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6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde

    • Product Name 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde
    • Alias 6-Bromo-3-methoxy-salicylaldehyde
    • Einecs 623-426-8
    • 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

    640359

    Productname 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde
    Casnumber 6627-75-4
    Molecularformula C8H7BrO3
    Molecularweight 231.05 g/mol
    Appearance Off-white to light yellow solid
    Meltingpoint 138-142°C
    Purity ≥98%
    Solubility Soluble in DMSO, slightly soluble in water
    Smiles COC1=C(C=C(C=C1Br)O)C=O
    Inchikey HDEKRWLCQVRRMN-UHFFFAOYSA-N
    Synonyms 2-Hydroxy-3-methoxy-6-bromobenzaldehyde
    Storageconditions Store at room temperature, protected from light and moisture

    As an accredited 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde 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 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde. Sealed, labeled with hazard symbols and chemical details.
    Shipping **Shipping Description:** 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde is shipped in tightly sealed, chemical-resistant containers, protected from moisture and light. The package is labeled with the appropriate hazard information and handled according to regulations for laboratory chemicals. Shipping is conducted by certified couriers with temperature control if required, ensuring safe delivery.
    Storage Store 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight and incompatible substances such as strong oxidizing agents. Protect from moisture and extreme temperatures. Use appropriate personal protective equipment when handling, and keep away from sources of ignition. Clearly label the storage container and follow all safety protocols and regulatory requirements.
    Application of 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde

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

    As a direct manufacturer, we supply 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde for specialized industrial applications. The following sections detail genuine downstream markets, with practical information on industry compliance, application ratios, process integration, and the range of end products each sector manufactures from this chemical intermediate.

    1. Pharmaceutical Intermediate for Active Pharmaceutical Ingredients (APIs)

    Leading pharmaceutical producers employ this compound as a critical building block in the synthesis of specific antimicrobial and anti-inflammatory APIs. It enters early-stage heterocyclic formation steps for active molecules where the methoxy and bromo substituents directly influence pharmacological properties. Formulations require tight control of impurity profiles and rigorous QC to comply with regulatory authorities. Final APIs contain no detectable residual materials and undergo full traceability testing from our raw ingredient to finished drug form.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • Ph. Eur., USP, JP monographs (as per API destination market)
    • FDA 21 CFR Part 210/211 process controls
    • WHO TRS 986 Annex 2 requirements for pharmaceutical starting materials

    Typical usage ratio

    • 0.8–1.4 molar equivalents per batch, depending on target molecule substitution pattern and batch scale.

    Downstream process integration

    • Incorporated at initial condensation or bromination steps, followed by purification and downstream coupling to main API structure.
    • Serves as a key synthon in multi-step synthesis involving protection/deprotection and cyclization reactions.

    Final product types

    • Anti-infective drug intermediates
    • Non-steroidal anti-inflammatory bulk actives
    • Specialty heterocyclic APIs used in prescription formulations
    • Regulatory starting materials for out-licensed synthesis projects

    2. Synthesis of Agrochemical Actives

    Agrochemical manufacturers use this intermediate in the route to phenolic fungicides and herbicides. Its structure enables downstream reactions for creating compounds with targeted activity against plant pathogens. Material control ensures absence of banned impurities per national regulation, and composition matches registration data for agrochemical actives. Quality documentation and lot traceability are provided with every shipment for formulation use.

    Industry compliance standards

    • FAO/WHO specifications for pesticide technical materials
    • EU REACH chemical registration standards
    • GB 3796-2019 (China agricultural chemical raw materials)
    • ISO 9001:2015 for production quality management

    Typical usage ratio

    • 4–12% by weight of total agrochemical formulation, adjusted for final target molecule molecular weight calculation.

    Downstream process integration

    • Charged during early-stage Grignard reactions and phenolic couplings.
    • Acts as a halogenated aromatic synthon for introducing bromo- and methoxy-substituted functionalities in target structures.

    Final product types

    • Fungicide technical concentrates (e.g. brominated phenol derivatives)
    • Systemic herbicide intermediates with hydroxy-methoxy scaffolds
    • Custom crop protection molecules
    • Agrochemical active ingredient standards for formulation registration

    3. Fine Chemical Intermediate for Dyes and Pigments

    Leading dye and pigment producers utilize this raw material for synthesizing high-performance organic colorants. Its bromo and methoxy groups support downstream protection-deprotection chemistry and Lake pigment production. It is added at targeted steps where purity directly affects pigment brightness and stability. QA samples follow each supply lot to support compliance with textile industry and environmental standards.

    Industry compliance standards

    • OEKO-TEX® Standard 100 for restricted substances in colorants
    • ZDHC MRSL for dye raw material input
    • ETAD Code of Ethics (European dye manufacturers)
    • ISO 9001-certified process documentation

    Typical usage ratio

    • 5–15% by weight depending on chromophore build and batch scale; ratio optimized for desired color intensity and stability.

    Downstream process integration

    • Included as a core aromatic component during azo coupling, bromination, or pigment complexation reactions.
    • Cuts risk of side-product generation in key condensation steps for high-grade pigment production.

    Final product types

    • Reactive textile dyes with brominated phenolic groups
    • High-lightfastness organic pigments
    • Inkjet printing dye intermediates
    • Colorant masterbatches for plastics and fiber spinning

    4. Specialty Chemical for Fragrance and Flavor Intermediates

    Aromachemical producers require select benzaldehyde derivatives as intermediates in fragrance and specialty flavor synthesis. This raw material provides a functionalized aromatic core for delivering aldehyde notes or for further etherification and condensation in custom molecules. All production must adhere to food and fragrance grade standards, with complete chain of custody and batch analysis supplied to the blending facility and final customers.

    Industry compliance standards

    • IFRA (International Fragrance Association) Standards
    • FCC (Food Chemicals Codex) purity guidelines for aroma/raw materials
    • ISO 22000:2018 Food Safety Management for intermediates used in flavors
    • EU Regulation (EC) No 1334/2008 for flavoring substances

    Typical usage ratio

    • 1–6% by weight relative to reaction mass in synthetic aroma compound manufacturing; ratio customized per target aldehyde character or downstream etherification need.

    Downstream process integration

    • Incorporated as a starting material in modified Claisen-Schmidt condensation or as a precursor in benzyl ether formations.
    • Applied in the synthesis of floral and spicy aromatic compounds in fragrance blends.

    Final product types

    • Fragrance aldehyde intermediates
    • Produced specialty flavor enhancers for food and beverages
    • Aromatic building blocks for perfume and essence manufacturers
    • Complex natural-identical aroma compounds
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    Certification & Compliance
    More Introduction

    6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde: Experience from Our Production Floor

    Bringing 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde to market takes attention to every stage, from raw material sourcing to handling each reaction in the synthesis flow. In our plant, teams run shifts dedicated to small-batch synthesis because this compound tends to show its character best at controlled scales. The final product draws a sharp interest from pharmaceutical labs exploring new analogs and from specialty chemical producers who need a stable, robust aromatic base. Across the floor, we hear requests not only for the bench sample but also for kilogram lots. This tells us there’s true trust in our ability to deliver a precise compound batch after batch.

    Real-World Choices Define Quality

    Choosing the right model code or batch lineage for 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde can make a difference for scale-up projects. During one production cycle last quarter, we noticed how a slight fluctuation in bromine feedstock affected final purity. That experience led us to set a tighter incoming QC norm than we had in previous years. Customers ask about this margin; our pilot data shows that holding bromine assay above 99.5% gave more predictable conversion in the target aldehyde functionality. The impact for users means less time spent on purification at their site and more focus on downstream chemistry.

    Physical characteristics seem almost unremarkable at a glance—a pale crystalline powder, usually with a melting range that signals batch integrity. Yet, spend a few hours tracking its moisture uptake at varied room temperatures and it becomes clear why we’ve built in extra time for drying before packing. Even the last few hundred ppm of solvent residue can alter its behavior in the next step of a pharmaceutical application. Our team logs these drying cycles in plant notebooks, sharing successes and occasional curveballs, so improvement happens in practical increments.

    Molecular Nuances and Specification Control

    Producing benzaldehydes requires conviction about monitoring specification drift. Over the last decade, we developed HPLC fingerprints to track isomeric side-products—data that industry journals rarely cover in detail but that impact process yield for everyone downstream. At times, we handled incoming customer complaints about trace colored impurities. Those lessons pressed us to refine our post-reaction workup. NMR and IR characterization supplement our assays, giving our buyers transparent records and, most importantly, information they can use to build trust in long-term sourcing plans.

    Different end uses draw on the unique mix of the bromine, hydroxy, and methoxy groups in this molecule. Researchers comment that the electron distribution in this scaffold lets them make headway with Suzuki couplings or oxime formation. We’ve followed our customers’ literature to stay ahead of their synthetic strategies, updating our in-plant training to avoid introducing interfering ions during workup. This little detail, invisible to the naked eye, makes all the difference to a chemist racing to develop a new candidate for a patent portfolio.

    Managing Challenges in a Shifting Industry

    Our experience shows that this compound separates itself from other brominated benzaldehydes by virtue of its substitution pattern. In buying runs for 5-bromo or 4-methoxy alternatives, we’ve seen quotation patterns and demand clusters that follow academic publication cycles. 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde may not draw the same crowd as ubiquitous salicylaldehyde derivatives, but users often call back specifically because our product offers better selectivity in certain protection and deprotection sequences. Our technical team remembers a month where several customers reported difficulty with alternative sources clogging equipment lines. After running comparative thermal gravimetric evaluations, we documented fewer high-boiling contaminant fractions in our output, an advantage for users with sensitive reaction setups.

    Not all inquiries match the same performance priorities. A specialty pigment manufacturer sought out our product after struggling with incomplete substitution using standard bromobenzaldehyde. Working together, we realized their process needed a higher solubility profile. Adjusting our recrystallization solvent blend gave them the boost required to streamline their workflow—a solution grounded in trust built over repetitive, open discussion rather than on paper specification alone.

    Supporting Science and Scale

    Every lot has its story, from handling bromination reactions during winter humidity swings to troubleshooting minor glassware fractures mid-run. Our plant operators log every batch in detail. These records reveal trends before they reach customers, such as an unusual uptick in retained palladium during catalysis. Resolving these quirks protects the integrity of 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde, since downstream synthesis relies on reproducible results.

    Customers seek technical dialogue, not just a COA. A research group once asked for an unusual specification, documenting trace chlorides under 0.005%. Our technical lab stayed late, running chloride-ion selective analysis and mapping each source from glassware to water feed. Empirical vigilance won out, letting us ship on time and strengthen a relationship with a team chasing new antimicrobial agents. These small acts solidify partnerships built on capability, not just compliance.

    Quality Drives Reputation, Not Just Output

    Each gram of our finished product has journeyed through a multi-stage workflow, starting with hand-inspected raw bromine—no blanket trust in supplier invoices alone. We verify each container. In past audits, a single tank flagged above-threshold peroxide content, and that taught our purchase managers to reject ambiguous stocks regardless of order urgency. This vigilance translates directly into product behavior during customers’ synthesis, making sure researchers can run their reactions with confidence.

    We observed over years that small changes in reactant age, order of addition, and even the microenvironment of reaction vessels influence outcome. Our head of production recounts discovering variance in product color and melting point traced back to a subtle seasonal drift in warehouse RH. Fixing this required cross-department troubleshooting and an investment in additional air handling, paying dividends with happier project managers downstream.

    Colleague Skill Makes Material Matter

    Much of our process improvement comes from the shop floor. The crew working night shifts devised a labeling tweak that flagged aging solvents. One shift lead experimented on their own time with modified workup using a higher-purity brine solution and saw improved settling characteristics in the final organic extraction. Such field-sense details flow upward—tested thoroughly with analytical controls before updating SOPs—creating subtle improvements that rarely show up on spec sheets but definitely shape reliability.

    Technicians need a clear understanding of every hazard, yet also appreciation for handling materials gently. Our internal training stresses not only proper PPE but also methodical approaches to avoid introducing micro-contaminants that throw downstream reaction kinetics off balance. The mindset is to treat every batch as if it’s headed to our own R&D lab—a culture long reinforced by visits from our customers’ scientists.

    Safety Runs in Parallel with Innovation

    Working firsthand with aromatic aldehydes means our plant has seen enough instances where vigilance catches a runaway reaction before it escalates. Having a culture of open communication stands as our core safeguard. Operators understand that a quick word to a supervisor or a minor line shutdown carries more value than finishing a shift on time if something feels amiss. Investigations into adverse events elsewhere in the industry have shaped our near-miss reporting and training drills. Improvements born from hard-won experience—the additional eyewash station, tweaking airflow patterns, checking real-time temperature reads on batch runs—have kept safety performance strong alongside high yields.

    Some regulatory changes left their mark. Compliance reviews led us to update our tracking documentation, adding new checks to our environmental emission logs and solvent recovery steps. Even after years of smooth production, those audits forced us to dig into historic run data and uncover incremental ways to reduce waste. We exchanged our old distillation columns for newer, tighter-tolerance equipment, and reduced off-gassing that otherwise complicates permitting.

    Distinctions That Shape Our 6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde

    Direct comparisons with similar products from secondary markets have highlighted two core differences—lot reproducibility and documentation granularity. We track feedback not only from customer technical complaints but also from long-haul stability trials set up alongside external laboratories. Samples held at differing temperature and light cycles get checked periodically. Decoding these datasets revealed a tendency for some competitor products to show off-odors or color shift after six months. Performing these tests led to small but meaningful tweaks in our packaging protocol and material handling.

    Our direct communication channel remains crucial for users seeking technical clarity. We learned early on that customers who attempt scale-up based on rough data from third-party aggregators run into snags. In complex multi-step syntheses—such as those requiring high-precision condensation or substitution—the minor variances in product formation route can throw outcomes far from predicted yields. Customers called us mid-run, facing stalled reactivity or cumbersome separations, only to discover that the difference stemmed from an extra purification step missing on alternative suppliers’ procedures. Our solution was to proactively document, and share, detailed process notes and batch-specific analytics. This removed ambiguity, promoting faster problem-solving and better outcomes for our buyers.

    True Partnership Starts on the Factory Floor

    Our team’s experience shapes not just the molecules we send out, but also the support we’re ready to provide after delivery. Open technical dialogue remains at the heart of strong working relationships. Over years, customers have approached us with process-specific questions, like ways to tune dissolution rates for unusual solvents, or advice on minimizing exposure to light-sensitive intermediates. In response, our plant has run parallel trials in the pilot lab—sometimes outside normal operating hours—to check, adjust, and feed insights back to customers. That standing level of support comes naturally to a producer who has walked the same rows among reactors, troubleshooting the same bottlenecks that challenge chemists worldwide.

    Our team also pays attention to the sustainability journey. Every solvent recycle, every by-product stream that finds a secondary market, draws on the accumulated instincts of operators, floor managers, and chemists. In recent years, tightening government guidance and the rising expectations of our customers have matched our own ambitions to draw more value out of every kilo produced. This doesn’t appear directly in a batch specification, but it paves the way for lower environmental impact, a stronger reputation, and better alignment with responsible procurement teams.

    Building on Transparency and Openness

    Over the course of hundreds of batches, documentation proves to be one of our best tools. Internal logs run tens of pages for each batch. Plant techs record details down to the minute, specifying any minor deviation—be it a short runtime hiccup or a slight variation in cooling jacket performance. Analysis reports reach our quality group in real time, and archived process notes help us troubleshoot rare anomalies.

    Customers increasingly ask for underlying analytics, not just the front-page data. Our team shares spectral scans, method development insight, impurity mapping, and even environmental log details on request. These exchanges build trust and, by some measures, lay a path for collaborative process improvement rather than a static supplier/customer dynamic.

    The Road Ahead

    In years past, batch segregation and traceability were practiced for convenience alone. Recent experience shows that refined traceability marks the difference between smooth audits and costly recalls. Alongside regulatory changes, our team sharpened internal reviews, adding unique batch markers and running post-lot investigations on every run. If a discrepancy appears, we pull records, gather frontline feedback, and review every aspect before the next production cycle initiates.

    As scientific frontiers shift—especially in pharmaceuticals and advanced materials—new requirements crop up quickly. Customers now ask about residual solvents that once weren’t monitored, or request analytical profiles aligned with global pharmacopoeias. Our production and quality teams adapt, frequently reviewing feedback and mapping out process enhancements that strengthen long-term performance. Improvements cycle through in incremental steps, blending experience with documented results.

    6-Bromo-2-Hydroxy-3-Methoxybenzaldehyde stands as both a familiar challenge and a point of pride for our plant. Moments spent refining its process, learning from the unexpected, and exchanging knowledge with partners worldwide prove again and again that chemistry is an ongoing craft—one shaped not just in classrooms, but in every kilo leaving our doors.