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HS Code |
746286 |
| ProductName | 2-Amino-5-Bromobenzotrifluoride |
| CASNumber | 328-81-2 |
| MolecularFormula | C7H5BrF3N |
| MolecularWeight | 240.02 g/mol |
| Appearance | Pale yellow to brown solid |
| MeltingPoint | 54-57°C |
| Purity | Typically ≥98% |
| Density | 1.68 g/cm³ (approximate) |
| Solubility | Slightly soluble in water; soluble in organic solvents |
| Synonyms | 5-Bromo-2-(trifluoromethyl)aniline |
| SMILES | C1=C(C=CC(=C1N)Br)C(F)(F)F |
| InChIKey | HRAJBPZCOHFMEK-UHFFFAOYSA-N |
As an accredited 2-Amino-5-Bromobenzotrifluoride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Sealed amber glass bottle containing 100 grams of 2-Amino-5-Bromobenzotrifluoride, labeled with hazard warnings and chemical identification. |
| Shipping | 2-Amino-5-Bromobenzotrifluoride is typically shipped in tightly sealed, chemical-resistant containers to prevent moisture ingress and contamination. It should be packed and labeled according to hazardous material regulations, ensuring compliance with appropriate safety codes. During transit, keep away from heat, sparks, and incompatible substances, ensuring appropriate documentation and handling. |
| Storage | 2-Amino-5-Bromobenzotrifluoride should be stored in a tightly closed container, in a cool, dry, well-ventilated area away from heat, ignition sources, and incompatible substances such as oxidizers and strong acids. Protect from moisture and direct sunlight. Use appropriate chemical-resistant containers and ensure proper labeling to prevent accidental misuse or exposure. Store only with compatible chemicals to avoid hazardous reactions. |
Applications of 2-Amino-5-Bromobenzotrifluoride in Industrial ManufacturingAs a direct manufacturer, we supply 2-Amino-5-Bromobenzotrifluoride for precise integration into specialized chemical sectors. This intermediate enables reliable incorporation in advanced synthesis routes across multiple high-value markets. Below, we detail core downstream applications, formulation ratios, regulatory standards, processing entry points, and realized end products for each segment. 1. Agrochemical Synthesis: Herbicide Active Ingredient Production2-Amino-5-Bromobenzotrifluoride serves as a core building block in the synthesis of selective herbicide actives, especially those targeting broadleaf weed control in cereal and oilseed crops. Leading agrochemical manufacturers introduce this molecule via nucleophilic aromatic substitution to construct active scaffolds featuring trifluoromethyl substitution, which enhances the environmental persistence and biological selectivity of the final pesticide formulations. Regulatory and process control focuses on purity profiles and trace contaminant management through multi-stage purification and solvent exchange protocols. Industry compliance standards
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2. Pharmaceutical Intermediate for Anti-inflammatory API SynthesisMany pharmaceutical manufacturers utilize this compound in the multi-step synthesis of nonsteroidal anti-inflammatory drug (NSAID) precursors. The amino and bromo functionalities provide unique points for regioselective substitution and cyclization reactions, supporting the creation of high-purity, structurally rigid aromatic pharmacophores. Batch records demand full traceability from raw material through each process stage, with analytically confirmed residual levels of by-products limited under ICH and local pharmacopeia protocols. Industry compliance standards
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3. Advanced Material Manufacturing: Specialty Liquid Crystal CompoundsWithin the specialty material sector, this aromatic derivative is incorporated as a core intermediate for synthesizing tailored liquid crystal monomers used in display technologies and sensor applications. Its trifluoromethyl group imparts critical dielectric anisotropy, aiding in the alignment and switching characteristics of high-contrast nematic and smectic liquid crystal displays. Manufacturers precisely add the compound during Grignard, Suzuki, or Buchwald-Hartwig coupling stages, relying on the precise placement of the bromine atom for subsequent functionalization steps. Industry compliance standards
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4. Dyestuff Industry: High-performance Azo Dye SynthesisThis aromatic amine derivative acts as a flexible diazonium salt precursor in the synthesis of high-performance azo and anthraquinone dyes. Regional dyestuff manufacturers rely on its controlled amination and bromination for introduction into diazotization baths, where coupling with activated phenols or naphthols yields highly stable, lightfast dyestuffs for industrial textile, inkjet, and plastic applications. Process chemists manage batchwise addition with strict attention to exothermic reaction control and endpoint colorimetric monitoring. Industry compliance standards
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In our everyday work producing 2-Amino-5-Bromobenzotrifluoride, we see all the details that matter in chemical manufacturing. We’ve watched this compound go from a niche product to a staple in both pharmaceutical discovery and specialty material development. Our teams handle this aromatic amine daily, controlling its synthesis down to levels that leave little room for deviation. Model numbers differ depending on customer requirements, but we’ve set benchmarks to ensure the same level of purity every time: clear color, consistent melting range, and controlled trace metals, since these factors shape downstream performance.
2-Amino-5-Bromobenzotrifluoride stands out for chemists who need a strong, reliable foundation for active intermediates. Behind the chemical name, the backbone remains simple: a trifluoromethyl group holds the para position, an amino group supports reactivity, and a bromine atom enables versatile cross-coupling reactions. We see requests for its most common grade—a pale to off-white crystalline powder, minimum 98% purity—since trace impurities will affect results. Our team puts a lot of focus on keeping the product free from moisture and residual solvents; left unchecked, those can degrade the compound or introduce variability in reaction outcomes.
Aromatic amines with halogen and fluorine components aren’t all interchangeable. Over years of manufacturing, we’ve noticed that even minor differences in ring substitution patterns will have a big impact on reactivity and selectivity. Compounds like 2-Aminobenzotrifluoride or 2-Amino-4-Bromobenzotrifluoride offer alternative substitution points, but the 2-amino, 5-bromo, 4-trifluoromethyl orientation strikes a balance between electron-donating and electron-withdrawing effects. This unique pattern means our product often gets selected as a coupling partner in C-N and C–C bond-forming reactions for pharmaceutical ingredients and specialty dyes.
Some might wonder why not just use a basic bromoaniline or a non-fluorinated version. Our lab teams have experimented with those, but results often come up short, especially in advanced synthesis. The trifluoromethyl group increases metabolic stability in drug development and improves solubility or binding affinity in agrochemical design. The bromo group activates the ring just enough to allow Suzuki or Buchwald-Hartwig couplings without excessive byproduct formation. We’ve spent years scaling up and trouble-shooting to make sure our customers can count on this consistency batch-to-batch.
Producing this compound goes far beyond mixing and heating. A lot of work happens behind the scenes to make sure catalysts don’t carry over, copper and iron levels stay below demanding specs, and the final product doesn’t pick up stains or dullness from side reactions. Every reactor operator knows how quickly thermal runaways can cause discoloration or odor problems; we fine-tune temperatures and manage timelines by the hour so purity doesn’t suffer. Solids separation requires exact timing, since incomplete filtering causes clumping or agglomeration.
We’re sometimes asked whether the high-purity material really makes a difference. It absolutely does. Traces of palladium or copper from upstream steps will poison next-step catalysts at even low ppm levels. Similarly, inconsistent particle size hinders blending and slows down feeding into continuous flow systems. Our engineers monitor these measures, since complaints about “sticky powder” or “clogged hoppers” trace back to how carefully we’re controlling crystallization.
Over decades of collaboration with pharmaceutical and agrochemical developers, we’ve seen 2-Amino-5-Bromobenzotrifluoride pop up in many roles. In medicinal chemistry, it’s often a key intermediate for kinase inhibitor scaffolds or fluorinated heterocycles that enhance drug-like properties. Developers targeting CNS or anti-cancer candidates use the compound’s halogen- and trifluoromethyl-substituted core to play with metabolic pathways and bioactivity.
In crop protection and fine material sectors, our product forms the skeleton for sturdy, weather-resistant molecules. The trifluoromethyl group adds lipophilicity and UV-stability, vital properties for agrochemicals with outdoor applications. We’ve shipped the product to research teams working on pigments, dyes, and specialty coatings—where color fastness and thermal resistance depend on carefully chosen aromatic substituents, not generic starting materials.
Sometimes customers push the compound into less-expected formats: from high-performance liquid crystals to fluorinated polymers. We’ve received feedback from manufacturers who found that other isomers either lacked sufficient branching or failed to meet final purity demands. That’s why they settled on our version—and we keep these stories in mind during every scale-up.
Every operator at our plant knows the stakes involved in making batches that don’t just meet but hold steady against customer specs. We rely on batch records and digital instruments, but more often we catch deviations by watching color changes or checking for subtle odors that indicate things have gone off course. Troubleshooting often demands raw experience, like recognizing the faint difference between a well-crystallized powder and one with excess amine residue clinging at the edges.
Our customers often measure their own incoming material quality far beyond the required certificate of analysis. We see them check for trace metals, specific melting point, low-end UV absorbance, and absence of persistent organic impurities. Once, a customer flagged a lot for a minor sulfur content issue. We traced the culprit to an upstream solvent batch, tuned sourcing, and installed an extra test point. The extra work paid off: repeat orders rose, and their confidence in our product’s reproducibility grew.
Budget versions exist—usually produced by cutting corners in washing steps or sidestepping full metal removal. Over the years, competitors have put out cheaper lots, but these often show yellowish tints, elevated water, or suspect halide levels. Downstream users in pharma and electronics regularly report trouble with these. Fouled reactors, unpredictable crystallization, and mystery residues that show up only after critical coupling steps all cost time and product.
We’ve learned that a few dollars saved per kilogram doesn’t make up for the hours lost to reruns, filter plugging, or catalyst poisoning. So we made the call to stay strict about raw material audits, filtration timing, and drying protocols. Every time a customer returns to us after trying a lower-cost supplier, it’s a reminder that reliability matters. Our long-standing customers depend on the real, testable difference in clean product and reproducible reactivity.
Not every customer can store and handle chemical intermediates as easily as a warehouse or research institute. We know that the amine group in 2-Amino-5-Bromobenzotrifluoride tends to react with the open air, pulling in moisture and even picking up traces of CO2. So, we pack our drums under inert gas and urge end users to keep containers tightly closed, preferably under nitrogen or argon. More than one client has dealt with crusty solids or yellowing from improper storage, leading us to offer training sessions and simple handling guides.
We’ve also fielded questions about waste minimization and safe handling. This compound doesn’t pose the same volatility risks as some liquid aromatics, but dust and residue still need containment. Our plant uses dust collectors and strict containment so that clean-up doesn’t turn into a hazard. End users who value cleanroom or GMP conditions benefit from our diligence upstream. Our on-site support can walk partners through setup—from storage tips to workflow integration—so nobody has to relearn safety the hard way.
During decades of production, we’ve worked closely with clients who debate the merit of similar compounds: perhaps 2-Amino-4-Bromobenzotrifluoride or simple bromoanilines. More than a few times, a customer tried switching starting materials and found yield or selectivity dropped. Sometimes, cross-coupling efficiency halved, or new byproducts appeared. The location of each substituent on the aromatic ring controls electron flow, steric fit, and rate of further functionalization.
Empirical evidence supports our approach: only certain substructures match the requirements for new molecular entities or advanced materials. The 2-amino-5-bromo orientation avoids steric crowding near the ortho position, yet keeps both groups available for stepwise transformations. The trifluoromethyl at position 4 pulls electron density from across the ring, modulating both nucleophilicity and stability. We see this reflected in the brisk demand from R&D teams who’ve tried other isomers and now specify our compound in their synthetic plans.
Sticking close to the same upstream intermediates often saves customers headaches later. In our facility, switching feedstocks or slightly altering substitutions quickly reveals the trade-offs: new side-reactions, hard-to-isolate crystals, or increased waste. We keep our team educated on the latest research—staying on top of structure-reactivity trends—so we can provide meaningful advice to both new and veteran users.
In the last decade, we’ve watched demand shift from kilo-scale pilot runs toward multi-ton orders. The pharma sector leads the way, but advanced materials and pigment innovators now order on a regular basis. We see particular interest from teams working on oncology, antiviral, and agricultural research, since the trifluoromethylated aniline backbone shows promise in boosting both biological activity and chemical robustness. Sometimes requests come with extra purity demands or packaging tweaks depending on where the product heads next.
Emerging markets have started asking for this intermediate as regulatory environments tighten and global supply chains grow more transparent. Our batch tracking, sample archiving, and forthright sharing of test results come out of these changing standards. New customers often approach us having been frustrated by vague sourcing or lack of accountability from less-established firms. Here, our track record serves us well; repeat audits and successful field visits show that long-term commitment isn’t just advertisement fluff.
Processes never stay static in modern chemical manufacturing. Our R&D teams keep working to tune syntheses for higher yields, lower waste, and better resource use. Every gram of product lost to incomplete filtration becomes a lesson. Feedback from downstream users helps us tackle bottlenecks or variability, whether in particle milling or solvent exchange. A pharma partner once shared that minuscule batch-to-batch color changes hurt their analytical workflow; so, we invested in stricter controls during the drying stage to keep final product appearance consistent.
Sustainability ranks higher across the industry than it ever has before. We’re testing solvents with lower environmental footprints and seeking automation steps to reduce manual intervention. Everyone in our supply chain wants assurance that we’re limiting waste and supporting safe working conditions. This ongoing dialogue with our partners pushes us to do better—not just for compliance, but because we see fewer errors and stronger business results.
We spend plenty of time swapping notes with research labs and production leaders who actually use our products. One recurring message is clear: specifications on paper don’t tell the whole story. What matters most in practical synthesis is predictability. If a batch flows just like the last one and purifies cleanly, that wins more trust than dozens of certificates. We engineer our process and QC not just for statistical compliance, but for the hands-on needs of the folks dosing, transferring, and purifying this compound day after day.
Over the years, we’ve found that collaborative troubleshooting makes for better products on both sides. Sometimes a user encounters solubility problems in a new solvent, or sees an unexpected color when scaling up. Our experience with granularities, dusting tendencies, and batch aging often points to practical fixes: adjusting particle size, reducing oxygen exposure, extending desiccation, or even rethinking storage conditions. Instead of simply saying “meets spec,” we dig for the real cause and feed lessons back to our operators.
In our field, reputation builds slowly and can evaporate with one bad lot. Our stance comes down to consistent, evidence-backed results, not marketing claims. We rigorously monitor every stage starting from raw material selection, making sure no unwanted byproducts sneak through. Investing up front in robust process design and routine operator training keeps issues rare. Batch failures, though frustrating, turn into learning opportunities rather than losses swept under the rug.
Repeat business proves the approach works. Customers reach out for advice ahead of new product launches and rely on our documented process history to meet internal QA. That kind of trust comes from delivering on promises month after month. Our job goes beyond meeting compliance; we prioritize keeping production lines running smoothly downstream. Every positive report funnels motivation back to our shop floors, labs, and logistics teams. Long-term partnerships sustain innovation, giving everyone room to tackle new challenges with a confident foundation.
Looking ahead, we expect applications will keep broadening as research confronts new challenges in health, environment, and technology. Customers need reliable sources of well-characterized intermediates to try bold new chemistry. We keep building on our experience, proactively reaching out to early-stage developers and big industry players alike. By tailoring feedback loops between our team and end-users, we refine everything from packaging configurations to analytical data reporting.
As more organizations scrutinize supply chain traceability and want concrete evidence of performance, our approach stays anchored in open communication, direct technical support, and measurable quality. From synthesis through to packed drum, every member of our team knows their decisions impact not only reaction bottle yields but confidence built over years of work together.
Real progress in chemical manufacturing doesn’t come from flashy claims or cost-cutting shortcuts. It comes from showing up, doing the right work, and respecting the science and the people who rely on every shipment. Through every batch, we aim to give researchers and manufacturers the tools they need to deliver discoveries and dependable products to their own customers. Our daily responsibility: keep making 2-Amino-5-Bromobenzotrifluoride to careful, consistent standards—because hands-on chemistry deserves nothing less.