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3-Fluoro-5-(Trifluoromethyl)Benzyl Alcohol

    • Product Name 3-Fluoro-5-(Trifluoromethyl)Benzyl Alcohol
    • Alias 3-fluoro-5-(trifluoromethyl)benzyl alcohol
    • Einecs 689-181-4
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
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    Specifications

    HS Code

    808747

    Product Name 3-Fluoro-5-(Trifluoromethyl)Benzyl Alcohol
    Cas Number 886762-19-2
    Molecular Formula C8H6F4O
    Molecular Weight 194.13
    Appearance Colorless to pale yellow liquid
    Purity ≥98%
    Smiles OCc1cc(F)cc(C(F)(F)F)c1
    Inchi InChI=1S/C8H6F4O/c9-6-1-5(4-13)2-7(3-6)8(10,11)12/h1-3,13H,4H2
    Storage Temperature 2-8°C
    Synonyms 3-Fluoro-5-(trifluoromethyl)benzyl alcohol

    As an accredited 3-Fluoro-5-(Trifluoromethyl)Benzyl Alcohol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, 25 grams, with a secure screw cap; labeled with chemical name, concentration, hazard pictograms, and handling instructions.
    Shipping The chemical **3-Fluoro-5-(trifluoromethyl)benzyl alcohol** is shipped in tightly sealed, inert containers to prevent contamination and minimize exposure to moisture or air. Packages comply with applicable regulations and safety standards, typically transported at ambient temperature with proper labeling and documentation for safe handling and tracking during transit.
    Storage Store 3-Fluoro-5-(trifluoromethyl)benzyl alcohol in a tightly sealed container in a cool, dry, and well-ventilated area, away from direct sunlight, heat, and sources of ignition. Keep separate from incompatible materials such as oxidizing agents and strong acids. Use secondary containment if possible. Label the container clearly and follow proper safety and chemical hygiene practices when handling.
    Application of 3-Fluoro-5-(Trifluoromethyl)Benzyl Alcohol

    Applications of 3-Fluoro-5-(Trifluoromethyl)Benzyl Alcohol in Industrial Manufacturing

    As the original producer of 3-Fluoro-5-(Trifluoromethyl)Benzyl Alcohol, we focus on its applications across multiple specialized chemical sectors. Each industrial scenario requires precise compliance, formulation expertise, and process control to deliver consistent quality in downstream manufacturing. The following section outlines its genuine market uses with detailed technical context for industrial buyers, R&D teams, and process engineers.

    1. Active Pharmaceutical Ingredient (API) Intermediate Synthesis

    This raw material serves as an essential building block in the manufacture of several active pharmaceutical intermediate compounds, especially those belonging to the class of fluorinated aromatic medicines. Its unique structural attributes support regioselective synthesis and stable pharmacophores during the multi-step organic processes required for targeted APIs, including selective serotonin reuptake inhibitors (SSRIs) and other neurological treatment candidates. Production lines integrate this material in the early stage aryl functionalization, ensuring that the regulatory quality attributes are consistently met from intermediate to finished drug substance.

    Industry compliance standards

    • ICH Q7: Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP/EP residual solvents and impurity testing protocols
    • ISO 9001:2015 for chemical QC systems in pharma intermediates
    • Regulatory referenced compendia per FDA and EMA guidelines

    Typical usage ratio

    • Introduced at 0.15–0.35 molar equivalents relative to core aromatic substrate; adjusted by route selection, purity of input, and stoichiometric efficiency based on synthesis batch scale

    Downstream process integration

    • Fed into one-pot or multi-step synthetic procedures as the nucleophilic alcohol or as a protected benzyl ether; introduced during aromatic substitution or fluorine-tolerant coupling reactions, followed by isolation of the intermediate

    Final product types

    • Pharmaceutical intermediates for CNS-active ingredient manufacturing
    • Building blocks for patented fluorinated APIs
    • High-value reference compounds for analytical laboratories

    2. Advanced Agrochemical Formulation

    The compound is utilized by agrochemical manufacturers seeking improved molecular stability and enhanced bioactivity in new-generation crop protection actives. Its fluorinated aromatic structure enhances UV resistance and environmental persistence, addressing contemporary challenges in fungicide and herbicide development. Chemical process engineers use this benzyl alcohol as a non-chlorinated nucleus for the safe construction of fluorinated rings within selective crop protection formulas, leveraging compatibility with specific modern emulsification and granulation techniques.

    Industry compliance standards

    • OECD Test Guidelines (Physicochemical, Ecotoxicological)
    • FAO/WHO specifications for active ingredients
    • REACH registration for industrial chemical manufacturing
    • ISO 17025 validated residue and purity analysis

    Typical usage ratio

    • Reactive incorporation at 5–18% w/w within custom synthetic crop-protection actives or as a protected alcohol moiety at 0.2–0.5 molar ratio, depending on targeted formulation and field persistence studies

    Downstream process integration

    • Blended in pre-concentration reactors during the synthesis of fluorinated aromatic scaffolds, typically preceding sulfonation or halogen exchange; participates in core molecule formation before downstream formulation into solid or liquid crop-protection products

    Final product types

    • Active ingredient intermediates for fungicides
    • Precursor compounds for post-emergent herbicides
    • Molecule bases for insect-resistance adjuvants

    3. Custom Liquid Crystal Monomer Synthesis for Display Technologies

    Specialty electronics manufacturers rely on this compound’s fluorinated benzyl structure to enhance dielectric anisotropy and thermal alignment properties in the production of tailored liquid crystals for advanced display panels. Its integration into monomer mixtures supports improved operational temperature ranges and sharper electro-optic responses for next-generation OLED and LCD devices. The compound’s purity and precise electronic characteristics matter greatly when targeting uniform film quality and molecular orientation during downstream preparation.

    Industry compliance standards

    • RoHS 3 (Directive 2015/863/EU) for hazardous substance limits
    • IEC 62474 material declaration guidelines for electronics
    • ISO 9001 quality management for display-grade materials
    • Internal OEM material acceptance criteria for high-precision display segments

    Typical usage ratio

    • Introduced at 1.5–9% mass fraction in monomer or oligomer blends, fine-tuned according to intended birefringence and viscosity parameters for the specific display product

    Downstream process integration

    • Dosed during pre-polymerization with mesogenic precursors in nitrogen-purged batch reactors; its addition occurs prior to the final purification and film casting stages to secure high material uniformity

    Final product types

    • Liquid crystal monomers for high-end display fabrication
    • Specialty film precursors used in OLED or LCD panels
    • Dielectric-modified resins for touch sensor screens

    4. Fluorinated Coating Resin Modifiers

    Industrial coatings producers introduce this benzyl alcohol as a customized modifier to increase chemical and environmental durability of specialty polyurethane and epoxy resin systems, commonly used in high-value architectural, automotive, or aerospace coatings. Its fluorinated structure enhances surface release, stain resistance, and hydrophobicity, meeting rising demand for long-life protective surfaces. Downstream processors engineer resin blends using this raw material to meet project-specific environmental exposure criteria and regulatory requirements.

    Industry compliance standards

    • REACH Annex XVII for permitted industrial use in coatings
    • ASTM D5402 (solvent resistance) and D3359 (adhesion tests) for coating performance
    • ISO 12944-6 for protective paint systems in steel structures
    • OEM-specific QMS and RoHS (for electronics-grade coatings)

    Typical usage ratio

    • Modified at 0.5–3.2% w/w within formulated resin batch volumes, set by exposure rating, substrate type, and hydrophobicity targets validated in end-use degradation testing

    Downstream process integration

    • Dissolved and homogenized during the resin polymerization or immediately prior to curing; incorporated in single- or two-component coating systems where enhanced surface properties must be achieved without impacting cure profiles

    Final product types

    • Chemical-resistant architectural coatings
    • Automotive clear-coat and primer systems with extended gloss retention
    • High-end aerospace component coatings with anti-fouling behavior

    5. Fluorinated Aromatic Building Block for Specialty Polymers

    Materials scientists and advanced polymer manufacturers exploit this molecule as a source of controlled aromatic fluorination, designing specialty fluoropolymer backbones that demand both high thermal stability and altered refractive indices. Target applications include extreme performance films, wire jacketing, and engineered plastics for chemical processing equipment. Process engineers select the compound to achieve property enhancement while supporting scalability in continuous polymerization lines and post-polymer functionalization.

    Industry compliance standards

    • ASTM D3159 for high-temperature fluoropolymer materials
    • ISO 1043-1 polymer composition specifications
    • RoHS 3 and REACH regulatory requirements for manufacturer’s market
    • UL 94 (flammability) ratings for electronic and industrial plastic components

    Typical usage ratio

    • Polymerization input at 4–14 mol% of overall aromatic monomer mixture, fine-tuned to meet processability or desired thermal/refractive parameters, as determined by end-use simulation and pilot line trials

    Downstream process integration

    • Fed into bulk or solution polymerization reactors with other aromatic monomers; material is often pre-activated or masked to control side reactions, followed by devolatilization and pelletization for downstream melt-processing

    Final product types

    • Fluorinated engineering polymers for semiconductor fabrication
    • Specialty cable insulation for automotive or aerospace wiring
    • Transparent high-barrier films for industrial applications
    Free Quote

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    Certification & Compliance
    More Introduction

    Introducing 3-Fluoro-5-(Trifluoromethyl)Benzyl Alcohol: A Manufacturer’s Perspective

    A Substance Born from Precision Chemistry

    3-Fluoro-5-(trifluoromethyl)benzyl alcohol stands out in the crowded field of fine chemical intermediates. We manufacture this compound under controlled environments, putting focus on each reaction parameter and reagent quality. Delivering a high-purity end product challenges basic assumptions; every batch reveals something new, and only experience hones the process. We track each lot from the fluoride source through to the final benzyl alcohol spectrum, learning from even the slightest impurity spike or yield drop.

    Clarity in Production: Batch to Batch Consistency

    Unlike synthetic shortcuts common in commercial scale-ups, our method prioritizes selectivity at the aromatic ring. The fluoro and trifluoromethyl groups must be positioned exactly where science needs them, plain and simple — misplacement tosses out an entire batch. All solvents and catalysts get certified for contaminant levels before use. Separations use column chromatography lined with inert materials, not just for cosmetic purity but because even trace metal residues can wreck late-stage reactions, particularly in pharma and crop-protection sectors. This hands-on oversight turns every bottle that leaves our production floor into a signature of real-world quality, not a marketing claim.

    Specifications: What Sets Our Product Apart

    Specification sheets don’t tell the whole story. The technical details — clear, colorless liquid or low-melting solid; NMR, GC-MS, and HPLC spectra — matter little if the product’s performance falters. Our 3-fluoro-5-(trifluoromethyl)benzyl alcohol generally maintains GC purity greater than 99.5%. We tightly monitor water content, halide residuals, and aromatic byproducts all the way down to black trace bars on an analytical report. Staff in our lab invest their expertise in verifying these numbers for each barrel or flask. No automated process replaces that human scrutiny — it’s the backbone of reliability.

    Where This Molecule Fits in the Real World

    We’ve watched this alcohol carve out a place in pharmaceutical intermediate synthesis and agrochemical development. Its chemistry allows chemists significant flexibility in downstream derivatizations. The 3-fluoro and 5-trifluoromethyl functionalities open pathways that unsubstituted benzyl alcohols simply can’t. In medicinal chemistry, designing candidates with improved metabolic stability or specific biological targets often requires tools like this. Agrochemical innovators also draw paths through its structural motifs, building new scaffolds for herbicides and insecticides that would have been difficult, if not impossible, with older starting materials.

    What We’ve Learned from the Lab Bench

    Reactions involving this compound don’t play by textbook rules. Experienced chemists in our facility know that the electron-withdrawing groups on the ring alter reactivity patterns for both electrophilic and nucleophilic substitution. Every solvent, every stirring speed, even the order of addition can tip the final product yield and purity. We’ve tested a range of synthetic applications – reductive amination, acylation, ether formation – in-house so we speak from experience, not theory. That hands-on work means we pick up on subtleties no standard method or externally sourced compound ever reveals.

    How It Differs From the Competition

    Ordinary benzyl alcohols lack both the fluorine and trifluoromethyl groups that give this molecule its edge. The presence of these groups does more than change a line on a certificate of analysis. They fundamentally alter the compound’s lipophilicity and electronic properties. This alcohol’s increased hydrophobicity plays a part in bioavailability for pharmaceutical intermediates. In process chemistry trials, it resists unwanted side reactions that plague other aromatic alcohols, especially under oxidizing conditions. Process engineers here have tested it head-to-head with standards: in oxidation trials, traditional precursors lost significant yield to over-oxidation or side formation, while the fluorinated compound gave sharper, more predictive behavior.

    Addressing Quality Issues: Our Approach

    No two production runs look the same in this business. Impurities creep in — sometimes through the glassware, sometimes through trace moisture in a supposedly dry solvent. Experienced colleagues recognize the signs long before problems reach the customer. Our habit is to check and recheck the basic physical parameters — density, boiling point — on every lot, because consistency across batches means true reliability. Quality failures don’t disappear on paper; we pursue the root cause until the numbers line up. Lessons from previous missteps inform every tweak to our protocols, reinforcing that there’s no shortcut to trust.

    Supporting Innovation, Not Just Repetition

    Many of our customers push the edge of drug and agricultural technology. Their applications draw on our expertise with this unique alcohol, seeking input on solvent best-practices or reaction optimizations. The bench chemists here don’t turn away from hard questions — more than one custom process owes its success to these gritty conversations. We’ve learned that success is cumulative; the smallest insight during a late-night troubleshooting session can change the trajectory of a project months down the line.

    Supply Chain and Storage Considerations

    3-Fluoro-5-(trifluoromethyl)benzyl alcohol calls for careful handling all the way from our reactors to the end user. Our storage area keeps temperature and humidity within narrow bands because uncontrolled variables degrade sensitive chemicals quickly. Bulk containers use inert linings, and we test every drum on arrival and before shipment to ensure the material remains within spec. Distribution logistics draw on years of experience with regulatory compliance in international shipments — every consignment moves with complete documentation, checked by staff who’ve walked the warehouse floors and know the substances first hand. If a delay threatens product integrity, we reroute, not just for business reasons but because those losses cost future trust.

    Environmental and Safety Realities

    Manufacturing organofluorines demands vigilance when it comes to environmental and personal safety. The trifluoromethyl group opens new opportunities in chemistry, but handling requires respect for both acute and chronic hazards. Our site features fume hoods, local scrubbers, and a culture of daily safety checks. Nobody on our team cuts corners at the expense of health; protocols come from experience, having seen what even minor lapses can trigger. Waste streams get early-stage treatment — neutralizations and distillations happen before the regulatory paperwork ever reaches an outside auditor. That diligence means our products reach industry innovators without leaving a problematic footprint at home.

    Direct Feedback and its Role in Product Evolution

    User feedback loops aren’t a formality. We keep the phones and email open, listening to both praise and complaints — details about solubility quirks, reactions running off course, or unexpected color changes in the product inform every production improvement. Chemists who synthesize and purify this compound can recite the five or six most common customer troubleshooting stories out loud, not because they’re rehearsed, but because real product stewardship means remembering exactly where earlier mistakes happened. Over the years, tweaks based on those customer calls have leveled up our processes, not just kept the status quo.

    Why This Alcohol Remains Our Compound of Choice

    Even among other fluorinated benzylic alcohols, this one holds value, mostly because the 3-fluoro and 5-trifluoromethyl versions slot uniquely into organic syntheses without creating excessive byproducts. Applications that need both electron-withdrawing and lipophilic influence demand these exact positions, not a random scattering on the ring. A few grams in the hands of a competent bench chemist can lead to whole new classes of marketed pharmaceuticals or crop protectants. We’ve worked with academic teams and industrial R&D groups who need just these characteristics for a project no other compound fits. In our view, ‘close enough’ doesn’t build the next molecule on a patent application.

    Process Control: More Than a Buzzword

    In our plant, control means direct accountability. Batch production logs come with signatures, and nobody walks away from a run without signing off on their input. Small details — ambient temperature shifts, impurity spikes on the chromatogram — get tracked and flagged, with records going back years. Data does more than fill binders; we use it in team reviews to troubleshoot problems as they arise, making informed calls on batch disposition. Fine chemical manufacturing doesn’t tolerate wishful thinking; a single uncontrolled parameter can sour hundreds of liters of product, wasting both material and months of labor.

    Pushing Analytical Boundaries

    Routine quality checks can only go so far. Our laboratory doesn’t settle for basic output; teams deploy advanced NMR, mass spectrometry, and specialized fluorine analytics to catch hidden impurities and subtle degradation products. Instruments stay meticulously calibrated by trained staff rather than third-party contractors, keeping the evaluations honest. Several competitive producers offer the same molecule by name but lack the diligence in confirming stereochemistry or functional group integrity on every shipment. Through persistent method development, we’ve caught pitfalls others miss — minor by-product peaks that would go undetected in less-sensitive setups.

    Hazards: Practical Experience Over Speculation

    Handling 3-fluoro-5-(trifluoromethyl)benzyl alcohol can’t go strictly by theory. As a team, we have dealt with incidents of minor leaks and spills. Decades in the plant have drilled in habits: turns of the valve, changes in pressure, shifts in storage temperature. Understanding how this compound interacts with glass versus polymer, its affinity for skin or gloves, comes from direct exposure, not reading spec sheets. Even seasoned chemists respect its ability to carry unexpected reaction partners through a synthesis, and every new hire learns how those shocks happen in real time. Training focuses as much on vigilance as routine, ensuring all staff recognize signs of trouble and act before paperwork catches up with the event.

    The Team Behind the Product

    This isn’t a story of faceless chemical vats. As manufacturers, we take pride in every step — sourcing fluorinated precursors, perfecting reaction time, tweaking distillation parameters for the weather conditions of a given season. Success comes from decades of combined experience among synthesis, QA/QR, maintenance, and logistics teams. As the plant evolved, lessons passed from founder to apprentice to current operator didn’t get lost in translation, each mistake and each breakthrough stored in the working memory of the crew, not just digital archives.

    Supporting Sustainable Chemistry in Practical Terms

    A focus on sustainability goes deeper than regulatory compliance. From the earliest pilot runs, we’ve tracked every kilogram of solvent destined for reclamation. Our plant recovers and reuses as much as possible, not as a rule forced on us but as a cost-saving and community-sustaining measure. By tuning reactor conditions for higher atom economy, and capturing and reusing fluorinated byproducts, we cut down both environmental load and raw input costs. Workers know why every drop matters, and the community around the plant sees the impact — jobs stay local, water and air quality monitors post honest numbers.

    The Real-World Difference of our 3-Fluoro-5-(Trifluoromethyl)Benzyl Alcohol

    Customers choose this product for results they can measure, not just points on a spreadsheet. A pharmaceutical client building next-gen kinase inhibitors described how the compound’s fine-tuned electronics enabled a clean, high-yield substitution that rivaled nothing else available. An agrochemical R&D group reported improved shelf stability in pilot field trials, crediting the product’s unique molecular profile with resisting ambient humidity and oxidation in tropical conditions. These stories multiply with each shipped batch, and every account strengthens our commitment to hard-won quality.

    Opportunities for Collaboration: More Than Transactional

    We view each order as the beginning of a conversation, not the end. Sometimes that means supporting process optimization at the customer’s site, other times it requires additional purifications or custom packaging to fit a unique workflow. Our teams thrive on challenge — running special syntheses, exploring new reaction partners, documenting every mod for the record. Years spent building real partnerships with universities and manufacturers have fed back into our own process improvements, making each new engagement a test and a learning opportunity.

    Continuous Improvement Rooted in Direct Experience

    We live by continuous improvement, guided not by abstracts, but by shared effort on the factory floor and in the lab. We review failures at weekly meetings: an odd contaminant, an unexpected reaction, a shipment damaged by weather. By turning every oversight into a lesson, the team grows more competent and more vigilant. Procedures don’t sit gathering dust on a shelf; they evolve with every customer need, every advance in analytical science, and every challenge thrown up by this complicated, valuable molecule.

    Final Thoughts on Value – Not Just Another Product

    Manufacturing 3-fluoro-5-(trifluoromethyl)benzyl alcohol comes with risk, dedication, and genuine pride in the result. Each order reflects years of refinement in chemistry, logistics, and customer engagement. It’s easy for outsiders to miss the unseen decisions — solvent swaps on a rainy night, extra QC checks before export, process tweaks learned from a single stubborn impurity. To us, this compound is more than a grade or catalogue number; its value grows out of the skill, patience, and perseverance that saturate every stage of production. That’s experience the customer can trust, every time, batch after batch.