|
HS Code |
378215 |
| Name | 4-Chloro-2-Fluorobenzotrifluoride |
| Synonyms | 1-Chloro-3-fluoro-5-(trifluoromethyl)benzene |
| Chemical Formula | C7H3ClF4 |
| Molecular Weight | 198.55 g/mol |
| Cas Number | 57381-18-5 |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 143-145°C |
| Melting Point | -13°C |
| Density | 1.46 g/cm³ at 25°C |
| Refractive Index | 1.4550 at 20°C |
| Flash Point | 46°C (closed cup) |
| Solubility | Insoluble in water; soluble in organic solvents |
| Purity | Typically ≥98% |
| Storage Conditions | Store in cool, dry, well-ventilated place |
As an accredited 4-Chloro-2-Fluorobenzotrifluoride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 500 mL amber glass bottle, sealed with a secure screw cap and labeled with chemical name, hazard symbols, and storage instructions. |
| Shipping | 4-Chloro-2-Fluorobenzotrifluoride is shipped in tightly sealed containers, protected from moisture and light, and stored in a cool, well-ventilated area. It is classified as a hazardous chemical and should be handled according to local and international regulations. Proper labeling and documentation are required throughout transport to ensure safe and compliant shipping. |
| Storage | 4-Chloro-2-Fluorobenzotrifluoride 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. Protect from direct sunlight and moisture. Ensure proper labeling and keep away from food and drink. Follow all relevant chemical safety regulations and guidelines. |
Applications of 4-Chloro-2-Fluorobenzotrifluoride in Industrial ManufacturingOur manufacturing processes supply 4-Chloro-2-Fluorobenzotrifluoride for several advanced chemical industries, serving as an intermediate in high-value production lines. The following sections detail genuine downstream industrial applications based on in-plant integration, market-specific compliance, formulation practice, and end-product usage across global markets. 1. Agrochemical Active Ingredient SynthesisMajor agrochemical producers use this compound as a key halogenated intermediate for synthesizing selective herbicides and fungicides. It enters during the coupling and chlorination steps, enhancing active ingredient stability and field performance. Precise quality control ensures consistent reactivity to limit undesired by-products in multi-step reactions. Production sites configure dosage to achieve target molecule purity, supporting large-scale batch and continuous campaigns. This approach suits regulated markets requiring global capacitation and audits. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Pharmaceutical Intermediate ProductionPharmaceutical manufacturers in regulated markets incorporate this intermediate within API synthesis routes for fluorinated and chlorinated scaffolds. Its halogen profile supports the construction of specialized heterocyclic cores capable of improved pharmacokinetic properties. The integration occurs in dedicated cGMP-compliant suites with reactor-grade feeding, followed by purification and in-process analytical control. Each batch is tracked to ensure traceability and regulatory conformance for drug master file submissions. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Specialty Polymer SynthesisProducers of high-performance specialty polymers select this material for incorporation within engineered copolymers and specialty monomers. Its trifluoromethyl group introduces hydrophobicity and chemical resistance. Processing requires staged feeding into copolymerization reactors under controlled temperature and agitation. Final product properties are tuned by varying the loading ratio and monitoring molecular weight via GPC and FTIR characterization for downstream application certification. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Electronic Chemical ManufacturingMaterials suppliers to the electronics sector apply this halogenated compound for producing microelectronic cleaning agents and etching additives. Integration takes place in highly purified chemical blending environments, with in-line process QC and material tracking. Strict solvent handling protocols and anti-contamination measures guarantee compliance for critical wafer fabrication. This use meets the purity levels and trace specification requirements demanded by advanced semiconductor and display fabrication customers. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
5. Fine Chemical Intermediate for Dye ManufacturingSpecialty dye plants incorporate this intermediate as a halogenated aromatic building block for specific dye molecule backbones. The input improves color fastness and chemical resistance in final pigmentation applications such as industrial coatings or specialty inks. Batch configuration and dosing depend on the targeted chromophore and required color index. Analytical batch records ensure traceable purity profiles in compliance with downstream textile or ink industry standards. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
6. Chemical Intermediate for Liquid Crystal MaterialsLiquid crystal material specialists use this compound as a precursor for synthesizing halogenated aromatic units within advanced nematic and smectic mixture formulations. Its unique fluorine and chlorine motifs control dielectric anisotropy and temperature stability, critical for display performance. Manufacturing lines run under high-purity procedures, including ultra-filtration and vacuum drying, to satisfy high-purity and trace impurity criteria imposed by major device manufacturers. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive 4-Chloro-2-Fluorobenzotrifluoride 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
Flexible payment, competitive price, premium service - Inquire now!
Day after day, we work with batches of fine chemicals that start simple and grow essential. Among them, 4-Chloro-2-Fluorobenzotrifluoride stands out. This compound, often referenced by its CAS number 367-21-5 or label Model: CF3BTF-42CLF, runs through our reactors and distillation lines not in grand fanfare, but as a backbone support across more advanced products. Our engineers and operators remember each run—its crisp molecular scent, the white-to-clear finished liquid, and the slightly heavier feel compared to similar benzotrifluorides.
We have been manufacturing this chemical for years on dedicated production lines. From raw material procurement through final packaging, we rely on strict QC checks—purity must track above 99.5% for demanding users. Impurities below 0.5% matter because small deviations show up downstream. Years of experience have taught us that the right selection of catalyst and solvent conditions determines not just overall yield, but actual output consistency season after season. Our teams gained that understanding through plenty of trial batches, column adjustments, and those late-night troubleshooting sessions in the control room.
Every molecule of 4-Chloro-2-Fluorobenzotrifluoride that leaves our plant builds something further downstream. We see orders spike from agrochemical formulators right before planting season begins. Farmers seldom think about where their crop protection agents begin, but process chemists know this compound as a core intermediate for several herbicide and pesticide actives. Its fluoro and chloro substitutions give all the difference, lending high selectivity and stability to end-use molecules.
Our pharmaceutical partners value consistency in structure and purity. They call on our production supervisors whenever a slight haze or off-color appears, because downstream reactions in their synthesis steps can stall when even minor trace amounts of unwanted byproducts hitch along. Medicinal chemists demand clean starting blocks, and our experience shows that controlling moisture and trace metals in our production makes a real difference in their yields. More than once, a quick halt and an impurity investigation at our site have prevented major setbacks at theirs.
Electronics and specialty coatings take small but recurring volumes as well. Our facility supplies high-purity lots to circuit board and display manufacturers. They tell us that even microscopic residues or color bodies can trigger process defects or impact device longevity. We know that every drum and carboy of 4-Chloro-2-Fluorobenzotrifluoride we supply must hit these tight tolerances, so we keep our reactors and lines free of cross-contamination and run dryer lines than most bulk producers would bother with.
Part of what makes our 4-Chloro-2-Fluorobenzotrifluoride so versatile lies in its specific substitution pattern. Traditional benzotrifluorides lack either the chlorine or the fluorine atom on the phenyl ring, but here both groups coexist, driving richer reactivity options for downstream chemists. This lets companies design molecules with both increased metabolic stability and tailored electronic effects. For example, the chloro group enables selective halogen exchange or cross-coupling reactions that are hard to achieve with unsubstituted fluorobenzotrifluorides. The ortho-fluorine shifts the compound’s reactivity, opening additional synthetic possibilities. We have watched customers who once settled for simpler trifluoromethylbenzenes switch to our product after recognizing these advantages in their R&D screens or pilot batches.
Benzotrifluorides without these particular substitutions often fall short, especially in agrochemical and pharmaceutical syntheses where small differences create real downstream headaches. Someone new to this chemistry may look at price per kilo as the deciding factor; someone who’s been through failed downstream campaigns knows better. They know that even a half-percent impurity or a single isomeric difference can change a plant output from 99% certainty to days of QA review.
Through the years, we responded to requests for customizations as well. Some users need a slightly adjusted boiling point profile because they integrate our molecules into continuous flow syntheses, and their line designs depend on tight temperature controls. In such cases, our process engineers collaborate directly with customers’ project leads, exploring everything from alternate solvent systems to extended purification steps. These close exchanges drive new capability on both sides, sharpening not just our own process skills, but our customers’ outputs too.
Markets often quote 4-Chloro-2-Fluorobenzotrifluoride by broad label—high purity, low water, and controlled particle size or density if the product’s crystallized. But for us, the real test comes in feedback from returning customers. A pharmaceutical plant flagged us once for a UV-absorbing impurity at levels most wouldn’t detect; their LC-MS screens caught it. We traced the issue back to a specific raw source lot and fine-tuned filtration. In another case, an agrochemical blender wanted a lower halide residue, so we shifted our washing cycles and upgraded a filtration skid. These enhancements rarely show up in a spec sheet, but year after year, they keep our batch acceptance rate high.
True, the published spec reads like a checklist: Purity >99.5%, Chlorine content precisely controlled, moisture below 0.05%, density at 20°C falls tightly in a small range. But in practice, staying inside these lines depends on production discipline and ongoing reviews. Operators run Karl Fischer titrations and GC-FID runs—not just at lot release, but at critical points throughout production. We emphasize to every new technician that an uncalibrated sensor or missed alarm can mean an entire batch is off spec. Our on-site labs run parallel checks to catch issues early. That process sometimes means a pause and a double-clean before shipping, but it keeps trust high on both sides.
We work in close touch with major industry partners, combining lab insight and field data. There’s always a give-and-take—sometimes pushing our synthesis to increase throughput in response to a global shortfall, or holding the line firm on quality if a market spike tempts shortcuts. Having navigated supply shocks, pandemic shipping freezes, and regional demand surges, we put customer trust at the core of our brand.
Our site runs multiple reactors dedicated to trifluorobenzene derivatives, but scheduling and line setup change week to week based on buyer commitments and inventory forecasting. Each production campaign starts with clean-in-place cycles verified by residual solvent testing. Raw fluorinated aromatics and halide reactants arrive by drum, documented and pre-screened for inconsistencies. We track every input by lot number. Storage tanks, piping, and filtration units get scheduled maintenance, since even slight cross-batch residues can lead to cumulative impurity buildup.
Over time, our continuous improvement team has implemented electronic batch records and real-time process monitoring. Senior staff review critical deviations, and operators get ongoing training built from real past incidents. We keep our people up to date because the more they understand the chemistry, the fewer problems we pass forward to our customers. Experienced eyes spot a cloudy filtrate or a subtle odor shift long before numbers show an outlier reading. In this field, trust builds from details like those.
Larger buyers sometimes require full supply chain transparency and multi-site backup sourcing. For key clients, we broker contracts that guarantee reserved production slots. Those shared commitments let us invest in plant expansions when market demand rises. We invite procurement leads and technical project managers to visit our plant, audit our protocols, and compare batches from different runs—finding comfort in seeing process controls first-hand.
Handling chlorinated and fluorinated organics prompts important questions about health, safety, and environmental impact. Our plant design includes containment and scrubber systems tuned to the unique hazards of halogenated vapors and liquid spills. We learned from one production event years ago—a minor gasket failure allowed a small vapor release, triggering alarms and quick shutdown. Since then, we refined redundant monitoring and fitted additional local extraction hoods. These investments look invisible until the day when an incident gets stopped before it spreads.
On the environmental front, we run solvent recovery and minimize energy waste. Spent process materials and cleaning fluids go through incineration at specialized facilities, not routine drain. In partnership with regulatory advisors and local authorities, we exceed disposal standards when new guidelines emerge, even if it means extra logistic costs. Our own engineering team tracks global changes in emission and discharge standards, pre-emptively shifting our protocols so customers don’t face supply gaps when regulations tighten.
Worker training is hands-on and ongoing. Every new production operator spends weeks shadowing senior technicians, not just reading manuals. Safety drills include live response scenarios—containing small leaks, handling acid neutralization, donning protective gear fast. We believe in practical understanding, because these chemicals demand more than theoretical knowledge. The best safety record does not come from a flawless policy, but from an alert, well-practiced team ready to respond.
We hold regular third-party audits from global quality bodies. ISO procedures cover emissions, batch traceability, and documentation of every deviation—no matter how small. Customers sometimes request tailored COA printouts for their own regulatory filings, or to satisfy specific import requirements. We keep an open line to those end users: Technical questions reach us straight from formulation scientists, regulatory reviewers, and sometimes even field application specialists worried about possible trace residues in a finished good.
Occasionally, a shift in regulatory limits—or the emergence of a new downstream impurity standard—forces us to adapt in real time. We learned, for instance, that market trends in Japan and the EU demanded extra guarantees on unseen trace solvents, not just in the intermediate but in all packaging in contact. In response, we revalidated drum liners, started using only tested polymer grades, and matched preservation agents to avoid cross-reactivity. Such moves rarely earn fanfare but matter when audited.
Our own internal feedback is constant. Shift supervisors share daily logs, flagging tiny yield drops or topic deviations. Process chemists review every deviation and improvement suggestion alongside the quality group. Improvement never ends—sometimes that means a new analytical standard or a process tweak that trims energy use for the same output, but always with an eye on what the user sees at their own plant.
Bulk commodity manufacturers might chase speed and scale above all else, but working with specialty intermediates like 4-Chloro-2-Fluorobenzotrifluoride rewards those who prioritize detail and traceability. We stick to smaller, controlled reactor volumes, fast feedback from our in-line analytics, and lots of human oversight. Large-scale automation has a place, but oversight never gets replaced. Travelers walking our plant see operators lifting reactor lids for a quick visual check, not just staring at screens.
Animal health companies and pharmaceutical API syntheses hand us some of the toughest benchmarks. If they call about a failed downstream run or a subpar reaction, we gather our full technical team to audit the batch, re-test, and correct—providing not just replacement, but root cause analysis built from real batch history. Years of working side by side with these sectors shape the way we run production, aiming higher than just a one-time quality pass.
Science moves fast—especially in fluorinated and chlorinated aromatics. We monitor patent landscapes, review upcoming agricultural active ingredients, and watch global regulatory shifts on halogenated compounds. One year, an emergent technology prompted a customer request for a combined halogen substitution not previously standardized. Our process R&D group ran parallel trials, shared real-time data, and fine-tuned catalyst regimes until the specification matched. Market signals—whether from advanced battery manufacturers, new generation electronics, or pharma startups—pull us to keep nimble in improvement. No batch is “just routine,” and every unusual inquiry gets real attention.
Smaller companies, research startups, and academic groups often reach us with early-stage demands. They run limited campaigns or proof-of-concept sampling, but require the same purity and reliability as fortune-sized buyers. Our production adapts quantity and packaging accordingly—whether a custom-packed kilo drum or full tank truck. Our bottling lines can switch from 500mL ampoules for lab scale through 1000L IBCs for scale-ups. Each format gets checked for compatibility, since we saw early on that a mismatch there invites avoidable losses or delays.
Anyone can offer a catalog listing, but real credibility grows batch by batch, through responsive supply and resolute transparency. We never hide deviations or process faults. Decades in this business taught us that fast, honest communication saves long-term trust—even if it means an inconvenient batch rework or a shipment reschedule. Our quality group documents corrective actions not to check a box, but to teach our teams and reassure our partners.
What keeps partners loyal is knowing who’s behind the product and how it’s made. They see our long-tenured staff retain process memory—knowing not just which raw batch worked better, but why tightening a pressure gauge one morning paid off weeks later in finished goods. We take pride in realizing that each drum that leaves our warehouse embodies not just specifications, but relationships, lessons, and improvements that shape our next run.
For those building advanced chemistry from the ground up, compounds like 4-Chloro-2-Fluorobenzotrifluoride aren’t just another supply—they’re a foundation for precision, innovation, and reliability. We welcome questions and scrutiny, sharing not just spec sheets, but our real experience, improvement story, and shared commitment behind every order.