Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

2,5-Dibromobenzaldehyde

    • Product Name 2,5-Dibromobenzaldehyde
    • Alias RARECHEM AL BO 0213
    • Einecs 218-862-2
    • 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

    364888

    Cas Number 5092-22-4
    Molecular Formula C7H4Br2O
    Molecular Weight 279.92 g/mol
    Appearance White to light yellow crystalline powder
    Melting Point 88-92°C
    Boiling Point 313.3°C at 760 mmHg
    Density 2.09 g/cm³
    Solubility In Water Slightly soluble
    Purity Typically ≥98%
    Smiles C1=CC(=C(C=C1Br)Br)C=O
    Refractive Index 1.658
    Synonyms 2,5-Dibromo-benzaldehyde

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

    Packing & Storage
    Packing Amber glass bottle labeled "2,5-Dibromobenzaldehyde, 25g." Features hazard symbols, product code, supplier name, and handling instructions.
    Shipping 2,5-Dibromobenzaldehyde is shipped in tightly sealed, chemical-resistant containers to prevent leakage and contamination. It must be stored upright in a cool, dry, and well-ventilated area. Shipping follows hazardous materials regulations, and it is labeled and handled as a corrosive solid to ensure safety during transport.
    Storage 2,5-Dibromobenzaldehyde should be stored in a tightly sealed container, away from light, moisture, and incompatible substances such as strong oxidizers. Store it in a cool, dry, and well-ventilated area, preferably in a dedicated chemical storage cabinet. Ensure proper labeling and keep it away from sources of ignition or heat. Follow safety protocols and local regulations for hazardous chemicals.
    Application of 2,5-Dibromobenzaldehyde

    Applications of 2,5-Dibromobenzaldehyde in Industrial Manufacturing

    2,5-Dibromobenzaldehyde serves as a high-value specialty intermediate across several industrial chemical sectors. Our manufacturing process meets international quality requirements and supports advanced integration into core downstream technologies. Below are key application fields with detailed considerations for each end-use channel.

    1. Pharmaceutical Intermediate for Active Pharmaceutical Ingredients (APIs)

    Leading pharmaceutical companies purchase this compound for multi-step API syntheses, particularly within antihypertensive and anti-inflammatory drug manufacturing lines. The compound functions as a key building block for the preparation of heterocyclic structures via coupling, nucleophilic substitution, and condensation reactions. Strict traceability and impurity control are monitored by our QC systems during every production batch to address regulatory compliance in regulated markets.

    Industry compliance standards

    • ICH Q7 GMP for active pharmaceutical intermediate production
    • USP, EP, JP monograph conformity for impurities and residual solvents (where applicable)
    • FDA 21 CFR Part 210/211 for manufacturing environments
    • REACH registration for European API supply

    Typical usage ratio

    • 5–18% of total molar reactants in stepwise API syntheses, adjusted based on targeted active structure
    • Excess use possible in high-yield impurity scavenging reactions

    Downstream process integration

    • Introduced during primary aromatic substitution, cyclization, or formylation stages
    • Seeded into intermediate crystallization and controlled-release precursor formation

    Final product types

    • Active ingredients for cardiovascular, CNS, and anti-obesity pharmaceuticals
    • Key intermediates for benzothiazole and quinoline family drugs
    • Reference compounds and certified analytical standards

    2. Agrochemical Synthesis (Herbicide and Fungicide Precursors)

    Major agrochemical producers use this intermediate to generate functionalized aromatic structures for advanced herbicide and fungicide compounds. It participates in halogen exchange and aldehyde-modifying reactions, supporting active molecule innovation for field and seed treatment products. Batch-to-batch consistency underpins regulatory submission data and product registration requirements worldwide.

    Industry compliance standards

    • FAO and WHO specification for technical grade pesticide ingredients
    • ISO 9001:2015 quality system adoption
    • Globally Harmonized System (GHS) for classification and labelling
    • EPA 40 CFR Part 174 for biopesticide active ingredient production

    Typical usage ratio

    • 12–25% by mole in final halogenated aromatic agrochemical skeleton formation
    • Adjusted based on required halogenation degree and targeted aldehyde placement in molecule

    Downstream process integration

    • Employed during nucleophilic aromatic substitution or Grignard functionalization stages
    • Serves as coupling partner in step-growth polymerization of complex agrochemicals

    Final product types

    • Pyrrole- and triazole-based fungicides
    • Substituted benzaldehyde series pre-emergent herbicides
    • Seed treatment and soil fumigant technical concentrates

    3. Liquid Crystal and Specialty Electronic Material Production

    Advanced material manufacturers utilize this raw material in synthesizing liquid crystal intermediates and optoelectronic building blocks. The dibromoaryl group enables precise placement of reactive sites for subsequent coupling, essential in producing tailored optically active and high-purity molecular architectures. Lot homogeneity and trace metal minimization play a vital role in achieving electronic-grade material quality.

    Industry compliance standards

    • RoHS 2 Directive (2011/65/EU) regarding hazardous substance content
    • ISO 14001 for environmental management in high-purity production
    • IEC 61249-2-21 for halogen content limitations in electronic substrates
    • Customer-proprietary electronic purity grade requirements

    Typical usage ratio

    • 3–10% by weight as a precursor in multi-stage liquid crystal monomer synthesis
    • Ratio optimized based on chain length, rigidity, and birefringence specifications

    Downstream process integration

    • Incorporated into Suzuki–Miyaura or Stille cross-coupling reactions
    • Forms the core aromatic moiety in multilayered LCD or OLED composite synthesis

    Final product types

    • Liquid crystal monomers and dimers for display industry
    • OLED intermediate compounds
    • Electronic substrate surface modifiers

    4. Dye and Pigment Synthesis (Specialty Colorants)

    Manufacturers in the dye and pigment sector deploy this compound to introduce reactive dibromo groups into aromatic backbones for specialty colorant molecules. The controlled aldehyde functionality supports specific chromophore extension or attachment in the synthesis of high-performance dyes for textile, plastics, and inkjet applications. Molecular purity and residual halide levels remain critical throughout pigment production to deliver consistent performance and regulatory compliance.

    Industry compliance standards

    • OEKO-TEX Standard 100 for textile colorants
    • REACH Annex XVII restriction substance compliance
    • ISO 12302:2013 for dye purity determination
    • EN 71-3 for colorants in toys and children's goods

    Typical usage ratio

    • 6–15% by mass depending on targeted dye structure and application intensity
    • Ratio is fine-tuned based on absorption wavelength and final shade strength requirements

    Downstream process integration

    • Key component in azo-coupling, condensation, or halogenation steps during dye molecule construction
    • Added during pigment dispersion resin modification

    Final product types

    • Solvent-soluble and water-dispersible textile dyes
    • Specialty organic pigments for inks and coatings
    • Bright-intensive plastic and fiber colorant masterbatches

    5. Organic Synthesis Building Block for Research and Fine Chemicals

    Bulk and custom fine chemical producers, as well as R&D organizations, adopt this raw material for complex molecule construction projects involving aromatic formylation and controlled halogenation. The compound provides predictable reactivity and functional group compatibility, supporting the stepwise synthesis of custom molecules, reference standards, and discovery-stage new chemical entities. Batch documentation and analytical profiling ensure suitability for high-purity, trackable laboratory and scale-up uses.

    Industry compliance standards

    • ISO 9001:2015 certified production facilities
    • Internal specification sheets covering NMR/GC/HPLC analytical verification
    • Material Safety Data Sheet (MSDS) conformity for laboratory chemical use
    • Custom COA and impurity profiling as per customer research protocols

    Typical usage ratio

    • Variable: typically 1–15% relative to total reaction mass, depending on the targeted molecule and synthesis design
    • Adjustments defined by reaction stoichiometry and intermediate stability requirements

    Downstream process integration

    • Used at the start of multi-step organic synthesis for intermediate or final molecule assembly
    • Supports scale-up from laboratory gram quantities to multi-kilogram production batches

    Final product types

    • Specialty research chemicals and NCE libraries
    • Analytical reference standards
    • Building blocks for university or pharma process development labs
    Free Quote

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

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    Understanding 2,5-Dibromobenzaldehyde: More Than a Chemical Name

    Our Experience Shape Our Chemistry

    As long-time manufacturers of aromatic building blocks, we've experienced first-hand the way small molecular differences can ripple across an entire production line. 2,5-Dibromobenzaldehyde stands out from its halogenated counterparts because of the unique positioning of its two bromine groups. The distinction may sound minor to those from outside the industry, but it fundamentally changes how the compound behaves when introduced to new reactions. This compound, known by many researchers and process chemists as a key intermediate, keeps surfacing in projects that count on predictable reactivity and reliable purity. Watching it come off the line after years of refining our process brings a real sense of accomplishment to our technical team.

    Direct from Our Reaction Flasks to Your Bench

    Our role as a chemical manufacturer puts us right at the junction where user expectations meet raw reality. Handling 2,5-Dibromobenzaldehyde means more than filling an order. Our batch reactors must account for everything—from solubility during halogenation to subtle purification steps that coax out those last bits of byproduct. Each detail becomes visible under quality control, and we chart every batch so our clients never need to question what truly lies inside. Unlike generic listings handed around by resellers, our shipments reflect hard-won experience and tweaks tested over years—not weeks or months. The difference shows up during your synthesis, especially if you’re working toward pharmaceuticals, agricultural molecules, or specialty materials.

    Our Product Model and Specifications

    Our standard offering involves crystalline 2,5-Dibromobenzaldehyde with a purity that consistently surpasses 99 percent by HPLC. Each drum or bottle leaves our facility with a batch-specific certificate. The compound’s melting point registers in a tight range, a sign that our conditions succeed at suppressing higher- and lower-melting co-formed impurities. Labs and pilot plants value this consistency, as the solid dissolves and reacts cleanly without surprises. The lack of persistent residues after reaction means our customers rarely have to wrestle with purification delays. By focusing on both physical and chemical consistency, we manage to meet the needs of researchers and scale-up engineers alike.

    Bromination Patterns—Small Shift, Big Change

    Change a substituent’s position on a benzaldehyde ring, and you shift more than just a chemical line on a diagram. Comparing 2,5-dibromo with 3,5- or 2,4-dibromo variants highlights just how much reactivity, selectivity, and final product identity can lean on subtle starting differences. Over the years, we’ve supplied chemists troubleshooting syntheses that simply refused to work as planned—until they swapped to the exact dibrominated isomer needed for a critical condensation or Suzuki coupling. That’s not a detail that often shows up in catalogue blurbs. Instead, it comes from years poised over a fume hood, finding out what works and what fails.

    Uses That Reflect Everyday Industry Practice

    2,5-Dibromobenzaldehyde keeps cropping up in routes toward fine chemicals. For process chemists in pharmaceutical, materials, and pigment industries, its dibromo pattern can open doors to molecules with enhanced activity or stability. Crop protection researchers will recognize its role in certain intermediates—many active ingredients draw on aromatic scaffolds with the right halogen substitution. We’ve seen the shift toward chiral ligands and organic semiconductors create new demand streams as well. And it’s not just about academic curiosity: manufacturers who need scalable, reliable building blocks require that tricky combination of reactivity and stability that the 2,5 profile delivers. We see real downstream impact in plants where step yields improve and purification headaches ease up—all because a starting material matched real-world process parameters.

    How Manufacturing Methods Impact the Product You Get

    Our facility produces 2,5-Dibromobenzaldehyde through a controlled two-step sequence: aromatic bromination followed by custom purification protocols honed over years of production. We choose solvent systems that minimize side-product formation while maximizing yield. This focus matters because stray bromination or incomplete reactions spiral into lost time, wasted labor, and higher material costs for end users. By listening closely to customers, we’ve adapted our work-up and filtration to remove persistent sticky residues that can otherwise plague reactions further downstream. Carefully controlling our raw materials—like the grade of starting benzaldehyde or the quality of brominating agents—directly shapes finished product performance.

    Specifications That Matter Beyond the Spec Sheet

    A sample’s color and smell might not have a line item in most purchasing documents, but our most experienced clients walk into the lab and judge a batch with their senses before they ever reach for an HPLC sample or IR probe. Off-notes, discoloration, and abnormal melting behavior tell a deeper story about upstream process hiccups. Over time, persistent attention to these cues has cut customer complaints and helped us spot shifts in vendor-supplied raw materials. Our technicians keep records stretching back for years, tracking these ‘soft signs’ alongside hard numbers to build a more complete quality picture. It’s one reason researchers keep requesting samples from our plant by name—there’s a trust earned by never cutting corners, even if those details go unrecorded in typical literature or datasheets.

    Real-World Comparisons to Other Aromatic Aldehydes

    Chemists have choices—sometimes too many. Oxidized, halogenated, or alkylated benzaldehydes all hold their own in synthesis, but side-by-side batch testing proves that pure 2,5-dibromo often brings out unique benefits. For example, 4-bromobenzaldehyde might look attractive on price, but its single substitution point alters both reactivity and downstream purification. Mono-bromo isomers can lead to over-brominated or polycondensation byproducts in later steps, a headache those after clean, efficient modular syntheses tend to avoid by sticking with the dibromo variant. On the other end, adding extra halogen atoms raises cost and toxicity risks, without always boosting final product properties. Balancing cost, reactivity, and purity turns into a practical exercise shaped by real plant-floor outcomes, not marketing copy.

    Purity and Batch Traceability in Our Operation

    We meet customer needs for high-purity 2,5-Dibromobenzaldehyde with tracked supply chains and documented batch histories. Our site relies on integrated lot tracking systems, which tie every production run back to its initial raw materials, in-house analytical data, and shipment records. This process makes it simple for clients to request historical QC data long after a delivery. More importantly, we catch any off-trend results before they leave the plant, and our staff investigates even minor deviations. This experience builds confidence during project scale-up, where a failed run can cost weeks of lost time and escalate expenses quickly. The time and labor we invest upfront guards customers from much larger headaches downstream.

    Supporting Research, Not Just Transactions

    Whether shipping small research batches or multi-ton orders for continuous plant runs, we spend significant time supporting scientists who use our 2,5-dibromo aldehyde. Detailed discussions around solvent compatibility, crystallization routines, or minor appearance changes after long storage bring practical value to our customers. Many end users rely on our recommendations to tweak reagents or fine-tune purification—based on what we’ve seen go right or wrong over hundreds of past projects. Larger operations appreciate scheduled production slots and advance samples, allowing them to validate material in new syntheses without risk of unexpected delays or substitutions. Supporting long-term project planning gives clients leverage over supply chains, letting them focus resources on innovation, not vendor troubleshooting.

    Maintaining Consistency in Complex Markets

    Raw material prices change, regulatory shifts happen, and procurement offices cycle through preferred vendors. In the middle of this constant churn, manufacturers like us become the bedrock for labs and factories building their own products. There’s little room for inconsistency—all it takes is a subtle impurity or slight property shift in 2,5-dibromobenzaldehyde to undermine months of downstream effort. By investing in dedicated production equipment, on-site lab analysis, and regular technical retraining, we bolster our ability to deliver constant quality. We recall moments when competitor material passed paperwork reviews only to fail real yield trials—a reminder that manufacturing experience often tells the full story long before it’s captured in technical bulletins.

    Getting Feedback Straight from the Source

    Every kilogram we manufacture enters the market with an implicit invitation for feedback. We make it easy for users to report back on how a batch performed, whether in laboratory flask or pilot plant reactor. This direct feedback loop builds a culture of learning—mistakes or unexpected issues instruct just as much as the smoothest production run. For us, manufacturing 2,5-dibromobenzaldehyde doesn’t end with product shipment. Our R&D, operations, and sales teams meet regularly to dissect feedback and design process tweaks. This practice gives us a tighter grip on the shifting demands of our user base, connecting lab results to plant-floor realities.

    Building for Future Applications

    Today’s chemistries rarely look like yesterday’s. Each year, customers ask us about using 2,5-dibromobenzaldehyde in catalysts, next-generation dyes, and increasingly in specialty materials for electronics. We keep pace by monitoring advances in reaction technology, new applications, and regulatory updates within our own supply lines. Having in-house synthesis capacity lets us try out modified reaction conditions, produce related analogs for comparison, and provide side-by-side samples that highlight the subtle distinctions between different bromination patterns. As industries pivot to new performance goals, we remain ready to supply proven, reliable material for fast-advancing R&D teams.

    Navigating Global Regulations and Safety

    Our team must stay informed on evolving regulatory lists, transport restrictions, and safety guidelines for halogenated aromatics. Each regulatory cycle brings changes that affect raw material choices, packaging specifications, and even labeling practices. Our safety department embeds these requirements into production, shipping, and storage—so clients receive material compliant with the latest import and use regulations. We have seen regulatory bottlenecks delay new product launches for users who sourced material from less disciplined producers, who couldn’t back up certificates or track documents when customs raised a question. Our attention to compliance reduces uncertainty, keeping supply chains flowing during audits or cross-border shipments.

    Our Perspective on Sustainability and Resource Use

    We cannot ignore rising expectations for cleaner, more sustainable synthesis. Waste handling, recycling, and greener bromination technologies remain major topics throughout the industry. Our own process improvement initiatives focus on solvent recovery, minimizing energy use, and responsible bromine management. Each step that improves process yields or cuts waste directly benefits both the environment and our cost structures. Customers increasingly ask about these efforts, wanting assurances that their supply chain aligns with broader sustainability goals. For us, this challenge pushes ongoing investment in technology and plant upgrades, which over time tangibly shape the way products like 2,5-dibromobenzaldehyde are made and delivered.

    How Differences in Origin Impact Real Use

    Customers who’ve run parallel tests with 2,5-dibromobenzaldehyde from global sources often report marked differences in solubility, color, or long-term storage performance. These details seldom make it into datasheets, yet they steer critical process decisions in synthetic labs and industrial reactors. Over the years, we’ve adapted our quality targets and logistics models based on client-provided results. Matching a blend of technical consistency and fast, secure logistics matters when customers tie inventory to ongoing projects. For time-sensitive campaigns, even minor customs slowdowns or unexpected delays from import brokers threaten big production schedules. Experienced plant staff know to plan ahead using reliable, local stocks rather than risking workflow chaos on poorly documented imports.

    The Value of Lot-to-Lot Predictability

    Reliable 2,5-dibromobenzaldehyde means more than consistent appearance or a printed purity figure. For process chemists, the real benchmark lies in lot-to-lot reaction behavior. Our own records highlight how predictable reactivity corners uncertainty out of multi-step syntheses. Customers who value risk management find that the true cost of a cheaper but unpredictable feedstock can skyrocket when downtime, repeated assays, or reformulation enter the picture. Our investments in process controls, redundant analytical verification, and technician cross-training translate into steady output, even as variables outside our walls keep shifting. Process stability forms the backbone of successful manufacturing collaborations—it’s an achievement we’re proud to share with each shipment.

    Investing in Experienced Teams

    Chemistry is ultimately a people-driven pursuit. Every turnaround and process optimization in our 2,5-Dibromobenzaldehyde line has come from the hands and intuition of trained chemists, engineers, and operators. We recruit and retain staff with both academic background and practical, plant-floor knowledge. This blend accelerates issue-solving, improves on-the-fly troubleshooting, and lets us forecast process limitations before they reach the customer. Long-tenured team members help resolve tricky customer questions—whether about odd reaction behavior, potential side-reactions, or shelf stability under less-than-ideal storage. Our clients recognize and value the difference true experience makes, especially as product applications evolve and the demands on feedstock quality intensify.

    Collaborating for Continuous Improvement

    Dynamic markets and shifting technical frontiers ensure that no two years in aromatic aldehyde manufacturing feel exactly the same. Sustained partnerships—both with customers and upstream suppliers—let us adapt quickly when new problems or product opportunities arrive. We foster collaborative problem-solving, which has led to innovation in packaging, shipment security, and documentation. Each positive or negative experience shifts the process of how we make, test, and deliver 2,5-dibromobenzaldehyde. Over time, this culture of improvement creates meaningful advantages for our customers, who rely on us to make new projects possible or to keep old ones running smoothly.

    Final Perspective: Why 2,5-Dibromobenzaldehyde Matters

    Decades of manufacturing experience have taught our team that reliable specialty chemicals underpin real-world progress, whether that means better pharmaceuticals, advanced materials, or safer crop protection strategies. Each lot of 2,5-dibromobenzaldehyde leaves our site shaped by thousands of process tweaks, problem-solving sessions, and hard-earned technical lessons. Our goal remains unchanged: deliver more than a specification sheet, and offer a building block that solves real problems in real projects. In this business, there’s little substitute for experience and commitment—a fact reflected in every sample we ship and every batch we document.