intermediates. Our experience supporting process development for global industry leaders ensures traceability, process transparency, and full compliance with stringent industry protocols. Below, we detail its principal real-world industrial applications and the integration points across critical value chains.

    1. Pharmaceutical Intermediate for Antiviral API Synthesis

    This pyridine derivative is a key intermediate in the multi-step synthesis of select antiviral active pharmaceutical ingredients, where its unique halogenation pattern enables regioselective coupling and site-specific modifications during late-stage drug assembly. Custom formulations may require adjustment based on target molecule reactivity, and each production batch demands rigorous control over impurity profiles to meet evolving regulatory expectations.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP General Chapters <797> and <1078> for manufacturing environments
    • EU Guidelines for GMP Part II API Production
    • FDA 21 CFR Part 211 (Finished Pharmaceuticals)

    Typical usage ratio

    • 15–22% by molar input in functionalization step; adjusted to maintain selectivity and maximize API yield, based on target molecular structure

    Downstream process integration

    • Introduced during Stage II or III of the API synthesis cascade in multi-reactor setups, typically after initial scaffold construction; incorporated via Buchwald–Hartwig or Suzuki cross-coupling to develop the key pharmacophore

    Final product types

    • Branded antiviral tablets and capsules
    • Generic small-molecule antivirals
    • Clinical trial materials for new chemical entities with pyridine scaffolds

    2. Building Block in Oncology Therapy Development

    Complex heterocyclic intermediates containing bromo and fluoro substituents are increasingly in demand among contract development and manufacturing organizations (CDMOs) developing targeted cancer therapeutics. Our material ensures consistent purity, minimizing side-product formation during subsequent amide or aryl amination reactions essential for final drug construction.

    Industry compliance standards

    • EMA Quality Guidelines: ICH Q11 for Drug Substance Development
    • USP <232> and <233> for elemental impurity control
    • ISO 9001:2015 for quality management in pharmaceutical supply chains
    • REACH Registration, Evaluation, Authorisation and Restriction of Chemicals

    Typical usage ratio

    • 10–18% mol fraction relative to initial heteroaromatic input, determined by medicinal chemistry scale and anticipated downstream conversion efficiency

    Downstream process integration

    • Dosed in the intermediate coupling or functionalization stage of kinase inhibitor manufacturing, either as a core scaffold donor or key functional group carrier during automated solid-phase synthesis runs

    Final product types

    • Targeted oral oncology medications
    • Investigational drug candidates for kinase pathways
    • NCE intermediates for combination therapy pipelines

    3. Intermediate for Agrochemical Active Ingredient Formulation

    As an essential halogenated pyridine input, this material enables cost-effective synthesis of next-generation herbicide and fungicide molecules requiring multi-site bioactivity. Process requirements focus on reproducible reactivity and supply security for multi-ton campaigns supporting agricultural spray product lines intended for global distribution.

    Industry compliance standards

    • FAO/WHO Specifications for Agricultural Pesticides
    • US EPA 40 CFR Part 158 Data Requirements for Pesticides
    • OECD Principles of Good Laboratory Practice
    • GHS (Globally Harmonized System) classification and labeling

    Typical usage ratio

    • 5–12% by weight in the formulation step, adapted according to desired potency and crop protection spectrum, with process scale adjusted for local and export registration batches

    Downstream process integration

    • Added during the pre-final synthetic phase of active ingredient production, often through nucleophilic aromatic substitution or further halogenation prior to formulation into wettable powders or liquid suspensions

    Final product types

    • Broad-spectrum herbicide concentrates
    • Protectant fungicide technicals
    • Blended crop protection premixes

    4. Starting Material for Specialty Electronic Chemical Synthesis

    High-purity 2-Amino-3-Bromo-5-Fluoropyridine serves as a niche precursor in the synthesis of advanced organic semiconductors and functional materials for OLED (organic light-emitting diode) and OTFT (organic thin-film transistor) production. Consistent control over isomeric content and absence of metallic impurities are essential, as even trace contaminants can reduce device performance or lifetime.

    Industry compliance standards

    • IEC 60068 for material testing in electronics
    • RoHS (Restriction of Hazardous Substances Directive) compliance for electronics raw materials
    • JEDEC JESD625 for handling contamination-sensitive electronic chemicals
    • ISO 9001:2015 for specialty material production traceability

    Typical usage ratio

    • 2–6% molar ratio, calculated based on the required density of nitrogen and halogen functionalities in the final organic layer architecture

    Downstream process integration

    • Fed into Suzuki–Miyaura or direct arylation synthesis runs for small-molecule emitter or transport layer components prior to vacuum deposition or inkjet printing onto device substrates

    Final product types

    • Small-molecule OLED emitters and host materials
    • Organic transistor precursor polymers
    • Smart display backplanes and flexible electronic component prototypes
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    Certification & Compliance
    More Introduction

    2-Amino-3-Bromo-5-Fluoropyridine: From Factory to Chemistry Bench

    Walking Through the Manufacturing Line

    Creating a reliable supply of 2-Amino-3-Bromo-5-Fluoropyridine starts long before any bottle touches a laboratory shelf. On our production floor, we see each batch lift its own weight thanks to carefully chosen intermediates and raw materials. We don’t farm this work out; factory teams oversee every step. They measure, monitor, and adjust, not because it’s a requirement, but because every tiny change in temperature, reaction time, or purity can turn a run-of-the-mill intermediate into a problem for the end user. Our team understands chemistry and the real grind of scaling up reactions—by hand, not by spreadsheet. We select catalysts and control atmospheres with painstaking attention, preventing decomposition of the brominated and fluorinated moieties. Skipping quality control bites hard later on, especially when end-users knock on the door with purity questions or process headaches.

    Most folks outside the manufacturing line don’t see how tough it is to stabilize a molecule like this, especially with both bromine and fluorine in key positions. Bromine likes to sneak off and swap places unless you keep reaction conditions steady; fluorine brings its own tricks given its volatility and reactivity. We tune pressure, monitor phase separations, and don’t cut corners when it comes to washing or drying—one overlooked crystal could mean trouble downstream. Crude product gets checked in process, not just on the final sample; real roots underlie every batch number.

    So, What Makes 2-Amino-3-Bromo-5-Fluoropyridine Tick?

    Our version of this pyridine derivative reliably provides a single, sharp melting profile with a solid color, free from streaks of brown or pink. We measure HPLC purity for each lot. Plugging three distinct substituents onto a pyridine ring—an amine at 2, bromine at 3, fluorine at 5—delivers a molecule that fits a narrow but important niche. We’ve met researchers who seek this scaffold as a springboard for kinase inhibitors. Its halogenation opens doors: the bromo group activates the ring for further Suzuki or Buchwald cross-couplings, while the amino group paves the road to novel heterocyclic cores.

    2-Amino-3-Bromo-5-Fluoropyridine doesn’t mimic its cousins. Compared to the 2-Amino-5-bromopyridine or the 3-Bromo-5-fluoropyridine, the additional functional groups transform how the molecule behaves in solution and under light. Chemists in medchem and agrochemical fields note the hydrogen bond donor at the 2-position amine and the strong electron-withdrawing effect of the fluorine at 5. In the right hands, those properties help researchers fine-tune biological activity, improving selectivity for kinase targets or boosting in vivo metabolic stability.

    Over years, customers bring feedback straight to our door. We hear stories of bottlenecked reactions, ruined columns, even wasted weeks because a less robust vendor let impurities slip through. You can’t afford that frustration. We keep solvents dry, column loads well under capacity, and batch records transparent—all this builds trust the first time and keeps it strong with every delivery.

    Why It Matters in Today’s Research Landscape

    Nobody in molecule discovery wants to repeat synthesis or hunt down invisible side products. We’ve seen project teams adopt 2-Amino-3-Bromo-5-Fluoropyridine as a central scaffold after months in screening campaigns, only to stall if a batch arrives out-of-spec. There’s more at stake than cost per gram: a single impure reagent can break a synthesis chain, contaminate downstream products, and create headaches at every analysis step.

    We focus on batch-to-batch reproducibility. The time isn’t just in the bottle—it’s in the peace of mind. Each label on each drum or vial means that an upstream process delivered as expected. Our clients count on this chain of accountability. We achieve this not because it’s dictated from the top down but because conversations with chemists on both sides—those refining process chemistry and those at the R&D bench—remind us that their trust is earned with every shipment received, not promised in sales brochures.

    In the Reaction Vessel: How Our Product Works With You

    Kinase-targeted libraries often start with heterocycles that respond predictably in palladium-catalyzed coupling reactions. Our batches lend themselves well to those cross-couplings. The 3-bromo functionality behaves dependably under these protocols. Where other resources fall short, such as with sensitive protection/deprotection steps or high-throughput setups, we offer well-documented technical guidance from past runs and client feedback.

    The nuanced interplay of amine, bromine, and fluorine enables careful tuning of physical properties in drug development. The 2-amino group engages in unique hydrogen bonding patterns—proven valuable in fragment-based design efforts—and brings better solubility than nitro or cyano analogs. Fluorination at the 5-position supports improved metabolic profiles thanks to the well-known effects of fluorine, especially in blocking oxidative metabolism at certain ring positions. The bromine provides a site for further elaboration, crucial for rapidly building series of analogs in lead optimization.

    Common Hurdles Researchers Face—And What We Do About It

    Inconsistent quality undermines confidence and sets projects back by months. Some see discoloration, non-uniform melting points, or unexpected side bands in their NMR runs. Others complain about doublets merging with triplets, or broadening indicative of unreacted pyridine or ring-opened impurities. Our process monitors for these pitfalls. We deploy analytical checks right after workup, not just at the end, spotting issues long before product reaches packaging. If a batch doesn't pass muster, we don't try to salvage it—we start again.

    Shipping brings its own headaches, especially with halogenated and aminated aryls, which can be sensitive to both moisture and light. Through years of dialogue with university and industrial chemists, we’ve learned that packaging in amber glass and employing preconditioned desiccants keeps lots within spec for longer storage and overseas transit. We train our logistics team to handle sensitive shipments with gloves—both literally and figuratively. Mistakes don’t simply cost time; they cost credibility.

    Setting a Standard Beyond the Basics

    We do not simply meet minimum stated specs and call it a day. The science driving pharmaceutical and agrochemical advances is changing quickly, so relying only on textbook purities or generic COA sheets would leave researchers without the depth they need. Technicians in our labs run custom analyses on batches bound for libraries that demand additional chiral or stereochemical scrutiny. We record and archive full traceability data. If a buyer’s downstream needs shift and new HPLC or GC methods are called for, we stand by for method development or impurity profiling support. This saves time and deepens understanding as projects grow and targets evolve.

    Our close partnerships with contract research organizations have revealed the value in transparent data sharing. Researchers report back on isolated yields, reaction color, and conversion rates using our batches. We use their input to calibrate our own QC and improve protocols, closing the loop between factory and researcher.

    Differences From Other Sourcing Options

    Not all suppliers manufacture. Traders and resellers might not catch problems until it’s far too late. Our teams work the entire lifecycle of a batch, from raw pyridine derivatives through halogenation to amination and downstream purification. We’re not picking up drums from halfway around the globe, relabeling, and hoping for the best.

    Batches from upstream resellers often show mild cross-contamination with structurally related byproducts, especially if factories churn out multiple substituted pyridines with parallel processes. We prevent cross-contamination by scheduling reactors for single-product campaigns, shutting down between runs for deep clean-outs. Operators keep records by hand, and each hand-off is double-checked—not only by machine, but by trained eyes that spot trends in product texture and crystallinity missed by analytics alone.

    We’ve faced our own share of supply disruptions—shortages of high-grade halogen sources, logistic slowdowns, and customs delays. We buffer these shocks not by diluting standards, but by holding reserve inventory, refining contingency plans, and staying honest with timelines. The result is a relationship based in mutual respect, which grows batch by batch.

    Supporting Customers, From Lab Scale to Commercial Use

    University groups test gram quantities in new assay systems; pharmaceutical process teams request hundreds of kilograms during a scale-up. These demands don’t work on a one-size-fits-all system. We routinely tailor pack sizes, update storage protocols, and translate ask-for-feedback into better procedural documentation. Chemists at the bench face real-world constraints: pump breakdowns, unplanned delays, shifting priorities. We offer not just a tracked box but troubleshooting from those who’ve walked the same floors and nursed the same reaction pots.

    We listen. Once projects move past the initial hit-to-lead phase, researchers pivot toward greater volumes or new analogs. They look for consistent lots and quick tech support. When someone requests a fivefold scale-up or substitution with isotopically labeled material, we pull from past campaigns and internal notes. Experience counts—every off-the-cuff solution grows from years seeing what works and what fails in situations most textbooks gloss over.

    Reducing Waste and Increasing Safety

    Hazard management joins every discussion. We integrate waste reduction into planning—roads, not just in batch sizes, but in the solvents and wash procedures we pick. Our teams handle every step of neutralizing byproducts and reducing halogen waste. Field experience proves how critical proper handling is for both safety and compliance. Exposure to excess brominated solvents or heat-unstable residues can cause headaches for everyone—factory floor to final user.

    We put safety above all. Internal teams receive routine training on proper PPE, spill response, and cross-contamination avoidance. Checklists grow and evolve based on real-world incidents rather than just rules on paper. This keeps our facility in good standing with inspectors and keeps our staff healthy and alert through every shift.

    Quality Is No Afterthought

    In the final analysis, the reputation of any intermediate reflects through every kilogram shipped. These lessons are not theoretical points—they've come out of years spent fielding panicked calls and urgent emails. A broken chemistry project doesn’t just cost a few hours in the lab. It halts discovery, forces teams to retrace steps, and strains budgets. No one forgets a supplier who supports—or fails—them in a tipping-point moment.

    We bring hands-on insight to each order. Batches don’t leave our plant until they match the data customers expect. Shipments follow detailed paperwork not only to satisfy regulations but to ease audits from funding agencies or corporate QA teams. Success means certainty—in QC, in documentation, and in people. Researchers deserve that foundation in every bottle.

    How We Measure Our Progress

    We don’t rely on annual reports to improve. Out in the plant, stories mean more than pie charts. Teams circle up for debriefs after every campaign, charting what worked and what trended off-track. Adjustments stem from seeing how chemistry unfolds on the floor, not hypothetical best practices. Data from analytics, technician logs, and end-user feedback define our cycles of improvement. This roots-out recurring glitches before scale-up makes them costly.

    Engagement doesn’t end at the sale. We track long-term storage testing in real-time, simulating different climates based on where product lands globally. Juniors shadow seniors in troubleshooting every anomaly—whether that’s odd crystallization, sluggish loading on columns, or off-color batches. These small lessons keep our standards in motion and ensure growth doesn’t water down quality.

    Bridging the Gap Between Factory and Research

    2-Amino-3-Bromo-5-Fluoropyridine is more than a chemical entity. It’s a linchpin in discovery—not because of what gets written on a label, but because of how it moves projects forward or holds them back. Our stake in this chemistry isn’t just as a producer. We walk both the plant floor and the brainstorming room with our customers, sharing in the debugging and celebration. Our product reflects that partnership from first molecule to final result.

    Real-world chemistry doesn’t reward shortcuts. Experience built on production lines, in pilot plants, and in one-on-one researcher conversations shapes not only our batch quality, but the way we advise, adapt, and grow. Each order renews the cycle of learning and improvement. Each drum, vial, and conversation sets new standards—in our facility and in the progress of every project we support.