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5-Bromoveratraldehyde

    • Product Name 5-Bromoveratraldehyde
    • Alias 5-Bromo-3,4-dimethoxybenzaldehyde
    • Einecs 219-967-7
    • 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

    219545

    Productname 5-Bromoveratraldehyde
    Casnumber 2558-16-7
    Molecularformula C9H9BrO3
    Molecularweight 245.07
    Appearance White to off-white crystalline powder
    Meltingpoint 93-96°C
    Density 1.63 g/cm3
    Solubility Slightly soluble in water; soluble in organic solvents like ethanol and ether
    Purity Typically ≥98%
    Smiles COC1=CC(=C(C=C1Br)OC)C=O
    Synonyms 5-Bromo-3,4-dimethoxybenzaldehyde

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

    Packing & Storage
    Packing A 25g amber glass bottle sealed with a screw cap, labeled "5-Bromoveratraldehyde," features hazard warnings and chemical details.
    Shipping 5-Bromoveratraldehyde is shipped in tightly sealed containers, typically glass or HDPE bottles, to prevent contamination and moisture ingress. Packages are labeled according to regulatory requirements, including hazard and handling instructions. The chemical is transported under ambient conditions, with care taken to avoid physical damage, heat, and incompatible substances during transit.
    Storage 5-Bromoveratraldehyde should be stored in a tightly sealed container, away from light, heat, and moisture. Keep it in a cool, dry, and well-ventilated area, separate from incompatible substances such as strong oxidizers. Proper labeling and secondary containment are recommended to prevent leaks or spills. Always follow local safety regulations and consult the Safety Data Sheet (SDS) for specific storage guidelines.
    Application of 5-Bromoveratraldehyde

    Applications of 5-Bromoveratraldehyde in Industrial Manufacturing

    5-Bromoveratraldehyde supports several specialty sectors with distinct roles in active ingredient synthesis, advanced materials production, and flavor compound manufacturing. As an original manufacturer, we focus on the primary downstream industries utilizing this chemical, detailing actual integration procedures, recognized standards, and formulated product outputs for each application pathway.

    1. Pharmaceutical Intermediate Production for CNS Active Compounds

    Pharmaceutical companies employ 5-Bromoveratraldehyde as a key building block in the synthesis of CNS (central nervous system) active agents, including certain anti-Parkinson and antipsychotic drug molecules. The compound's aromatic aldehyde structure enables downstream Grignard or reductive amination routes for tailored drug intermediates. Precise control is necessary to meet drug substance impurity thresholds, with quality verified at each stage to satisfy regulatory filings and customer audits.

    Industry compliance standards

    • ICH Q7: Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP-NF (United States Pharmacopeia–National Formulary)
    • European Pharmacopoeia (Ph. Eur.) monographs (section 5.10 on related substances)
    • REACH registration for pharmaceutical applications

    Typical usage ratio

    • 0.6–1.4 molar equivalents relative to target intermediate, adjusted for impurity profile and desired yield

    Downstream process integration

    • Stage 1: Condensation with amine nucleophiles to form Schiff bases
    • Stage 2: Brominated aldehyde group enables selective C-C bond formation in medicinal core structure elaboration
    • Stage 3: In-process control includes GC-MS impurity assays before final product isolation

    Final product types

    • Benzylpiperazine derivatives for anti-Parkinson pharmaceuticals
    • Brominated indole intermediates for antipsychotic agents
    • Key side-chain building blocks for CNS medications

    2. Synthesis of Organic Photonic and Electronic Materials

    Manufacturers of advanced organic electronics integrate 5-Bromoveratraldehyde as a precursor for ligands and monomers used in organic light-emitting diodes (OLEDs) and conductive polymers. The brominated aromatic aldehyde moiety allows controlled cross-coupling, providing polydispersity control and facilitating high-performance molecule design. Each production batch undergoes stringent contaminant monitoring to meet purity standards crucial for device consistency and performance longevity.

    Industry compliance standards

    • ISO 9001:2015 Quality Management System for specialty chemical production
    • RoHS (Restriction of Hazardous Substances) for device component compliance
    • IEC 62321 for determination of certain substances in electronics
    • Compliance with proprietary QC protocols from downstream device manufacturers

    Typical usage ratio

    • 0.5–1.2 molar equivalents based on target monomer functionality and polymerization efficiency, tailored to polymer architecture

    Downstream process integration

    • Palladium-catalyzed Suzuki-Miyaura and Heck coupling reactions to introduce functionalized aromatic units
    • In situ monitoring for incomplete conversions and byproduct minimization
    • Final monomer or oligomer typically isolated under nitrogen and purified by column chromatography

    Final product types

    • OLED emissive layer components
    • Flexible circuit conductive polymers
    • Sensor material base resins

    3. Fine Fragrance and Aroma Chemical Synthesis

    The fragrance industry utilizes 5-Bromoveratraldehyde to provide aldehydic and spicy notes in the development of fine aroma compounds. Its aromatic profile and reactivity serve well in preparing key intermediates such as methoxybenzaldehyde-based fragrances. Controlled addition to reaction media and subsequent purification steps ensure olfactory purity and safety for consumer fragrance blends.

    Industry compliance standards

    • IFRA (International Fragrance Association) Standards for fragrance material safety
    • EU Regulation (EC) No 1223/2009 on cosmetic products
    • ISO 9235:2013 for natural and synthetic aromatic raw materials
    • GMP for Cosmetic Ingredients (ISO 22716)

    Typical usage ratio

    • 0.3–0.7% w/w in total batch mass, adjusted by fragrance intensity and formulation compatibility

    Downstream process integration

    • Condensation with specialized alcohols or amines to form complex aroma compounds
    • Fractional distillation and aroma panel testing for batch validation
    • Stabilization with antioxidant additives before blending into end fragrance bases

    Final product types

    • Luxury fine fragrances and parfums
    • High-grade flavor enhancers for food and beverage
    • Specialty aroma chemicals for candle and air care manufacturing

    4. Agrochemical Intermediate Manufacturing

    Agrochemical formulators apply 5-Bromoveratraldehyde as a reactive precursor in the manufacturing of selective herbicide and pesticide intermediates. The reactivity and substitution pattern enable precise molecular modification essential for next-generation crop protection compounds. All production steps include strict hazard management and byproduct tracking to fulfill industry and export requirements.

    Industry compliance standards

    • OECD Principles of Good Laboratory Practice (GLP) for agrochemical R&D
    • FAO/WHO specifications for pesticide active ingredients
    • ISO 17025 for quality control testing laboratories
    • China GB/T 16631 for pesticide raw material purity

    Typical usage ratio

    • 0.8–1.3 molar equivalents per coupling reaction, adjusted for targeted crop specificity and molecular design

    Downstream process integration

    • Initial nucleophilic aromatic substitution for halogenated aniline derivatives
    • Subsequent aldehyde oxidation to generate carboxyl-modified pesticides
    • QC checkpoints include HPLC analysis for residual brominated byproducts

    Final product types

    • Selective herbicide intermediates
    • Environmentally optimized pesticide bases
    • Growth regulator synthesis building blocks
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    Certification & Compliance
    More Introduction

    Introducing 5-Bromoveratraldehyde: Product Overview and Uses

    Working with 5-Bromoveratraldehyde in the Chemical Industry

    Every day, we handle a spectrum of fine chemicals to serve formulators, researchers, and application technologists. Among these, 5-Bromoveratraldehyde stands out for us as a reliable intermediate with a clear role in building complex molecules. This compound, recognized by its chemical structure as 3-Bromo-4,5-dimethoxybenzaldehyde, holds a central spot within our aromatic aldehyde category thanks to its combination of two methoxy groups and a bromine atom positioned on the benzene ring.

    Chemists rely on this unique structure to drive selective syntheses. The bromine atom enables targeted coupling reactions. The two methoxy groups influence both reactivity and solubility, allowing for functionalization that simpler benzaldehydes do not provide. Customers often choose 5-Bromoveratraldehyde where standard veratraldehyde or plain bromobenzaldehyde fail to meet process or yield requirements. The compound’s purity and controlled isomer content can affect downstream conversions and crystallizations, especially in pharmaceutical or specialty material manufacture.

    Specifications Shaped by Industry Requirements

    We manufacture 5-Bromoveratraldehyde to strict standards that support high-purity needs for demanding syntheses. Our typical batches offer minimum purities of 98%, confirmed by HPLC and GC. Moisture content, handled during the drying stages, meets conditions essential for moisture-sensitive reactions. We regularly see interest from research and scale-up labs for quantities ranging from grams to multi-metric-ton lots. Flake, crystalline, and powder forms are available to suit the requirements of various processing lines. Regardless of packaging size, our teams ensure that every container protects the material from light, atmospheric moisture, and contamination.

    Real-World Applications: A Flexible Intermediate

    We’ve supported project teams that select 5-Bromoveratraldehyde for several reasons. As a building block, it’s highly valued in the synthesis of pharmaceuticals, agrochemicals, and advanced organic materials. By introducing a bromine atom on the veratraldehyde scaffold, chemists can take advantage of both the electron-withdrawing behavior of bromine and the electron-donating effects of the methoxy groups. This dual modification opens the door for Suzuki, Stille, and Sonogashira couplings, as well as for developing intermediates in novel medicinal compounds. Our customers’ inquiries often come from teams working on anti-cancer agents, anti-infective candidates, and custom fluorescent dyes.

    Some users previously tried other halogenated benzaldehydes or standard veratraldehyde, only to find that the reactivity profile did not fit their final synthetic routes. Our production groups have witnessed how key transformations, such as palladium-catalyzed coupling or nucleophilic aromatic substitution, depend on both halogen positioning and ring substitution. For some, the stepwise installation of bromine created issues of regio-selectivity or byproduct removal. By delivering 5-Bromoveratraldehyde as a finished intermediate, we help researchers get right to the crucial conversion steps with fewer purification headaches.

    Why Structure and Purity Matter for End Users

    Through years of cooperation with pharmaceutical innovators and custom compound developers, we’ve come to recognize the stakes involved in intermediate selection. In some scale-up scenarios, trace impurities or small amounts of alternate isomers can seriously impact final product yield or even generate unwanted regulatory concerns for finished goods. Our approach uses dedicated glass-lined reactors, monitored atmospheres, and verified solvent systems so that each lot remains within target specifications. We test not just for basic purity, but also for low levels of side-reactants and trace metal residues. Reproducibility in molecular weight and melting point are critical, especially when downstream synthesis must be validated or transferred between R&D and pilot plant environments.

    Our chemical analysts monitor each stage, from raw starting materials such as 3,4-dimethoxybenzaldehyde and N-bromosuccinimide, through isolation and crystallization. Impurities—sometimes at levels below one percent—can act as reaction poisons or cause batch-to-batch inconsistencies for our customers. Years of troubleshooting have taught us the cost of overlooking minor byproducts, so we spend time on both process control and targeted purification. The in-house expertise from our process chemists and QC teams means we flag and correct even subtle deviations.

    Handling and Processing: Supporting Downstream Operations

    We’ve listened to feedback from customers in both analytical and preparatory laboratories. Many teams appreciate a uniform, free-flowing material that allows close measurement and convenient handling. Our team developed proprietary drying protocols to minimize caking and clumping, supporting precise weighing and dust minimization. Customers focused on micro-scale syntheses often request smaller vial packaging to avoid air exposure, while process-scale plants favor fiber drums with lined inner bags for bulk requirements.

    As a chemical with an aromatic aldehyde core, 5-Bromoveratraldehyde interacts with strong bases and certain nucleophiles. Process engineers often consult us about compatible solvents or safe reaction temperatures. We provide recommendations based on years of experience decompressing reactors or scaling oxidation and bromination reactions. Storage conditions can affect shelf life and usability, and uncontrolled environments may accelerate degradation or hydrate formation. We’ve designed warehouse protocols that consider lighting, humidity control, and regulated racking to maintain both safety and quality from production floor to shipping dock.

    Comparison: 5-Bromoveratraldehyde Versus Other Benzaldehydes

    Customers sometimes ask why 5-Bromoveratraldehyde is preferred for certain syntheses over widely available options like plain benzaldehyde, vanillin, or unsubstituted veratraldehyde. The answer comes down to both electronic effects and reactivity patterns. The bromine atom, when placed at the 5-position, introduces reactivity that cannot be duplicated by chlorine or fluorine substitutions. Method development teams run kinetic experiments that confirm distinct reaction rates and selectivity patterns, especially in cross-coupling and halogen-metal exchange reactions.

    The two methoxy groups increase solubility in polar organic solvents and facilitate workups that are sometimes problematic with less polar analogues. Their placement at the 3 and 4 positions tunes the electron density of the aromatic ring, which can accelerate or decelerate nucleophilic additions compared to structurally simpler aldehydes. These fine-tuned molecular features determine the behavior in Grignard reactions and form the basis for better selectivity in multi-step syntheses.

    We recall a case study from an agrochemical start-up whose project required a specific ortho/para selectivity during functional group migration. Switching from 4-bromobenzaldehyde to 5-Bromoveratraldehyde improved both conversion and final product purity. The additional methoxy groups apparently guided the addition and migration steps, saving the team multiple chromatographic purifications. Across years of supporting research grants and commercial-scale campaigns, we’ve seen this intermediate offer a more workable route where other compounds led to dead ends, low yields, or unmanageable impurity profiles.

    Practical Experience: Supply, Consistency, and Regulatory Considerations

    Our position as a manufacturer—not just a supplier—lets us manage feedstock sourcing and process tracking down to the lot level. Each customer order links back to controlled production batches, and scale-up is based on validated reactor protocols. Consistency matters. Customers running months-long projects or clinical batch syntheses need each delivery to match the last in both physical appearance and chemical behavior. Small deviations—sometimes not detected by routine titration—cause problems with reproducibility. Our production teams adjust bromination rates, crystallization parameters, and solvent refluxing to minimize drift. The result is a product that performs as expected whether it’s being tested at milligram scale or pushed through a multi-step run in a jacketed kilo-lab reactor.

    We regularly provide documentation for regulatory submission and audit requirements. Some of our customers develop APIs, so our technical package covers impurity profiles, residual solvents, and elemental analysis. Batch history and traceability match the needs of regulated markets. Our teams stay in touch with changes in pharmacopeia and chemical safety standards, ensuring customers get support for process validation or questions from regulatory agencies. Since 5-Bromoveratraldehyde enters pharmaceutical pipelines, we maintain detailed records to help end users respond to audits or demonstrate compliance.

    Environmental Management and Worker Safety

    Producing halogenated aldehydes such as 5-Bromoveratraldehyde involves more than just conversion yield and synthetic strategy. Our factory engineers and safety teams design procedures for responsible waste handling and emission control. Reactions involving bromination generate both halogenated byproducts and spent solvent streams that must be treated before disposal. In our experience, small changes in oxidation states or incomplete neutralization of residual brominating agents can lead to workplace hazards or surprise regulatory findings. For this reason, our standard procedures include multiple washing and controlled drainage steps, as well as regular inspection of effluent streams by on-site analytical teams.

    In our packing areas, exposure controls and staff training directly lower the risk profile. Dust and vapors may pose inhalation hazards, so we select packaging materials with vapor barriers and employ local exhaust ventilation at all weigh-out and transfer points. Proper PPE, combined with behavior-based safety observation, keeps incident rates low. We’ve also invested in near-miss reporting and active monitoring, reinforcing a safety culture that treats every engineered control and policy as essential—not discretionary.

    Supporting Innovation in Synthesis and Formulation

    The most rewarding part of manufacturing 5-Bromoveratraldehyde arrives with our customer feedback loop. Synthetic chemists and process development teams often share results or seek advice on process modifications. We know how minor differences in crystallinity, particle size, or residual impurities can disrupt downstream assays or scale-up campaigns. Our technical teams respond to queries about batch handling, solubility in candidate solvents, or troubleshooting odd reactivity. In some instances, our team has collaborated directly on process upgrades, like improving reaction throughput or minimizing unwanted side-reactions in Grignard and coupling protocols. Through close contact, we help customers shorten development timelines, decrease waste, and streamline compliance for both existing and new product launches.

    We also supply samples and technical data to academic researchers, contributing to studies exploring novel transformations and analogs based on the veratraldehyde scaffold. By maintaining a real-world view of how 5-Bromoveratraldehyde behaves outside the idealized confines of textbooks or reaction databases, we anticipate use cases and necessary adjustments before customers run into costly bottlenecks.

    Ongoing Developments: Market Demand and Technical Adaptation

    In recent years, we have noticed a steady rise in demand from both established pharmaceutical producers and newer biotech start-ups. The current regulatory focus on impurity control and traceability raises the bar for manufacturing intermediates that meet both technical and documentation requirements. Providing 5-Bromoveratraldehyde with reliable supply lines and full batch traceability positions us as more than just a vendor; our partners depend on risk mitigation, flexible scale, and responsive technical assistance.

    Shifts in raw material availability or supply chain disruptions call for adaptive manufacturing strategies. We continuously evaluate sourcing options for reagents and pursue alternative bromination pathways to maintain both cost control and continuity. With improved process automation and continuous flow techniques entering our portfolio, we are poised to handle long-term projects requiring both speed and strict quality outcomes. Transparent communication between our manufacturing plants and downstream users prevents surprises and helps both sides plan for future research, development, and production needs.

    Distinct Advantages: 5-Bromoveratraldehyde in Context

    Over years of working directly with downstream chemists, we’ve become familiar with the real-world benefits our 5-Bromoveratraldehyde can offer. Straightforward bench chemistry can be misleading—what looks interchangeable by structure can behave radically differently under actual scale. Trace moisture, instability under light, and background impurities each shift the performance curve.

    Applications requiring high selectivity in coupling reactions value the electron-rich aromatic core modulated by the bromine atom. In some synthesis routes, attempts to use 4-bromoveratraldehyde or 5-chloroveratraldehyde led to lower yields or complicated isolation steps. Feedback from pharmaceutical and agrochemical developers indicates that the unique substitution pattern of our product facilitates more consistent downstream chemistry, especially when isolating sensitive intermediates or working within tight regulatory boundaries. Our house protocols maintain both purity and batch consistency, supporting chemists who must meet exacting internal milestones or approval deadlines.

    Material handling plays a key role too. Teams scale their processes from milligrams to multiple kilograms, and each process step relies on predictable physical properties. Changes in particle size can cause mixing troubles or delayed dissolutions, especially during cold-charged additions or under exothermic conditions. We routinely evaluate new drying, milling, and sieving technologies to better serve repeat customers, offering tailored solutions that acknowledge the realities of their batch protocols.

    Trusted Partner, Not Just a Manufacturer

    Our experience with 5-Bromoveratraldehyde spans the entire product lifecycle. The knowledge gained through supporting R&D runs, troubleshooting plant campaigns, and responding to regulatory shifts gives us perspective on more than just chemical structure. Process reliability, supply continuity, and technical flexibility all contribute to customer outcomes.

    Looking ahead, our engagement with researchers and industrial process teams shapes our outlook on both product and service development. Whether addressing unique project demands or refining manufacturing techniques, we remain committed to meeting the evolving needs of those who transform 5-Bromoveratraldehyde into innovation and discovery across chemical sectors.