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HS Code |
645022 |
| Product Name | 2-Chloro-3-(Trifluoromethyl)Pyridine |
| Cas Number | 39890-94-3 |
| Molecular Formula | C6H3ClF3N |
| Molecular Weight | 181.54 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Density | 1.418 g/cm³ |
| Boiling Point | 163-165 °C |
| Melting Point | -10 °C (approximate) |
| Refractive Index | 1.464 |
| Purity | ≥98% |
| Solubility | Soluble in organic solvents; slightly soluble in water |
| Smiles | FC(F)(F)c1cccnc1Cl |
| Synonyms | 3-(Trifluoromethyl)-2-chloropyridine |
| Flash Point | 58 °C |
| Storage Temperature | Store at 2-8 °C |
As an accredited 2-Chloro-3-(Trifluoromethyl)Pyridine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle containing 100 grams of 2-Chloro-3-(Trifluoromethyl)Pyridine, sealed with a screw cap, labeled for laboratory use. |
| Shipping | **Shipping Description for 2-Chloro-3-(Trifluoromethyl)Pyridine:** This chemical is shipped in tightly sealed containers under cool, dry conditions. It must comply with relevant hazardous material regulations. Handle with care during transit to prevent leakage or exposure. Transport by ground or air is permissible according to applicable safety and labeling standards for flammable or toxic organic compounds. |
| Storage | 2-Chloro-3-(trifluoromethyl)pyridine should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from direct sunlight, heat sources, and incompatible materials such as strong oxidizers. Keep it away from moisture and store under inert atmosphere if possible. Ensure proper labeling and keep out of reach of unauthorized personnel. Always follow relevant safety regulations. |
Applications of 2-Chloro-3-(Trifluoromethyl)Pyridine in Industrial Manufacturing2-Chloro-3-(Trifluoromethyl)Pyridine serves as a key building block in several advanced chemical synthesis routes, where its unique pyridine structure and electron-withdrawing trifluoromethyl substituent enable specific functionalizations. As a direct manufacturer, we support commercial-scale requirements for multiple downstream industries, ensuring traceability and consistent quality throughout the application lifecycle. 1. Agrochemical Intermediates for Herbicide SynthesisProducers of next-generation pyridine-based herbicides employ this chemical during the heterocyclic assembly steps to introduce both chlorine and trifluoromethyl functionalities, which improve active ingredient specificity and environmental persistence. The compound enters early in the synthetic sequence, primarily contributing to the construction of active cores in selective pre-emergent and post-emergent weed control agents. Industry compliance standards
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2. Pharmaceutical Intermediate in Antibacterial Agent SynthesisThis pyridine derivative appears as a coupling partner in the synthesis of fluoroquinolone antibiotics and other substituted pyridine pharmaceuticals, often utilized for the introduction of a trifluoromethyl group crucial to target molecule biological properties. Pharmaceutical manufacturers depend on its high purity and regulatory compliance for API intermediate batches and scale-up trials. Industry compliance standards
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3. Fine Chemical Intermediate for Specialty CoatingsAdvanced coating manufacturers utilize the compound to introduce enhanced chemical resistance and surface properties in the synthesis of high-value specialty polymers and protective layers. Its presence in pyridine ring formation yields resin systems with heightened resistance to solvents and acids, contributing to industrial coating systems used in electronics and machinery. Industry compliance standards
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4. Intermediate for Veterinary Drug SynthesisVeterinary pharmaceutical manufacturers adopt this raw material within synthesis protocols for active intermediates found in modern parasiticide and antimicrobial veterinary drugs, due to its favorable reactivity in constructing complex nitrogen heterocycles and facilitating the attachment of trifluoromethyl groups, which modulate pharmacokinetics and toxicity profiles in animal health applications. Industry compliance standards
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5. Intermediate for Advanced Chemical CatalystsCatalyst synthesis enterprises use this compound to construct ligand scaffolds for transition metal catalysts, exploiting its trifluoromethylated electronic environment to achieve selective chemical transformations in downstream processes. The tailored pyridine rings derived from this intermediate offer stability and fine-tuned coordination properties important in catalytic hydrogenation and cross-coupling reactions. Industry compliance standards
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Over the last decade, our team has focused on producing pyridine derivatives that support the continuous drive for reliability in high-precision chemical applications. Among these compounds, 2-Chloro-3-(Trifluoromethyl)Pyridine stands out. With the molecular formula C6H3ClF3N and a CAS number of 39890-95-4, this compound has found consistent demand in both pharmaceutical intermediate workflows and the development of crop protection agents. Our onsite chemists, working directly in production, have tested and refined each batch to meet stringent quality benchmarks routinely requested by clients worldwide.
Direct manufacturing enables us to maintain precise control from raw material sourcing to final packaging. Each step gets managed by staff deeply familiar with the product’s behavior—knowledge gained over years in hands-on roles. We have seen just how batch consistency drives process reliability downstream for our clients, especially in multi-step synthesis or scale-up operations. It is not unusual for customers working in advanced manufacturing to choose our 2-Chloro-3-(Trifluoromethyl)Pyridine for its low impurity profile, with typical GC purity above 99.5%. Stability and color consistency, visible to anyone with experience in the field, signal to formulation chemists that their raw materials will yield the same results every time, cutting surprises during pilot runs and commercial production.
Having worked in chemical production, there’s a clear difference between a specification on paper and real, in-field experience. Over time, we’ve noticed that some batches on the global market carry residual starting materials, inconsistent melting points, or shipment delays due to unstable intermediates. Instead of simply offering a standard CAS-numbered product, we refined each parameter—starting with purification and extending to storage and transport. We use custom glass-lined reactors and monitor every phase of chlorination and trifluoromethylation. The team checks product purity not just once, but after each processing step, ensuring nothing off-spec makes it through to the drum or bottle.
Feedback from partners investing in new product development often highlights one fact: minor contaminants in pyridine rings can lead to major costs. By controlling the variables, real improvements emerge in synthetic yield and downstream selectivity—especially critical when used as a key building block in pharmaceutical or agrochemical synthesis. Some lab tests demonstrated that trace carbonyl or chloride impurities, though often dismissed as minor, lead to off-color reactions or incomplete conversions. Purity here isn’t just a selling point—it reduces risk, waste, and rework in every lot our customers handle.
Spec sheets often give flashpoint, boiling range, and solubility data, but in the plant, staff check much more—it might be the way the material flows from bulk storage, how it handles moisture, or how it interacts with solvents like DMF or THF. Our 2-Chloro-3-(Trifluoromethyl)Pyridine typically appears as a colorless to pale yellow liquid or light solid, depending on storage temperature. GC and HPLC results from our production batches consistently exceed the industry benchmark. Most lots come with a precise assay, documented water content by Karl Fischer titration, and certificate confirming absence of common side-products.
Transport and storage demand special attention. Staff in our logistics department have handled enough high-value intermediates to know that even subtle packaging defects can affect stability and pouring properties. Material fresh from our reactors is filled using nitrogen blanketing to minimize oxidative change and color shift. We prefer tightly sealed HDPE drums or amber glass bottles, based on proposed shelf life and customer feedback from actual field use. Colleagues who’ve been in this business long enough agree—small manufacturing adjustments pay big dividends in user satisfaction, especially for materials as sensitive as halogenated pyridines.
We worked side-by-side with research teams using this compound as an intermediate in the synthesis of complex pharmaceuticals, particularly newer classes of anti-infective agents and specialty herbicides. Its highly electron-withdrawing trifluoromethyl group, together with chlorine ortho to the nitrogen, makes it reactive for nucleophilic substitution, cross-coupling, and heterocyclic expansion reactions. Over several seasons, agricultural clients have favored our material for pilot-scale testing and, later, for commercial registration. Efficiency gains from consistent raw material translate directly into competitive formulation launches and regulatory approvals—a reality reflected in repeat orders.
In pharmaceutical research, the product works as a step in creating more advanced nitrogen-containing scaffolds. Our chemists noticed that yields in Suzuki–Miyaura or Buchwald–Hartwig couplings show significant differences based on starting-pyridine quality. For R&D labs, reliable 2-Chloro-3-(Trifluoromethyl)Pyridine serves as a foundation—when every hour in the lab costs money, certainty about each reagent eliminates wasted scale-ups and troubleshooting. Larger multinationals have reported success with our material in preclinical and GxP environments, where even minor deviations in impurity content can delay an entire program.
Many years working around pyridine chemistry taught our team to avoid skin contact, to work in efficient exhaust systems, and to keep containers closed. Exposed surfaces must be cleaned fast to avoid residue accumulation. In the event of any spills, staff rely on rapid containment protocols—small details, but they mean better safety and less material loss. Our operators draw on this experience when advising new clients. Because we manage every kilogram from reaction to ship-out, there’s never a gap between published safety data and field reality.
Disposal and waste management offer their own challenges. Operators trained in our facility separate organofluorine waste, collect it in dedicated drums, and cycle it to a licensed incineration partner—never through ad hoc burning or sink disposal. Our long-term clients adopt similar practices. Many regulatory agencies in Asia, Europe, and North America have audited our plant and confirmed compliance.
Laboratory testing never substitutes for hands-on quality checks. Our QA leads physically inspect every output drum—smell, clarity, and pour points often tell more than a PDF printout ever could. Each lot is archived with a retention sample, labeled with batch details and production date. Over the years, this process detected off-odors or colorations before material ever left the warehouse, saving both time and customer trust. Some manufacturers rush batches to meet tight deadlines, but we schedule lead times to allow for full analysis and any required post-processing.
Our relationship with analytical labs isn’t remote or theoretical. Chemists come to the plant floor to witness scale changes, and operations staff sit in on QC meetings. This tight coordination built a shared language—everyone recognizes the impact a single off-spec batch can have on a customer’s long-term research or manufacturing plans.
Years of comparative studies reveal meaningful distinctions between 2-Chloro-3-(Trifluoromethyl)Pyridine and related compounds. Substitution pattern plays a critical role in reactivity; for example, compared to 2-Chloro-5-(Trifluoromethyl)Pyridine or 3-Chloro-5-(Trifluoromethyl)Pyridine, the compound we manufacture has shown unique regioselectivity in cross-coupling and nucleophilic aromatic substitution reactions. Research partners often need multiple pyridine isomers to isolate structure-activity relationships; too often, similar trivial specifications hide real synthetic obstacles.
Repeated feedback from synthetic chemists reaffirms that using the correct substitution pattern saves weeks in developing a scalable route. Sourcing material directly from us avoids confusion from generic “trifluoromethyl pyridine” listings, some of which group non-identical isomers. Analysts in global pharma companies stress the risk of misidentified compounds: incorrect starting material can lead entire R&D projects down the wrong path, wasting enormous research investment. Clean, well-labeled 2-Chloro-3-(Trifluoromethyl)Pyridine—a product we know and have produced for years—remains a safer foundation for targeted discovery and process development.
From the operator’s perspective, some similar derivatives exhibit markedly different solubility and storage characteristics. The product at hand resists oxidation better than less-substituted chloropyridines, and the electron-withdrawing trifluoromethyl group lowers its basicity, making it more manageable in many laboratory environments. In applications needing deprotonation or metalation, this subtle shift in electron density confers greater control, which process chemists appreciate.
Real-world production rarely proceeds in textbook fashion. Our staff work at scale, handling drums and tanks, not just beakers and vials. Over time, we’ve dealt with supply chain bottlenecks for key reagents, tight international shipping timelines, and stricter regulatory inspections. By keeping core processes in-house, we avoid the delays and uncertainty that come from outsourcing. Through volume procurement and local partnerships, supply of raw materials stays robust. We have invested in redundant storage tanks and solvent recycling systems, so production won’t slow down in the event of shipping disruptions.
Some customers seek smaller pilot-scale samples for early-stage research; others request drums for full-scale manufacture. We tailor packing and dispatch to fit these practical needs. Operators routinely check each lot before dispatch, safeguarding customers from the risks associated with inconsistent supply. This attention to real issues in the manufacturing chain—delay, contamination, and regulatory snags—has kept our lead times short even when global freight markets shifted.
Our responsibility as a producer lies in exceeding safety and environmental standards, not just meeting them. From the beginning, plant upgrades targeted emission controls to catch volatile organic compounds, and our on-site monitoring system records air and effluent streams daily. Waste minimization ranked as a top concern years before it became a regulatory focus. Nitrogen blanketing in storage lances, sealed reactor units, and rigorous PPE protocols for our staff go beyond basic compliance.
Traceability remains a cornerstone of our practice. Each container carries a unique identifier keyed to the exact production shift, reactor, and set of solvents used. Should any downstream event arise, we track and resolve issues rapidly, sparing customers from recall headaches or production stops. The longevity of our quality system draws on the team’s direct manufacturing expertise; operators who see their own product heading to a partner’s lab expect nothing less than their best.
A steady supply of high-quality 2-Chloro-3-(Trifluoromethyl)Pyridine opens new possibilities in both established and emerging applications. Over recent years, active collaboration between our technical staff and customer R&D teams revealed ways in which raw material purity, stability, and reliability catalyze innovation. We’ve supported pilot to commercial transitions in crop protection, where small differences in intermediate quality meant early product launch or regulatory setback. In pharmaceutical synthesis, time after time, reliable intermediates expedite successful batch completion—benefits that flow directly to first-mover advantage in competitive drug pipelines.
Rather than treating our offering as a commodity, we continually refine processes based on user experience. Field data, feedback calls, and process adjustments get logged and acted on. New demands—such as stricter solvent residue limits, ever-tighter impurity spectrums, reduced environmental impact—serve as direct triggers for upgrades on the plant floor.
Few appreciate the daily decisions that go into each kilogram of specialty chemicals shipped around the world. The stakes feel personal to those who produce and use 2-Chloro-3-(Trifluoromethyl)Pyridine in the most demanding applications. Our company stands behind both the quality and consistency of every lot, built on hard-won knowledge and sustained investment in the people and equipment required to get it right.
We invite you to connect with our technical team, share details of your application, and see first-hand how the sum of experience, care, and direct control over manufacturing can support your next breakthrough. At the end of every process, the goal is always tangible—bring reliable products to the world, support our partners, and grow alongside those who value real chemical quality grounded in manufacturing know-how.