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HS Code |
511900 |
| Product Name | 4-Amino-3,5-Dichlorobenzotrifluoride |
| Cas Number | ome938-72-5 |
| Molecular Formula | C7H4Cl2F3N |
| Molecular Weight | 230.02 |
| Appearance | Light yellow to beige solid |
| Melting Point | 74-77°C |
| Density | 1.59 g/cm3 |
| Solubility In Water | Insoluble |
| Purity | Typically ≥98% |
| Synonyms | 4-Amino-3,5-dichloro-α,α,α-trifluorotoluene |
| Smiles | NC1=CC(C(F)(F)F)=C(Cl)C(Cl)=C1 |
| Storage Conditions | Store in a cool, dry, well-ventilated area |
As an accredited 4-Amino-3,5-Dichlorobenzotrifluoride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White HDPE bottle containing 100 grams of 4-Amino-3,5-Dichlorobenzotrifluoride, screw cap, hazard labels, and printed product details. |
| Shipping | 4-Amino-3,5-Dichlorobenzotrifluoride is shipped in tightly sealed containers, protected from moisture and direct sunlight. It is transported as a hazardous chemical, adhering to relevant regulations (e.g., DOT, IATA, IMDG), with appropriate labeling and documentation. Proper handling procedures, including PPE, must be followed to ensure safe delivery and storage upon arrival. |
| Storage | 4-Amino-3,5-Dichlorobenzotrifluoride should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizers. Protect from direct sunlight and moisture. Clearly label the container and ensure it is kept away from heat and open flames. Use appropriate secondary containment to prevent accidental release or spills. |
Applications of 4-Amino-3,5-Dichlorobenzotrifluoride in Industrial ManufacturingAs an established manufacturer, we supply 4-Amino-3,5-Dichlorobenzotrifluoride to high-standard industrial customers across several specialized sectors. Each downstream scenario outlined below has been selected based on verified industrial practice and documented end-use, focusing on fields where this intermediate supports precise formulation requirements, regulatory compliance, and controlled manufacturing processes for advanced chemical goods. 1. Agrochemical Synthesis: Production of Trifluoromethylated Herbicide IntermediatesLeading agrochemical companies incorporate this intermediate to synthesize advanced herbicide actives targeting resistant weed strains. The compound serves as a core building block in phased batch reactions, offering molecular stability and specific halogenation for downstream products. Formulators monitor purity and reactivity to meet both national and international crop protection safety requirements. Industry compliance standards
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2. Pharmaceutical Intermediate: Synthesis of Trifluoromethylated APIsResearch-based pharmaceutical manufacturers employ this compound as an essential intermediate in the multistep synthesis of active pharmaceutical ingredients, especially where halogenated aromatic rings impart pharmacological activity. Process chemists precisely dose and purify this precursor in accordance with stringent GMP protocols for regulated final actives. Industry compliance standards
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3. Specialty Dye and Pigment Manufacturing: Synthesis of Trifluoromethylated Azo DyesLeading colorant producers utilize the compound in the synthesis of high-performance azo and anthraquinone dyes that exhibit enhanced chemical resistance and colorfastness. The compound’s halogen and trifluoromethyl substituents promote stability for engineered textile applications, including technical fibers and process-resistant fabrics. Operators strictly control its addition to ensure batch uniformity and downstream compatibility. Industry compliance standards
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4. Electronic Materials: Manufacturing of High-Performance Liquid Crystal Display (LCD) IntermediatesProducers of advanced electronic chemicals select this raw material for specialty liquid crystal compounds, as its trifluoromethyl and chloro substitution offers targeted dielectric and mesogenic properties. Downstream integration focuses on tight control and high-purity requirements, supporting precise physical characteristics for high-definition displays and optical films. Industry compliance standards
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5. Crop Protection: Synthesis of Insecticide Active IntermediatesChemical manufacturers specializing in crop defense solutions select this compound when synthesizing insecticide actives where specific halogenation patterns offer targeted insecticidal activity. Its presence delivers defined structural fragments that determine the bioactivity and environmental persistence of final commercial agrochemicals. Industry compliance standards
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Working day in, day out with specialty chemicals, you develop a sharp eye for what really sets one molecule apart from the next. 4-Amino-3,5-Dichlorobenzotrifluoride is one of those compounds you come to appreciate after years on the production floor. Judging by its technical-sounding name, it’s easy to underestimate the real-world value it continues to deliver in downstream manufacturing, whether for active pharmaceutical ingredients, crop protection compounds, fine chemical intermediates, or custom synthesis routes. This compound, catalogued by many under CAS number Ending in 1806-26-4, brings together the reliability of well-established aromatic chemistry with enough versatility to serve niche applications that demand something extra.
Our daily production experience brings home the difference that small molecular tweaks can make. Substituting just a couple of chlorine atoms and attaching that amino group on the benzene ring creates plenty of room for clever synthetic strategies down the line. Add the high electronegativity of the trifluoromethyl group, and you see a molecule that both resists unwanted reactions and confers enhanced reactivity in key positions. Not every aromatic amine can offer that combination, and those differences matter when scale, reliability, and long-term supply come into play.
There’s nothing quite like seeing a batch come together to spec after careful purification and analytical testing. Production lines that run this compound mix the challenges of halogenated aromatics with the stability requirements of pharma intermediates, where even a marginal impurity can ripple through an entire synthesis campaign. Years of experience prove that close control over every detail–from choosing the right solvent for nitration, down to the fine-tuning of crystallization–can yield a product that meets the expectations of the world’s most demanding process chemists.
Realistically, clients know that technical specs are not just boxes to tick. Instead, they mean the difference between product that integrates seamlessly into the next stage of synthesis, and batches that bog down projects with purification issues or chronic off-spec complaints. 4-Amino-3,5-Dichlorobenzotrifluoride in our facility consistently meets tight purity targets. Most buyers work with content above 99 percent and residual solvents far below industry norms. Every batch we send out moves through HPLC, GC, and NMR checks. Over the years, we learned not to rely on shortcuts—minimal trace contaminants today may amplify into bigger headaches during downstream application tomorrow.
Particle size and form factor shape efficiency at scale. Some downstream processes run best with uniform powders, for faster dissolution or predictable mixing in reactors. Other users request crystalline product or even coarser granules, depending on their own handling systems. We maintain flexible processing conditions and packaging formats, driven directly by years of feedback from custom synthesis partners and in-house process engineers alike. That kind of empirical learning has pushed us to continuously refine blending modes, optimize drying conditions, and spot impurities even before an analytical instrument flags them.
After handling dozens of similar halogenated aromatic amines, it becomes clear why 4-Amino-3,5-Dichlorobenzotrifluoride finds repeat buyers year after year. Its performance isn’t just about numbers on a page. The dichloro groups at positions three and five, together with the electron-withdrawing trifluoromethyl moiety, provide excellent chemical stability. That makes it less sensitive to oxidation, less likely to decompose under moderate heat, and more forgiving of storage than cousins with less robust substitution patterns. You see fewer headaches in the warehouse, fewer surprises waiting in the drums or bags during inspection months after the product leaves our building.
The amino group at position four turns the aromatic core into a fertile entry point for further transformation. Experienced process chemists use it for diazotization, acylation, or coupling to a range of downstream heterocycles and functional motifs. This group’s reactivity makes the compound invaluable for multi-step syntheses in drug discovery and agrochemical development alike. With other isomers or unhalogenated analogs, reactivity maps shift, selectivities drop, and yields of target compounds follow suit. No academic publication’s spectral data alone prepares you for the practical differences felt during hundreds of synthesis cycles in real plants.
Our team sits close to the heart of global innovation in pharmaceuticals, crop science, and performance materials. As a precursor or intermediate, 4-Amino-3,5-Dichlorobenzotrifluoride forms the backbone of several active ingredients and tailor-made additives. In drug discovery, the molecule’s unique electronic makeup offers a platform for selective transformations, especially where introduction of further nitrogen or halogen groups would otherwise prove unmanageable. The aromatic core’s stability under mild and harsh conditions alike means R&D teams do not waste cycles or resources screening alternate intermediates.
Crop protection chemistries also favor this intermediate. Manufacturers of certain fungicides and herbicide classes rely on the compound’s controlled reactivity to attach specialized side chains, build new heterocyclic scaffolds, or fine-tune water solubility and persistence. Regular exposure to procurement cycles from these sectors gave us early notice of shifts in market trend—greater regulatory scrutiny and calls for lower process waste, for example. These are not academic abstractions. Adapting purification systems to minimize by-product streams, or installing real-time analytics to catch trace contaminants, brings value directly to the field.
Functional material developers have adopted this molecule too. Its halogen and trifluoromethyl pattern enables new performance coatings and specialty polymers. Years ago, customers requested only crude intermediates, suitable for downstream distillation. Demand has shifted now. Users expect high consistency, as functional coatings require minimal batch-to-batch variation. We retooled reactors, improved solvent recovery, and established secondary filtration to ensure the tightest possible control—steps only worth undertaking when you understand the distinct requirements of each vertical.
Direct comparison with other aromatic amines brings out the specifics. For example, moving from a mono-chloro to a di-chloro compound, you gain substantial advances in chemical resistance and shelf-life. You also open up synthetic routes closed to less heavily substituted cores. Add the trifluoromethyl group, and not only does the core move to higher thermal stability, but it also brings down volatility—meaning the compound won't degrade or evaporate when held above room temperature for brief periods during operations.
Working with unsubstituted aminobenzotrifluorides or mono-substituted versions, buyers often report higher degrees of microbiological fouling, more rapid hydrolysis under humid conditions, or color instability over time. We’ve seen complaints drop close to zero since switching customers to the 3,5-dichloro profile. Operational experience, warehouse records, and process logbooks all show reduced re-testing and lower losses from off-color degradation.
Even among isomeric dichloro analogues, the placement of chlorine atoms affects regulatory status, reactivity, and toxicity risk. Our chemists have performed extensive comparison testing, and the 3,5-arrangement consistently outperforms alternatives in both reproducibility and predictable downstream processability. For buyers pursuing just-in-time inventory management, reduced variability brings peace of mind, especially as regulatory requirements around trace contaminants have only grown stricter over the last decade.
It’s easy to talk theory, but the real learning happens when you scale from pilot to plant. Early development with 4-Amino-3,5-Dichlorobenzotrifluoride taught us that the nitration and halogenation steps demand full attention. Safe transfer and storage of intermediates, with full real-time monitoring and redundant safety barriers, are musts. Miss a cooling cycle or rush a filtration step, and batch quality drops. Running several thousand-liter reactors, we saw the importance of active in-process control compared to over-reliance on endpoint testing.
We’ve invested heavily in recovery and reduction of process emissions. For our site, this didn’t come from regulatory mandates alone. Operators gave early feedback on residual odors or trace emissions, which we fed back into ever tighter closed-loop control and enhancements to scrubber efficiency. Maintaining worker comfort and safety pays dividends in lower turnover and better batch attention. In an industry where surprises often bring downtime, these lessons from the plant floor shape everything we do.
Waste minimization brought another round of innovation. We recovered more solvent from mother liquors by switching to continuous-mode rotary evaporators and optimizing distillation columns for lower energy use. That may sound prosaic, but every liter saved trims both costs and environmental footprint, win-win outcomes that go straight into our regular supplier reviews and sustainability audits.
Trained technicians run every lot of 4-Amino-3,5-Dichlorobenzotrifluoride through a suite of analytical tests before it moves out for delivery. Over fifteen years, we built a reference library of more than two thousand batch spectra, tracking trends in impurity patterns, response to storage conditions, and impact of varied process temperatures. The result is a degree of prediction and control that shortens troubleshooting times and builds confidence for our downstream partners. Whenever customers trial a new route or scale up a new product family, they frequently consult these data sets to benchmark performance.
Trace metal content receives growing scrutiny, especially for pharma and crop chemistry buyers. Our own improvements in raw material selection and cleaning protocols cut the ppm levels of common process metals nearly in half. Several multinational buyers switched to our supply after finding out lot-to-lot fluctuation in their own legacy sources. This emphasizes the competitive edge direct manufacturers with real skin in the production game hold, compared to resellers or brokers passing on whatever material they can source.
You see the value of direct experience most clearly when volumes go up. Large buyers appreciate transparency, and our policy makes sure every kilo supplied can be traced back to specific lots, including all logged process conditions and analytical notes. That approach turns one-off customer questions into shared learning opportunities, often driving changes in both our own practices and the expectations of the whole supply chain.
No commentary rings true without mentioning the hurdles that crop up across the specialty chemical landscape. Regulatory pressures tighten every year. Markets in Europe and East Asia now mandate stringent documentation for residual solvents, trace organics, and potential genotoxic contaminants. Our response has been early investment in analytical capability—LCMS, GCMS, ICP detection—making it possible to offer lot-specific documentation that passes the heaviest audits.
Supply chain disruptions also affect us day to day. Weather events or abrupt logistics blockages can threaten to upend established supply models. Lean inventory practices downstream mean expectations for lead times continue trending downward. To adapt, we hold more intermediate and finished-stock buffer in secure, climate-controlled storage. Feedback from production partners tells us this approach has cut the risk of missed campaigns and emergency rescheduling, especially during years where upstream shortages sent panic through the market.
Buyers paying attention to sustainability push for reduced environmental impact, not just greenwashing claims. As manufacturers, we measure waste solvents and side streams at every stage, publishing yearly performance metrics and openly collaborating on process intensification strategies. Where isolation or drying was once energy intensive, we’ve moved steadily to heat recovery, rejected energy absorption, and tighter solvent recycling. These steps prove more meaningful than cosmetic changes, both for cost structure and life-cycle assessment.
Worker safety remains central. Aromatic amines and halogenated solvents pose real occupational risks, demanding careful facility zoning, high-efficiency ventilation, and rigorous PPE policies. We foster a culture where operators and chemists alike flag hazards and participate directly in ongoing process reviews.
Partnerships with leading users have shaped our offering over time. Some customers chase higher throughput in continuous processing, needing higher batch consistency and tighter particle size ranges. Others look for bespoke blends or tailor-made intermediates a step removed from the core structure. These dialogues—it’s not a simple supply relationship—help us tweak our own process flows and analytical priorities.
Long-term buyers rely on more than standard data sheets. They ask for access to our analytical team, arrange joint new product development cycles, and share insight from their own scale-up and validation campaigns. The trust built in these collaborations means when a regulatory change or process pivot comes, we adapt together. The feedback loop never closes. Requests one year for dryer, more dust-free product led to investments in new milling and compaction gear. New shelf-life data requirements spurred improved moisture barriers in packaging. This back-and-forth both grounds and challenges us.
Smaller developers also bring creative applications to our door. Occasional inquiries from materials science startups and university groups led to pilot-scale experimentation, sometimes introducing us to whole new synthetic families or late-stage modifications. What starts as a sample send-out can result in partnership, where fresh eyes bring new value to a molecule we thought we knew inside-out.
Upstream demand for halogenated and trifluoromethylated aromatics continues strong. Pharmaceutical innovation increasingly relies on robust, high-purity intermediates, while high-performance agriculture demands restricted-persistence compounds that meet shifting regulatory approval. Rising global interest in hard-wearing, chemically resistant coatings and materials also spurs on the use of this compound as a precursor.
Digitalization also pushes change in our corner of the sector. Customers now seek not just purity, but electronic batch traceability, online access to certificates of analysis, and near instant technical support. Responding to these needs drove our own investments in ERP backbone, laboratory information management systems, and cloud-based customer portals. Transparency earns real customer loyalty, and in regulated sectors, it can mean the difference between a one-off win and a decade-long partnership.
Facing ongoing raw material volatility, more buyers stress the importance of local or regional production capabilities. Our strategy places heavy weight on control at every step, making sure we do more than act as a conduit for finished product. Customers expressing frustration with inconsistent third-party sources have often shifted to us after failed procurement cycles. By keeping our feet firmly in every phase of the process, we reduce risk for ourselves and for everyone who integrates our material into their own manufacturing stream.
Direct, hands-on experience in synthesizing, handling, and shipping 4-Amino-3,5-Dichlorobenzotrifluoride gives a vantage that cuts through technical literature and market speak. The difference between our methodology and those of generic suppliers rests in accumulated know-how, decades of feedback, and the imperative to innovate at the nuts-and-bolts level. This compound, despite its complexity, remains accessible and dependable for innovators and mature players alike, thanks to a manufacturing commitment anchored in transparency and improvement. Our cycle of production, monitoring, and learning continues, bearing out the value of this molecule in real applications—and reaffirming that close attention to detail often spells the difference between routine supply and real partnership.