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HS Code |
682030 |
| Chemicalname | 2,6-Dibromo-4-Methylaniline |
| Casnumber | 58673-58-0 |
| Molecularformula | C7H7Br2N |
| Molecularweight | 280.95 g/mol |
| Appearance | Light brown to off-white solid |
| Meltingpoint | 74-78°C |
| Solubility | Insoluble in water; soluble in organic solvents |
| Density | 1.88 g/cm3 (approximate, calculated) |
| Smiles | Cc1cc(Br)cc(Br)c1N |
| Inchi | InChI=1S/C7H7Br2N/c1-4-2-5(8)7(10)6(9)3-4/h2-3H,10H2,1H3 |
| Ecnumber | 614-389-0 |
| Purity | Typically ≥97% (for commercial samples) |
| Storageconditions | Store in cool, dry place, tightly closed |
| Synonyms | 2,6-Dibromo-p-toluidine |
As an accredited 2,6-Dibromo-4-Methylaniline factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle containing 25 grams of 2,6-Dibromo-4-Methylaniline, sealed with a plastic screw cap and labeled for laboratory use. |
| Shipping | 2,6-Dibromo-4-Methylaniline is shipped in tightly sealed containers, protected from moisture and light. It should be handled as a hazardous chemical, complying with local and international transport regulations (such as DOT, IATA, and IMDG). Packages are clearly labeled, with appropriate documentation and safety data sheets provided to ensure safe handling and delivery. |
| Storage | 2,6-Dibromo-4-methylaniline should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from sources of ignition, heat, and incompatible substances such as strong oxidizers and acids. Protect from moisture and direct sunlight. Appropriate safety measures, including the use of gloves and eye protection, should be employed when handling the compound. |
Applications of 2,6-Dibromo-4-Methylaniline in Industrial Manufacturing2,6-Dibromo-4-methylaniline serves as a specialty intermediate deployed in several targeted sectors of the chemical industry. As the original manufacturer, we supply high-purity grades tailored for downstream chemical synthesis, with full attention to process integration, regulatory compliance, and end-use performance requirements. Below, we outline principal application areas based on real-world, large-scale usage observed at downstream plants globally. 1. Agrochemical Intermediate SynthesisMajor crop protection companies utilize 2,6-dibromo-4-methylaniline as an indispensable building block for the synthesis of selective herbicides and insecticide actives. It participates in key amination and coupling reactions, driving the creation of advanced molecules used in high-value agrochemical formulations. Downstream integration aligns with strict tox profile monitoring and stewardship guidelines necessary in field applications for regulated markets. Industry compliance standards
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2. Pharmaceutical Intermediate ManufacturingThe pharmaceutical industry deploys 2,6-dibromo-4-methylaniline for producing advanced intermediates in the synthesis of APIs, especially in the neurological and anti-infective domains. It enables regioselective amination and provides a brominated aromatic core, critical for select molecule scaffolds. Downstream manufacturers prioritize traceability from raw material to finished dosage forms, complying with pharmacopeia and cGMP systems. Industry compliance standards
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3. Dyes and Specialty Pigment ManufacturingProducers of high-performance dyes and pigments leverage this compound for introducing brominated functionality into azo and anthraquinone dye structures, producing colorfast materials with unique shade characteristics. Industrial formulations require batch-to-batch colorimetric consistency and conformance to safety standards governing textile and plastics applications. Industry compliance standards
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4. Liquid Crystal Material SynthesisIn the electronics and advanced materials sector, this compound is instrumental for synthesizing high-order aromatic intermediates used in the production of specialty liquid crystal compounds for display technologies. Precise bromination patterns derived from this raw material enable tuning of mesogenic properties in end products, supporting high-resolution and low-volatility requirements in display manufacturing. Industry compliance standards
Typical usage ratio
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Every batch tells a story. In the chemical manufacturing business, we choose to produce 2,6-Dibromo-4-Methylaniline because specialty amines drive research and development across dyes, pharmaceuticals, and advanced materials. There is always demand for carefully controlled raw materials. Our team knows the challenge starts at the bench and scales up through ton-sized reactors. Decisions we make affect pigment stability, synthetic routes in pharma, and reliability of custom organic intermediates.
2,6-Dibromo-4-Methylaniline draws requests from labs and plants seeking aromatic amines with high selectivity during halogen substitution. It supplies core reactivity where two bromine atoms at para and ortho positions influence directional reactivity. Compared to generic anilines or lower brominated grades, this molecule leads to different synthetic outcomes. We have learned over years of production that consistency in halogenation makes or breaks later coupling steps.
We manufacture our 2,6-Dibromo-4-Methylaniline with strict focus on purity and isomer specification. Every kilogram relies on precision. Isomeric purity directly supports both research and scale-up. With high expectations from fine chemical clients, we regularly see feedback not just on purity but on physical qualities: melting range, batch-to-batch consistency, and color. These details play out in actual recipes—either the intermediate fits into precise organic synthesis, or the yield in the next step drops. Our final product, typically white to light-brown crystalline powder, tests above 98% purity (by GC or HPLC methods), avoiding troublesome ortho impurities that can throw off catalytic couplings.
Physical characterization — like melting point and particle size — can seem old-fashioned, until one hears from a user whose process failed due to unnoticed particle heterogeneity. Time and again, our hands-on approach to QA, close collaboration between lab and floor chemistry, has built trust with buyers who need batch consistency rather than speculative specification sheets.
In our experience, 2,6-Dibromo-4-Methylaniline finds its way mostly into two domains: colorants and intermediates for pharmaceuticals. In color chemistry, brominated aniline core structures offer handles for C-N coupling and fused ring building. This molecule helps build advanced pigment scaffolds and lightfast dyes, which find a market in plastics, inks, and coatings. Strict halogen placement means less waste in the coupling step, lower byproduct levels, and better solubility profiles for downstream formulations.
For pharmaceuticals, it serves as a launching point for more elaborate molecules, often feeding into active pharmaceutical ingredient synthesis, where the bromines enable further substitution or metal-catalyzed cross-couplings. The presence of both ortho bromines, together with the methyl group at the 4-position, influences reactivity at the aniline nitrogen and dictates regioselectivity in multi-step reactions. A chemist chasing a difficult Suzuki or Buchwald coupling wants a known, reproducible substrate — and we have shaped our production to provide exactly that.
Over years, we have fielded questions about what makes this structure unique compared to anilines without bromines, or those halogenated only once. The answer is rooted in reactivity. With two bromine atoms positioned on the aromatic ring, this compound offers enhanced leaving group capacity—making it ideal for advanced cross-coupling reactions. In dye synthesis or the buildout of heterocycles, the difference becomes evident. Comparisons with mono-bromo aniline tell the story: increased substitution pattern complexity opens more possibilities downstream.
Another crucial element involves selectivity. Lower substituted anilines or unhalogenated forms often foster side product formation, resulting in more extensive and costly purification. The steric and electronic effects provided by the two bromines and the methyl group modify both the speed and selectivity of key reactions. We see this reflected in real-world outcomes: customers using the doubly-brominated product report smoother n-arylations and fewer unreacted byproducts.
Making a specialty chemical like 2,6-Dibromo-4-Methylaniline isn’t just a matter of running a halogenation. Each run must address exothermic risks, differences in solvent behavior, and precise timing. Unexpected impurities can surface from side reactions or inconsistent starting materials. Over the years, we have invested in better in-line monitoring, direct analytical controls, and skilled reactor supervision to reduce batch variation. Every chemical operator knows how a subtle shift in temperature or agitation can mean off-spec output—wasted resources and time.
Our own plant history shows that well-understood, repeatable processes offer peace of mind not only for our team, but for partners downstream. Supporting documentation tracks how we control raw material grades, manage critical points in halogenation, and run thorough intermediate sampling. The expectation is that every drum leaving our facility matches outlined technical spec, not just most of them.
With halogenated intermediates, strict handling procedures matter. Our experience has taught us the importance of sealed systems, properly maintained PPE, and clear operational guidelines for staff working with aromatic amines. Brominated compounds, if inhaled or handled carelessly, bring inhalation and contact risks. We make sure that our EHS (Environmental Health and Safety) policies start with practical training, not just compliance paperwork. Every scheduled maintenance, every change in the process, pushes us to update our safety practices and address emerging issues before they become incidents. We support partners by sharing observations from our own chemical safety protocols, refining shipping methods, and monitoring environmental emissions through modern analytical sensors.
Steady supply allows research and production teams to focus on their science, not on raw material shortages. We’ve invested in robust logistics channels to move this molecule from our plant to both large-scale industrial customers and small research labs. Many of our clients told us about the disruptions they faced in the past from supply shocks or inconsistent imports. Our local approach, direct manufacturing, cuts down transit time and keeps lead times dependable—even during unexpected market swings or raw material price shifts.
Feedback from users drives our methods. Whether a dye manufacturer needs a single large lot, or a pharmaceutical developer requests smaller custom lots for clinical projects, we tailor schedules for each real-world requirement based on ongoing communication. Years of dialogue with chemists and process engineers helped us refine not only quality control, but packaging details, documentation standards, and customer education around best use.
Consistency grows from investment—both in plant infrastructure and ongoing training. Our technical team tracks not only the analytic data for each batch but also looks for trends at micro and macro scales: shift-to-shift standardization, raw material vendor reliability, subtle seasonal process drifts. There’s no quick fix for robust batch reproducibility. Our strategies include double-checking reactor cleaning, maintaining validated process controls, and cross-comparing batch samples. We work directly with instrumentation vendors to ensure every run is evaluated with best-in-class chromatography, melting point, and physical examination.
The difference between a problematic lot and a flawless run often comes down to supplier discipline. Every incoming raw material gets strict inspection, and every operational step relies on checklists and technician accountability. By making these details visible to customers through documentation and support, we improve their confidence in downstream success.
Years at the bench and on the production line convince us that reliable supply trumps headline specs. The pulse of our business beats in catching faults before they reach an order, tightening process schedules, and translating small lab observations into large-scale improvements. We teach every new operator that success for 2,6-Dibromo-4-Methylaniline is measured not only in assay value, but in the satisfaction of customers facing strict regulatory and process demands on their own products.
Manufacturing specialty chemicals means any unnoticed deviation—be it in a reagent lot, an analytical calibration, or a subtle water content shift—can affect not just yield, but the performance of the final products built by our clients. That's why we dig deep into each technical problem until we see sustainable answers. We share these practical lessons, not just numbers, with every partner looking to build reliability into their own operations.
For us, engagement does not end with shipment. Regular technical updates, willingness to adjust batch characteristics for unique requests, and a listening ear for troubleshooting keep us connected to the community of researchers and process engineers using 2,6-Dibromo-4-Methylaniline. Insight from early-stage feedback—whether on reactivity, shelf stability, or oddities in blending—lets us tweak parameters and deepen collaborations over time. In this way, chemistry shapes itself to actual lab and plant conditions, rather than idealized specs.
Every improvement, whether in packaging that cuts down static, or in optimizing logistics for sensitive climates, comes from these ongoing partnerships. Our customers' goals quickly become our own: supporting a clean N-arylation, minimizing cross-contamination fears, or securing efficient scale-up for new drug targets. Long-term trust grows from this practical, responsive approach.
Anyone can list theoretical benefits of high-grade 2,6-Dibromo-4-Methylaniline. From years competing in a busy market, we understand what sets our batches apart: less batch-to-batch drift, active support before and after delivery, and thorough visibility across the supply chain. Gaps in traceability, lingering doubts about origin or process discipline, and shifting specs from third-party traders can derail downstream projects. We control our own manufacturing—ensuring that any issue identified can be traced, corrected, and closed before it can compound into a supply chain nightmare.
Feedback from both multinational manufacturers and up-and-coming R&D shops tells a clear story. Where a comparable brominated aniline from a generic supplier might bring sniff-test purity, the test comes from multi-step reaction runs—where the presence of even minor isomeric impurities or hidden trace byproducts can cause more headaches than any upfront cost savings might justify. By running our own plants, not simply repacking or brokering, we can guarantee consistency at a practical level—not just on spec sheets, but where it counts: in reactors, columns, and final product performance.
Every successful batch of 2,6-Dibromo-4-Methylaniline reminds us that reliable specialty production is a craft as well as a science. Demand continues to evolve, with the steady rise of green chemistry, even more stringent pharma traceability expectations, and advanced material innovation. We keep pace by investing in cleaner, safer, and more responsive operations—from solvent recycling to in-plant emissions control.
Low-level analytical improvements, such as LC-MS verification and real-time monitoring, prevent problems before they start. By tying our operations to evolving customer standards, we build production methods that anticipate future market needs, not just respond to present-day orders. This means faster troubleshooting, quicker turnaround for unique requests, and easier regulatory compliance for our partners—supporting their ability to move quickly in competitive R&D and manufacturing environments.
Trust—real trust—comes from a track record of fixing problems, not from promising a perfect process. We deliver on that promise by making tangible investments in both our technology and our people, always working hands-on, always ready to adapt.
Chemists new to handling 2,6-Dibromo-4-Methylaniline often ask for advice: how best to store it, what quirks show up during dissolution, and what downstream challenges might arise. We recommend storing drums or bottles in a cool, dry, and well-ventilated space, away from moisture and direct light. In practical use, measured pre-drying can support consistency in weight and avoid micro-clumping which, though rare, has cropped up in humid climates. Routine analytical checks on opened containers ensure a smooth synthesis journey. Our team remains available for real-time troubleshooting, offering suggestions based on collective experience—ranging from solvent selection to filter choices—gleaned from years at the plant and lab bench.
We regularly update our resources to reflect lessons learned from partners using this molecule in demanding settings. New users benefit from documented process improvements and early warnings about observed technical hiccups, so that avoidable surprises don’t derail critical projects. For us, a successful customer experience starts long before an order arrives, and success, in the end, is as much about communication as chemistry.
In our view, every shipment marks a new chapter—not just a commodity transfer. We carry forward the lessons from our own production floor, along with insights from the real-world use of 2,6-Dibromo-4-Methylaniline, to deepen our partnerships and reinforce our commitment to quality, safety, and responsiveness. By keeping the focus practical and grounded, and by leveraging the real strengths of direct manufacturing, we give our clients the stability and transparency they need to drive their own innovations further.
The work of making, refining, and supporting a specialty intermediate like this shapes our sense of responsibility—to our customers, each other, and the science that moves the world forward. We welcome more conversations, more challenges, and the opportunity to keep building value batch by batch, together with those who rely on us.