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HS Code |
681128 |
| Product Name | 3,5-Dibromosalicylaldehyde |
| Cas Number | 40112-59-4 |
| Molecular Formula | C7H4Br2O2 |
| Molecular Weight | 295.92 |
| Appearance | Yellow to orange crystalline powder |
| Melting Point | 144-147°C |
| Boiling Point | Unavailable |
| Purity | Typically ≥97% |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Smiles | C1=C(C=C(C=C1Br)Br)C=O |
| Inchi | InChI=1S/C7H4Br2O2/c8-5-1-4(3-10)7(9)6(11)2-5/h1-3,11H |
| Storage Conditions | Store at room temperature, keep container tightly closed |
| Refractive Index | Unavailable |
As an accredited 3,5-Dibromosalicylaldehyde factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle containing 25g of 3,5-Dibromosalicylaldehyde, tightly sealed, with hazard labeling and product information clearly displayed. |
| Shipping | 3,5-Dibromosalicylaldehyde is shipped in tightly sealed containers, protected from light, moisture, and incompatible substances. Packages are clearly labeled, following all regulatory guidelines for hazardous chemicals. Transport is conducted by certified carriers specializing in laboratory chemicals to ensure safety and compliance with local and international shipping regulations. |
| Storage | 3,5-Dibromosalicylaldehyde should be stored in a tightly sealed container, protected from light and moisture, and kept in a cool, dry, and well-ventilated area. Avoid exposure to incompatible materials such as oxidizing agents. Clearly label the storage container and keep it away from sources of ignition. Follow all chemical storage regulations and safety data sheet (SDS) recommendations. |
Applications of 3,5-Dibromosalicylaldehyde in Industrial Manufacturing3,5-Dibromosalicylaldehyde serves as a key intermediate in several specialized chemical production processes, directly supporting the synthesis and modification of advanced materials and active compounds. As a manufacturer, we supply this material for established applications within fine chemicals, dyes, pharmaceuticals, and agrochemicals, ensuring strict adherence to domain standards and traceable use in each industrial scenario. 1. Pharmaceutical Intermediate for Active Pharmaceutical Ingredients (APIs)Pharmaceutical formulators widely use 3,5-Dibromosalicylaldehyde as a structural building block during the multi-step synthesis of select active pharmaceutical ingredients, particularly where brominated salicylaldehyde derivatives enable further condensation or cyclization to yield biologically active heterocycles. Formulation chemists adjust input levels according to batch scale and stoichiometric demands, integrating the material immediately following starting bromination or aldehyde introduction stages to ensure high purity and alignment with validated synthetic routes. Industry compliance standards
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2. Precursor for Azo and Metal Complex Dye ManufacturingColorant producers incorporate 3,5-Dibromosalicylaldehyde into the diazotization and coupling processes required to create advanced azo dyes and metal complex colorants. Its electron-withdrawing bromo substituents enable favorable reaction kinetics and improve color depth and fastness. Dyehouse chemists carefully control input ratios based on target shade and quality specifications, blending the aldehyde in the coupling step after initial diazotization, ensuring reproducible color yield for textile and ink applications. Industry compliance standards
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3. Intermediate for Agrochemical SynthesisAgrochemical manufacturers use 3,5-Dibromosalicylaldehyde as a core intermediate when developing crop protection agents that require selective brominated aromatic motifs for targeted biological action. The compound's aromatic features and aldehyde functionality allow direct entry into condensation or nucleophilic addition reactions. Plant-scale formulators determine input levels based on pilot optimization and regulatory batch validation, charging the material in earlier phases to ensure downstream impurity profiles meet market registration requirements. Industry compliance standards
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4. Ligand Component in Coordination Compound ProductionCoordination chemists depend on 3,5-Dibromosalicylaldehyde to construct Schiff base ligands and metal-organic frameworks, leveraging the molecule’s precise functional group orientation to achieve desired electronic and structural properties. Plant operators define the additive level according to stoichiometric requirements for complexation, entering it during ligand synthesis and subsequent metal incorporation stages, with strict process monitoring to ensure batch reproducibility and compliance with advanced research and specialty materials criteria. Industry compliance standards
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Producing 3,5-Dibromosalicylaldehyde takes more than chemical know-how—it requires steady attention to operational detail and a sharp eye for consistency. At our plant, chemists and production technicians handle each batch with the aim of turning out a fine, pale yellow crystalline solid that matches industry benchmarks for both purity and utility. Many of our staff have worked hands-on with this product for years, and we have developed methods that give strong, repeatable results. If you walk through our facility, you see the rows of vessels, the controlled temperatures, and the careful measurements that signal quality at every stage.
Our most produced grade carries a purity specification above 98%, and still, we’re always pushing for better profiles. A melting point set between 134°C and 137°C helps us confirm the absence of common side-products. Chemists who use our 3,5-Dibromosalicylaldehyde can depend on a moisture content below 0.5%. Impurities such as unreacted starting materials show up quickly thanks to our chromatography and spectral analysis methods. From years of customer feedback, we know small changes in purity can mean the difference between a reliable synthesis and a failed batch downstream. We use glass-lining throughout, limit organic solvent exposure as much as process efficiency allows, and track batches from raw materials through to finished packing.
Lab professionals and production chemists come to 3,5-Dibromosalicylaldehyde for its steady-handed reactivity. It serves as a strong intermediate for synthesizing pharmaceuticals, especially in research stages where building blocks need unyielding consistency. Medicinal chemistry teams, exploring new active pharmaceutical ingredients, trust this compound when forming complex benzaldehyde frameworks or attaching bromine atoms exactly where design calls for them. Dyes and pigment manufacturers choose this molecule for specialty pigments that demand exacting chromophores. Researchers in agrochemical development pull it into novel fungicides, where selectivity can open or close off a lead candidate.
As a manufacturer, we have daily insight into just how much process efficiency matters to our partners. No two production cycles look exactly the same. In pharmaceutical synthesis, a tiny batch for discovery scale or a multi-ton demand for process validation both rely on us not just to fill an order but to support the scaling decisions of the technical team. Our QA staff track every batch’s reactivity profiles. They make sure that, in the lab or at the plant, you’re not left holding an inconsistent feedstock that introduces variables downstream.
Nothing highlights the strengths of 3,5-Dibromosalicylaldehyde better than comparing it to similar materials like unsubstituted salicylaldehyde, or its dibromo isomers bearing bromine at different ring positions. 3,5-Dibromosalicylaldehyde brings bromine atoms both to the meta positions, leaving the aldehyde in the ortho spot. This arrangement shapes the molecule’s electronic profile and reactivity. Our team often discusses how this particular pattern enables targeted transformations in multi-step organic reactions.
Looking at 5-bromosalicylaldehyde or 3-bromosalicylaldehyde, you get fewer functional handles—a single bromine substituent changes coupling and halogen exchange reactions significantly. The doubly brominated structure of 3,5-Dibromosalicylaldehyde creates two sites amenable to functionalization under copper- or palladium-catalyzed couplings. Many of our academic and industry customers mention the value of being able to dial in specific substitution patterns, thanks to the symmetrical bromine placement.
Unsubstituted salicylaldehyde, by contrast, lacks both the steric hindrance and electron-withdrawing character needed in newer synthetic methods. Its suitability in cross-coupling reactions or in sequences requiring selective halogenation drops markedly. We’ve seen customers come back to our 3,5-dibromo product because their original route, developed with simpler salicylaldehydes, capped out in terms of conversion or selectivity once scale moved up from grams to kilograms. The stronger electron-withdrawing effect of the dibromo substitution on the aromatic ring alters both the nucleophilicity of the aldehyde and the stability of sensitive intermediates.
Producing high-purity 3,5-Dibromosalicylaldehyde at scale challenges any manufacturing team. We have tackled issues like incomplete bromination, controlling byproduct profiles, and preventing oxidative degradation. Every operator learns to watch out for trace residual solvents and unwanted mono-brominated side products. We continually upgrade our extraction and purification systems to hit our operational target—no trace impurities over 0.1%. The choice of brominating agents, careful control of reaction temperature, and a slow addition rate all make up the rhythm that successful production requires. Failures to follow standard protocols often show up as dark residues during recrystallization or cloudy material that signals unrecoverable batches.
In the early years of making this compound, scale-up from lab to production vessels led to several lessons. We once caught a faulty condenser line during a nighttime run; left unchecked, it would have ruined an entire batch and cost days of downtime. That experience drove us to double down on monitoring and preventive maintenance during high-sensitivity steps such as aldehyde formation and recrystallization. Today, our operators have round-the-clock access to both chemical engineering support and electronic monitoring that covers temperature, pH, flow rates, and reactor agitation.
Many industrial users keep coming back not simply for the technical grade or guaranteed assay, but because our plant team offers this kind of reliability in every shipment. Clean processes minimize risk of introducing heavy metals, which, in catalytic couplings, can be a hidden liability for the user. Finished 3,5-Dibromosalicylaldehyde comes packed in light-resistant packaging, shipped with analysis documentation, and always follows the same chain of custody from factory to lab door.
Every operator knows how seriously we take safety, both inside and outside our facility. The chemistry behind 3,5-Dibromosalicylaldehyde involves exothermic bromination and sensitive aldehyde handling. We equip our team with full PPE and keep incident response drills part of the monthly routine. We sort, collect, and treat all process effluents centrally, using multi-stage purification and neutralization before anything leaves the site. Solid waste such as filter cake or spent carbon gets documented, tracked, and handled only by trained specialists. Recent upgrades in our scrubbers and vent lines dropped bromine emissions further, backed up by yearly third-party environmental audits.
We meet local environmental and chemical handling regulations not because of outside pressure, but because our staff work here day in and day out; safe processes benefit everyone. Equipment designs, from fume extraction hoods to glass-lined pumps, reflect this core commitment. Any batch that doesn’t meet both internal and external safety expectations gets held back or destroyed—even at the expense of a missed shipment. Familiar faces on our teams value this reputation. Every improvement, from solvent recovery systems to threshold limit value alarms, started from bottom-up feedback on the shop floor.
Research teams bring us challenging requests all year. Sometimes, they look for further purification, smaller particle size, or special non-standard packaging. In these cases, having our own in-house R&D staff allows us to work hand-in-hand with the customer to tweak the production line or develop new isolation steps. Years experimenting with this compound’s crystallization behavior let us select solvents and temperatures that maximize both yield and ease of handling. If a project calls for isotopically labeled material or a specialized hybrid synthesis, our lab-scale systems can spin up development batches without interfering with day-to-day production.
For customers working on regulatory filings for new active pharmaceutical ingredients, documentation and traceability stand as high priorities. Our quality assurance staff build complete documentation packages, from starting material certification to validated cleaning logs and change-control forms. By tracing every input back to verified supply chains, we help our users meet local and multinational filing standards faster.
In manufacturing, the reputation a product builds comes from consistency, service, and technical support. Our 3,5-Dibromosalicylaldehyde stands apart from competitors on three major points: the quality of starting materials we source directly, the automation upgrades we have built into the process, and the staff’s focus on timely communication. While others may cut corners by blending from lower-grade batches or relaxing controls on input bromine sources, we developed protocols to test and assign every lot before it’s released from quarantine.
Some users report issues with spotty color or off-odors coming with substandard grades. We analyze each batch with both HPLC and NMR, documenting every relevant side product or trace contaminant. For overseas customers, who may face long shipping times or temperature fluctuations, our packaging and logistics teams monitor environmental controls from the factory gate all the way to the destination warehouse.
Handling changes in project scale can highlight differences between a robust supply partner and a basic chemical trader. Our coordination between production management and technical representatives helps avoid delays. We have adapted shipping schedules for both kilogram-scale research and multi-ton commercial supply needs, so no customer faces a surprise shortage or excess. We listen to our users’ production schedule challenges, adjusting output plans when needed without sacrificing core quality standards.
Feedback flows back to our operations managers through meetings, technical troubleshooting, and on-site visits. Last year, after a key pharmaceutical customer faced yield loss due to trace bis-brominated side product, we adjusted a step in our bromination process. Tighter control of addition rates, improved agitation, and better temperature monitoring shrank the impurity from 1% to less than 0.1%, saving time on downstream purification and boosting confidence in each delivery. Our operators saw their changes translate into customer satisfaction and long-term orders.
With each cycle, upgrades and fine-tuning keep 3,5-Dibromosalicylaldehyde production lean and stable. Automated sampling at multiple points in the batch process now gives faster feedback to the line leader and helps avoid unwanted deviations. Weekly team reviews ensure that lessons from both successful and failed batches go straight into current and future runs. The spirit of continuous improvement is not an abstract concept here—it grows from the pressure and pride of a team that stands by its product.
End users sometimes need help with product handling—crystals can clump in humid environments or degrade under direct light. We developed packaging and include handling advice based on real-world lab and warehouse practice. Every drum or lined bag ships with color-coded desiccant packs and tamper-evident seals. Lab personnel receive guidance from our support team covering sample handling, best storage temperatures, and shelf life expectations. While every site must develop its own SOPs, having a manufacturer who fields real questions and helps solve real issues simplifies science and production.
Feedback about clumping or shelf-life loss led us to offer custom packaging—smaller containers for high-frequency users, larger drum sizes for batch staging, and multi-layer bags that keep out both moisture and airborne particulates. We keep customer labs stocked with usage documentation written by chemists who have run the same reactions themselves, not outsourced support teams. Product certifications and analysis reports match each lot, giving peace of mind where traceability matters most.
The demand for high-purity, selectively functionalized aromatics has only grown as synthetic routes in both fine chemical and pharma industries increase in sophistication. 3,5-Dibromosalicylaldehyde, once mainly sourced for small-batch research, now finds its place in pilot-scale and established commercial routes worldwide. Changes in environmental regulation, especially in North America and Europe, favor suppliers with transparent and compliant manufacturing. This reality drives us to invest in better emissions controls, traceability systems, and research partnerships that push batch scales higher without trade-offs in quality.
Synthetic biology and green chemistry initiatives also put greater emphasis on minimizing hazardous waste, increasing yields, and supporting sustainable supply chains. Our own R&D projects focus on bromine recovery, solvent recycling, and renewable energy use in our plants. Every improvement started with small steps—tracking waste byproduct volumes, investing in automated monitoring, encouraging staff ideas on energy-saving, and building partnerships with academic labs focused on new synthetic techniques.
Buying specialty chemicals from a real manufacturer comes down to more than paper guarantees. Over decades, our team has gained a deep, applied understanding of both the chemistry and the practicalities—from the supply of high-grade feedstocks, to the hands-on monitoring of every production step, to the responsiveness of our technical and support staff. We put ourselves in the shoes of the chemists, engineers, and technicians who depend on reliable, repeatable performances, shipment after shipment. That means steady improvement and listening to the demands of real-world users, not just achieving technical specs on a piece of paper.
In the field, even tiny inconsistencies in a shipment can spell hours or days lost in pilot plants or weeks of troubleshooting in labs. Our commitment to quality, safety, and partner support comes straight from our daily experience in the plant and on the receiving end of user feedback. The lessons learned with every ton produced, every reaction run, and every shipment sent, shape the product we offer and ensure it stands out in a crowded market.
Real partnership means not just fulfilling orders, but also supporting our customers through technical questions, troubleshooting, and adapting to changing project needs. Our staff bring together years in production, R&D, quality control, and logistics—so customers get workable solutions without delays and endless back-and-forth. We see every inquiry as a chance to improve not only our product but also our own processes. In practice, this sets us apart from distributors and resellers who lack the hands-on experience to solve problems at the source.
3,5-Dibromosalicylaldehyde, with its precise substitution and proven consistency, remains a key intermediate for innovators across chemistry-driven fields. Our approach has always rested on steady investment in people, process, and transparency—building a product that keeps our customers’ projects on track and ahead of challenges.