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1-Bromo-2,5-Dimethoxybenzene

    • Product Name 1-Bromo-2,5-Dimethoxybenzene
    • Alias 2,5-Dimethoxybromobenzene
    • Einecs 221-970-0
    • 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

    515718

    Iupac Name 1-Bromo-2,5-dimethoxybenzene
    Molecular Formula C8H9BrO2
    Molar Mass 217.06 g/mol
    Cas Number 102-60-3
    Appearance Colorless to pale yellow liquid
    Density 1.489 g/cm³
    Boiling Point 265-266 °C
    Melting Point 12-14 °C
    Solubility In Water Insoluble
    Flash Point 118 °C
    Refractive Index 1.572
    Pubchem Cid 7470

    As an accredited 1-Bromo-2,5-Dimethoxybenzene 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 of 1-Bromo-2,5-Dimethoxybenzene, sealed with a screw cap and safety label, for laboratory use.
    Shipping 1-Bromo-2,5-Dimethoxybenzene is shipped in tightly sealed containers, protected from light, moisture, and incompatible materials. It is classified as a hazardous chemical and must be transported according to local and international regulations, including appropriate labeling and documentation. Specialized packaging ensures safety during handling and transit to prevent leaks or contamination.
    Storage 1-Bromo-2,5-dimethoxybenzene should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from sources of ignition and strong oxidizing agents. Protect from moisture and direct sunlight. Store under inert gas if indicated by safety data guidelines. Ensure appropriate labeling and keep away from incompatible substances to maintain chemical stability and safety.
    Application of 1-Bromo-2,5-Dimethoxybenzene

    Applications of 1-Bromo-2,5-Dimethoxybenzene in Industrial Manufacturing

    As a direct manufacturer, we support a range of specialized industries with high-purity 1-Bromo-2,5-dimethoxybenzene. This intermediate plays a key role in advanced synthesis and is selected for specific transformation in targeted production lines. Below we detail its precise uses in real-world manufacturing environments.

    1. Pharmaceutical Intermediate for Active Pharmaceutical Ingredient (API) Synthesis

    Pharmaceutical manufacturers employ 1-Bromo-2,5-dimethoxybenzene in the multi-step synthesis of psychoactive and research-focused APIs, especially for benzodioxole-based drug scaffolds. The compound ensures regioselective bromination vital for downstream functional group modifications, typically used during Grignard or Suzuki coupling reactions. Maintaining strict quality and traceability, production lines leverage its high purity to support cGMP-compliant synthesis of registered intermediates used for development of central nervous system and psychiatric drug classes.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 210/211
    • China Pharmacopoeia intermediate-grade certification
    • European Pharmacopoeia Monograph compliance for intermediates

    Typical usage ratio

    • 0.95–1.05 molar equivalents per synthesis route, scale adjusted based on yield optimization and multi-gram/liter production scale

    Downstream process integration

    • Charged post-first purification; reacts under controlled inert atmosphere within sealed reactors
    • Incorporated following anhydrous halide activation or prior to palladium-catalyzed cross-coupling
    • Feeds directly into API precursor library creation for lead candidate development
    • Enter stability testing cascade post-synthetic conversion

    Final product types

    • Clinical trial-scale API intermediates
    • Non-clinical research molecules
    • Pilot batch psychiatric drug building blocks
    • Registered benzodioxole API for NDA/ANDA pipeline

    2. Fine Chemical Synthesis for Organic Electronic Materials

    Producers of organic electronic and optoelectronic materials rely on the reactivity of this bromoarene to introduce methoxy-functionalized moieties in the core structure of OLED and OPV precursors. Its precise substitution pattern enables targeted polymer backbone engineering, critical for charge mobility and stability in electronic films. Used within research-scale and pilot production lines, this material underpins synthesis of high-value aryl ethers and is indispensable for high-spec optoelectronic device prototyping and upscaling.

    Industry compliance standards

    • REACH Registration (EC 1907/2006)
    • RoHS Directive 2011/65/EU for electronic substances
    • ISO 9001:2015 Quality Management for fine chemical production
    • RoHS testing for heavy metal and halogen content

    Typical usage ratio

    • 1.00 molar equivalent for each aryl coupling reaction scaffold; range adjusts ±0.05 depending on functional group tolerance

    Downstream process integration

    • Introduced as the key bromo donor in Pd-catalyzed C–C or C–O coupling mechanisms
    • Processed under nitrogen with dry solvents to avoid hydrolysis
    • Directly feeds optoelectronic polymer backbone assembly
    • Integrated at the pre-polymerization or oligomer synthesis step

    Final product types

    • Small-molecule and polymer OLED emitters
    • Precursor materials for organic photovoltaics (OPVs)
    • Hole-transport layers compounds for display technology
    • Advanced aryl ether linkers for printed electronics

    3. Agrochemical Intermediate for Fungicide Synthesis

    Agrochemical formulators use this compound as a synthetic building block in the manufacture of modern benzodioxole-based fungicides. Its dual methoxy substitution offers site-specific delivery in subsequent ring-closure or protection/deprotection strategies, providing selectivity in multi-functional crop protection agent development. High process control in agrochemical facilities ensures reproducible results while adhering to food safety and environmental standards.

    Industry compliance standards

    • FAO/WHO pesticide specification requirements
    • ISO 9001:2015 Quality Management System for pesticide intermediates
    • China’s National Food Safety Standard for pesticide raw materials GB 2763
    • EU Regulation (EC) No 1107/2009 on plant protection product approval

    Typical usage ratio

    • 0.80–1.25 equivalents depending on desired yield and specific heterocyclic coupling strategy

    Downstream process integration

    • Added as a ring-functionalizing intermediate prior to sulfonation or amidation steps
    • Feeds into batch or continuous process reactors after solvent swap from crude phase
    • Tested for conversion via GC/HPLC inline after reaction endpoint
    • Isolated post-functionalization for downstream blending into formulation tanks

    Final product types

    • Protective fungicide active ingredients (e.g., for cereals and fruit)
    • Registered intermediates for herbicide development
    • Soil treatment compound precursors
    • Chemotypes for resistance management product lines

    4. Specialty Dye and Pigment Precursor

    Specialty dye manufacturers utilize this aromatic bromide as a core functionalization agent during the synthesis of high-performance dye intermediates, including those for high-stability pigments and colorants. The orthogonal methoxy groups facilitate further substitution, allowing for manufacture of fine-tuned colorants used in non-bleaching and light-fast textile applications, as well as in molecular sensor development. Integration within dye production lines ensures a controlled moiety distribution in the resulting pigment backbone, optimizing fastness and dispersion qualities.

    Industry compliance standards

    • OEKO-TEX Standard 100 for textiles and dyes
    • GOTS (Global Organic Textile Standard) for dye intermediates
    • REACH Regulation (EC) No 1907/2006 for colorant substances
    • ISO 14001 Environmental Management (applicable to textile dye manufacturing)

    Typical usage ratio

    • 0.90–1.10 equivalents per colorant scaffold, requiring slight scale adjustments for batch consistency

    Downstream process integration

    • Charged in the first aromatic substitution for dye-molecule core formation
    • Integrated during sulfonation, nitrosation, or further alkoxylation
    • Fed into reactor lines for condensation or coupling with chromophoric agents
    • Product isolated directly after color fractionation and purification

    Final product types

    • Light-fast textile dyes
    • Advanced molecular sensor pigments
    • High-performance colorants for specialty printing
    • Non-bleaching, pH-stable pigment dispersions
    Free Quote

    Competitive 1-Bromo-2,5-Dimethoxybenzene prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    1-Bromo-2,5-Dimethoxybenzene: Practical Uses and Manufacturer’s Viewpoint

    A Closer Look at 1-Bromo-2,5-Dimethoxybenzene

    On our production line, 1-Bromo-2,5-dimethoxybenzene stands out both for its demand and for its value across laboratories and industry. Chemists rely on this compound, with the molecular formula C8H9BrO2 and CAS number 4162-19-2, as an essential intermediate in organic synthesis. From our experience, it remains a first-choice halogenated aromatic in building more complex molecules, partly because its bromine position avoids unwanted side reactions that can slow down scale-up. The two methoxy groups, arranged symmetrically on the benzene ring, give it a particular set of electronic properties, which synthetic chemists value for regioselective transformations.

    Production Insights and What Sets Our Material Apart

    Our approach focuses on tight control from input materials to finished product. We source starting materials with consistency in mind, and run the reaction under anhydrous conditions for high yield and purity. The target output, 1-Bromo-2,5-dimethoxybenzene, typically leaves our plant with a minimum assay of 98% by GC, and our batches pass rigorous tests for color, appearance, and specific impurities. We’ve invested in purification and QA infrastructure so our partners see the same performance every time. Shelf life and handling remain concerns for many customers. Over the years, we fine-tuned our stabilization strategy. Proper inert gas blanketing and sealed packaging go a long way to avoid hydrolysis or oxidation, even during long overseas shipments. The product has low volatility, but we train our team to keep exposure low and minimize contamination.

    Why Synthetic Chemists Choose This Compound

    People working in the industry often ask why this bromo-arene draws so much attention. From decades of production and supply, we’ve learned that it’s not just because of the molecular structure, but because it behaves so reliably under a range of conditions. It serves as a coupling partner in Suzuki, Ullmann, and Buchwald-Hartwig reactions, and rarely throws any surprises with side reactions. Major pharmaceutical firms order this compound for its predictable performance in route development, especially when they can’t afford setbacks on kilo or ton scales.

    This chemical’s two methoxy groups offer synthetic convenience. They activate the ring in ways that promote directed reactions at the 1- or 4- positions. When a satisfied customer calls back for another multi-ton order, it’s usually because they’ve proven out its use in producing key heterocycles, intermediates, or building blocks for APIs. Academic labs also turn to this compound for natural product analog synthesis and SAR studies, and our R&D team sees the breadth of these demands.

    Chasing after alternatives for aryl bromides, chemists frequently confront trade-offs in selectivity or yield. With 1-bromo-2,5-dimethoxybenzene, they avoid unwanted ortho substitution, so downstream functionalization goes far more smoothly. This backbone has found its way into advanced materials too—OLED research teams utilize it as a precursor for tailored aromatic scaffolds. In every case, stable, predictable behavior is what brings repeat orders.

    Applications That Shape Our Production

    Every manufacturer faces requests that test the versatility of what’s produced. Our 1-bromo-2,5-dimethoxybenzene began as a pharmaceutical intermediate, but customers now include those in agrochemical, dye, and sensor research sectors. In custom synthesis jobs, this compound often appears at the earliest steps. Its ability to take part in cross-coupling saves time and steps, which really matters as processes scale up and costs mount.

    We’ve run joint projects with fine chemical partners who incorporated our material into target molecules used in seed coatings and next-generation pigment initiatives. Researchers probing organic electronics value the compound’s stability and roll-off-free performance in high-vacuum deposition environments. Our QA analysts have even collaborated with university faculty, troubleshooting scale-up issues for pilot plant trials.

    Handling requirements came up as we developed bulk containers for those ordering metric-tons. The powder flows freely, resists clumping, and stores safely under normal warehouse controls. We worked with carriers on packaging to minimize transit risk, and feedback from overseas users informed improvements in humidity resistance.

    Distinguishing 1-Bromo-2,5-Dimethoxybenzene from Related Products

    Suppliers sometimes group 1-bromo-2,5-dimethoxybenzene with similar aromatic bromides, but our production shop sees practical differences. For instance, 4-bromo-2,5-dimethoxybenzene (where the bromine lands at the para position) changes how Grignard or palladium-catalyzed reactions proceed. Each isomer leads to unique downstream chemistry. Our compound’s regioselectivity unlocks particular coupling reactions otherwise hampered by sterics or electronics.

    Some chemists consider using 1,4-dimethoxybenzene or simple bromobenzene as substitutes. Practical results fall short. Unprotected aromatic compounds lack the required stability, and produce more byproduct under harsh reaction conditions, showing why the methoxy pattern here matters. As a manufacturer, we’ve tracked shelf-life data and reactivity for these analogs, finding that our compound’s combination of functional group resiliency and coupling compatibility gives real savings in labor and raw materials.

    Competition from resellers or overseas traders gives end-users product batches with drifting purity, sometimes with isomer contaminations or color instability. We take on the burden of consistency because troubleshooting off-spec shipments downstream interrupts not just a single reaction, but a company’s entire project time line. We track incoming feedback and field test results for every lot, adjusting process parameters where needed.

    Process and Quality Control from a Manufacturer’s Perspective

    Actually running a bromination at production scale, keeping emissions and waste within regulatory controls, and hitting high assay every time—these aren’t abstract targets. Every batch means optimizing temperatures to keep crystal color uniform, preventing resin formation in side streams, and making sure GC peaks look just like the validated standard. Our chemists walk the plant, reviewing TLC and NMR spots, stepping in with fixes before anything leaves the drying rooms.

    Batch records tell the story of ongoing process improvement. Early on, we saw bottlenecks with vacuum filtration and solvent recovery, so we upgraded to jacketed filter-dryers and solvent distillation systems. We maintain traceability for all outgoing shipments, and keep samples archived for future analysis. Responsible handling shapes our operation from tanker unloading to final drum sealing, and we ensure compliance with chemical control and transportation laws without slipping into box-checking.

    We run impurity profiling on high-resolution instruments, since downstream users count on avoiding regulatory headaches with residue toxicology. Our records show how assay creep or color shift correlates with minute tweaks in temperature ramp or agitation. Clear communication with customers helps us plan runs to match their technical request—assay, solvent residue profile, or packaging.

    Safe Handling, Waste Management, and Sustainability

    Plant operation never focuses only on product purity. Staff undergo regular safety drills for spills and exposure, and we maintain robust ventilation even though this compound’s vapor pressure sits low. We train new hires not by routine, but by walking them through each distillation, filtration, and packing stage. Solvent recycling and bromine recovery reduce our waste stream footprint. Environmental audits keep us honest when it comes to local water and air regulations.

    Sustainability shapes the investments we make in plant upgrades. Recovered solvent from one run typically goes right into reuse on the next, slashing both consumption and handling hazards. Bromine management adds cost, but closed-loop handling keeps releases in check. Our team members see waste minimization as a challenge to improve, not just an obligation.

    We work with incineration partners for what cannot be reclaimed or reused. Byproducts with possible reuse value get tested for application in non-critical downstream steps. Real sustainability in chemical manufacturing means scrutinizing every byproduct stream for value extraction, not just discarding. Any excess remains tracked, logged, and handled per regulatory best practices.

    Supporting Innovation and Customer Success

    Interest in 1-Bromo-2,5-dimethoxybenzene continues to grow. We talk regularly with customers launching new synthetic projects, brainstorming custom packaging, or reviewing use in non-traditional chemistry. Some customers need ultra-high purity, whereas others prioritize cost for commodity-scale transformations. By understanding how each batch fits a real-world process, we evolve our recipes and production schedules.

    Feedback loops across R&D, production, and customer service inform every decision. We rarely see two requests alike. A research group in electronic materials may request enhanced trace metal testing, while a pharmaceutical producer asks for improved lot traceability or new certificate formats. Instead of sticking rigidly to a single specification, we listen for challenges and adapt our controls. Innovation isn’t just marketing talk here—it’s built into the daily routine and measured by few wasted batches and smooth customer running.

    End-users rely on transparency. Every drum or pail leaves our site with full batch analysis data. Our lab team can demonstrate reproducibility run after run, so customers know they won’t lose days to troubleshooting. This reliability builds the trust that keeps our long-term relationships stable, even when markets or regulatory landscapes shift.

    Real-World Challenges Facing the Supply Chain

    Chemical supply chains face plenty of headwinds these days. Logistical slowdowns, raw material market swings, and regulatory upgrades test every player. We watch raw bromine and anisole price trends daily, and maintain multiple sources to shield our customers from shocks. Customs and shipping rules grow stricter, so we keep close tabs on paperwork, labeling, and compliance.

    Every supplier swears by their lead times, but delivering on-time means planning for the unpredictable—a typhoon, a customs hold-up, or a sudden surge in customer orders. Our warehouse strategy includes stocking finished lots and prepping in real-time with demand spikes. Traceable lot numbers and real production batch links tie every shipment back to worksheets and QA records. Avoiding counterfeits and off-spec material means running diligence checks, not just on our own product but on the market for signs of gray-market re-shipping.

    We still see supply chain vulnerabilities in global shipping, especially for specialized chemicals. In the aftermath of container delays or rising ocean freight prices, we expand local warehousing and adjust packaging for extended transit. Detailed batch analysis supports overseas regulatory needs and reduces the headaches of customs clearance. Building resilience into this supply chain means ongoing investments in backup inventory and documentation management.

    Conclusion: Manufacturer’s Responsibility and the Value We Build

    Supplying 1-Bromo-2,5-dimethoxybenzene takes more than refining a reaction or controlling a crystallization. Real value grows out of reliability—meeting orders, anticipating demand, and solving problems for customers at every scale. Adapting production, supporting diverse applications, and achieving consistent quality form the backbone of what we do, every batch, every drum. Responsiveness to the market and our customers’ evolving needs keeps our operation relevant in a competitive and fast-moving industry.

    Through years in the business, our production team learned that every molecule counts, every process tweak makes a difference, and every satisfied customer comes from careful listening and tested trust. By focusing on quality and accountability at each stage, we deliver more than just chemicals—we back every shipment with the experience and commitment of people working on the line.