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4-(Trifluoromethoxy)Phenyl Methyl Sulfone

    • Product Name 4-(Trifluoromethoxy)Phenyl Methyl Sulfone
    • Alias TFMMS
    • Einecs 829-557-4
    • 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
    VTB
    Specifications

    HS Code

    364808

    Productname 4-(Trifluoromethoxy)Phenyl Methyl Sulfone
    Casnumber 886763-76-6
    Molecularformula C8H7F3O3S
    Molecularweight 240.20
    Appearance White to off-white solid
    Meltingpoint 78-82°C
    Solubility Slightly soluble in organic solvents
    Purity Typically ≥98%
    Smiles CS(=O)(=O)C1=CC=C(C=C1)OC(F)(F)F
    Inchikey FNZQWPJRDWPQQH-UHFFFAOYSA-N

    As an accredited 4-(Trifluoromethoxy)Phenyl Methyl Sulfone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A sealed amber glass bottle labeled "4-(Trifluoromethoxy)Phenyl Methyl Sulfone, 25g, for research use only" with hazard symbols.
    Shipping **Shipping Description:** 4-(Trifluoromethoxy)Phenyl Methyl Sulfone is shipped in a tightly sealed container, protected from moisture and light, and cushioned to prevent physical damage. It is transported according to applicable regulations for non-hazardous chemicals, with clear labeling, safety documentation, and temperature control if required. Ensure upright positioning during transit.
    Storage 4-(Trifluoromethoxy)Phenyl Methyl Sulfone should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from direct sunlight, heat sources, and incompatible substances such as strong oxidizers or acids. Store at room temperature, and ensure proper labeling. Use personal protective equipment when handling, and follow local regulations for chemical storage and disposal.
    Application of 4-(Trifluoromethoxy)Phenyl Methyl Sulfone

    Applications of 4-(Trifluoromethoxy)Phenyl Methyl Sulfone in Industrial Manufacturing

    As a specialty manufacturer of 4-(Trifluoromethoxy)Phenyl Methyl Sulfone, we deliver consistent quality across narrowly defined industry requirements. This section outlines the principal industrial applications where customers integrate this compound to enhance specific performance functions, comply with regulatory benchmarks, and achieve reproducible output in chemically demanding environments.

    1. Advanced Pharmaceutical Intermediates

    Pharmaceutical producers rely on this sulfone as a key intermediate in the synthesis of targeted small-molecule APIs. Its electron-withdrawing trifluoromethoxy group enables precise control over aromatic substitution patterns in heterocyclic and aryl-based drug candidates, facilitating reactions such as nucleophilic aromatic substitution without undesirable side-product formation. The stepwise integration into proprietary synthetic routes ensures traceability and alignment with strict regulatory mandates.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • EU GMP Part II (APIs)
    • United States Pharmacopeia General Notices (when used in API synthesis)
    • FDA 21 CFR Part 211 (when incorporated at US-based facilities)

    Typical usage ratio

    • 0.3%–2% mole equivalents relative to initial aromatic substrate; final ratio depends on reaction yield and target molecular structure

    Downstream process integration

    • Added during multi-step API intermediate synthesis in batch reactors, often post-halogenation or oxidation steps, ahead of purification and isolation

    Final product types

    • Anti-inflammatory API intermediates
    • Oncology drug candidate scaffolds
    • CNS-active molecule building blocks
    • Final APIs following subsequent downstream transformations

    2. Agrochemical Active Ingredient Synthesis

    Manufacturers in the crop protection sector utilize this compound to create advanced building blocks for herbicide and fungicide molecules. The sulfone moiety increases metabolic stability in the active ingredient core during field deployment and contributes to selective bioactivity. Inclusion rates are adjusted against crop sensitivity and environmental persistence goals during scale-up to commercial quantities.

    Industry compliance standards

    • FAO/WHO Guidelines for the Registration of Pesticides
    • OECD Principles of Good Laboratory Practice (GLP) for synthesis stages
    • REACH Regulation (EC) No 1907/2006 for chemical safety in Europe
    • China MIIT Environmental Management Registration of New Chemical Substances

    Typical usage ratio

    • 0.5%–1.5% by weight in formulated technical concentrate; ratio may shift to 2% for high-stability requriements

    Downstream process integration

    • Incorporated after initial nitration/halogenation of aromatic precursors in solvent-based reactors, upstream of crystallization and formulation processes

    Final product types

    • Selective herbicide technical materials
    • Broadleaf fungicide precursors
    • Biocide intermediates
    • Stabilized crop protection product actives

    3. Specialty Polymer Performance Modification

    Producers of high-performance polymers use this compound as a reactive functional group donor to tailor molecular polarity and thermal stability in bespoke resin systems. Its trifluoromethoxy function serves to improve resin dielectric properties and solubility in solvent blends for electronics and membrane applications, while maintaining mechanical integrity at elevated temperatures.

    Industry compliance standards

    • UL 94 Flammability Standard for Polymer Materials
    • RoHS Directive 2011/65/EU on hazardous substances
    • ISO 9001:2015 Quality Management for polymer compounding
    • IEC 61249-2-21 Halogen-Free Laminate standards for electronics

    Typical usage ratio

    • 0.2%–1.2% by weight based on total monomer feed; ratio adjusted according to desired dielectric constant and mechanical test data

    Downstream process integration

    • Dosed during pre-polymer mixing ahead of controlled radical or condensation polymerization; incorporated with solvent carriers for uniform dispersion

    Final product types

    • High-frequency PCB resins
    • Membrane casting films for ultrafiltration
    • Heat-resistant specialty engineering plastics
    • Electronics encapsulation materials

    4. Liquid Crystal and Display Material Synthesis

    Producers of advanced display components employ this compound in the synthesis of mesogenic units for organic liquid crystal compounds. Its unique electronic profile allows fine-tuning of refractive index and viscosity in custom-formulated nematic and smectic phases, supporting stable alignment and high-contrast performance in OLED and LCD manufacturing. Process engineers closely monitor feed rates to achieve batch-to-batch uniformity and meet critical display specifications.

    Industry compliance standards

    • IEC 62341 Series for OLED displays
    • RoHS 2011/65/EU Directive restricting hazardous substances
    • ISO 9241-307 Ergonomics of Visual Displays
    • JEITA ED-4701 Reliability Test Methods for display materials

    Typical usage ratio

    • 0.1%–0.7% by weight of nematic blend; ratio determined by target birefringence and alignment layer compatibility

    Downstream process integration

    • Blended post-synthesis of primary mesogens, prior to purification and formulation into final liquid crystal mixtures for panel cell filling

    Final product types

    • Low-voltage nematic liquid crystal mixtures
    • OLED/AMOLED display fluids
    • High-stability TFT-LCD alignment media
    • Custom color-shift and blue-phase display materials
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    Certification & Compliance
    More Introduction

    Introducing 4-(Trifluoromethoxy)Phenyl Methyl Sulfone from Us, the Original Manufacturer

    Production Roots and Our Experience

    Down on the production floor, we have seen many waves of fine chemicals pass through our reactors. Few stir as much curiosity among chemists as 4-(Trifluoromethoxy)phenyl methyl sulfone, a compound we have made in bulk for years. Here in our facilities, chemists focus on building each batch with clean technique and precise measures. Monitoring those reactions each shift, you see this product lining out with a crisp, high-purity end—reflecting the care and steady hand of the team.

    The industry demands reliability and knowledge. Years ago, our engineers modified synthesis conditions just to prevent byproduct hitchhiking in the final solids. If a slight temperature jump or solvent impurity turns up in the process, our lab team catches it early, saving every customer a headache. We believe compounds like this need the practiced eyes of manufacturers who have stood by the same reactors, not hands-off suppliers.

    Key Characteristics and What Sets It Apart

    4-(Trifluoromethoxy)phenyl methyl sulfone often goes by the abbreviation TFOMS or by its chemical shorthand. Its molecular structure brings together a phenyl sulfone backbone with a robust trifluoromethoxy group. This mix carves out properties that find favor in many research and industrial circles.

    The trifluoromethoxy group draws interest wherever electron-withdrawing effects and edge-case stability are needed. In the field, this translates to batches that dissolve smoothly and resist breakdown under harsh conditions. Unlike its plainer relatives—like phenyl methyl sulfone without the fluoro twist—TFOMS rides through reactions that would chew up less fortified molecules.

    We have made its close cousins: plain methyl sulfones, simple aryl sulfones, and various trifluoromethyl analogs. None have brought back the same repeat calls—or picky requests—from formulation scientists. They want the ruggedness that comes from the full fluorine substitution. TFOMS doesn’t bow out under oxidation or random heat surges. If you have ever seen your intermediates vanish to waste because a methyl sulfone decomposed, you learn to appreciate this small difference.

    We rely on a battery of analytical tools—NMR, GC-MS, and HPLC—regularly to double-check that each shipment hits the purity marks. The difference shows up in real-world use: few side-products, clearer crystallization, and cleaner chromatograms for downstream synthesis.

    Applications: Beyond the Obvious

    TFOMS finds its footing in a few core fields. Medicinal chemists trust this material to introduce trifluoromethoxy groups on aromatic rings, carving out small molecules that feature heavily in drug discovery screens. The methyl sulfone’s presence lends hydrophilic character without overwhelming sterics, giving structure-activity relationship studies more control over molecular shape.

    Each year, we talk with polymer labs that use TFOMS to anchor unique side-chain motifs. One process engineer described how the sulfone’s high polarity cut through the haze of inconsistent copolymer runs. These differences only show up when you run large-batch processes—and we hear from repeat customers who found early blends sticky or cloudy, only to smooth out with a batch of our material. It functions where standard alkyl- or aryl-sulfones stop dead under thermal load.

    Its electron-deficient nature makes TFOMS a strong platform for cross-coupling work. Organic chemists often turn to it for Suzuki and Buchwald reactions, where the electron pull of the trifluoromethoxy and the stability of the methyl sulfone backbone support higher yields and simpler purification. A few decades back, there were more than enough hard lessons about byproduct loads in aryl triflates or standard phenyl sulfones; now, labs trust the cleaner runs that TFOMS provides.

    Agrochemical developers have ordered our product as a building block for next-generation fungicides. The molecule’s blend of hydrophobic and electron-withdrawing properties suits it for extending molecule life out in the field. It is built to survive exposure to light, air, and moisture, and the end formulations retain potency where lesser molecules degrade.

    On the electronics materials side, we have seen TFOMS contribute to the preparation of specialty fluoropolymers and advanced insulating materials. The high stability of the trifluoromethoxy group anchors the polymer matrix, resisting both chemical and electrical breakdown.

    Realities of Production—Why Sourcing from a Manufacturer Matters

    Producing TFOMS in high purity does not come from textbook copying; each kilogram produced sharpens our methods and practices. Early on, drying times had to be extended to avoid residual solvents, a detail you cannot gloss over if you want to avoid downstream rework. Tuning crystallization parameters keeps polymorph control tight, which our partners in pharma R&D have learned to ask about after a few failed scale-ups from lesser sources.

    Storage and handling do not get left to chance in our plants. TFOMS comes off the line in tightly sealed drums, stored away from moisture and cleanly labeled to prevent any mix-up, down to the drum serials. We learned the hard way that minor contamination or humidity sneaking into storage takes weeks to untangle in customer labs, so we work from the inside out to stop those issues before shipment.

    Some suppliers tout simple molecule structures as interchangeable. Our experience tells a different story. We tracked feedback from dozens of projects: subtle differences in the trifluoromethoxy group’s orientation or presence of trace byproducts impact performance. The extra step of careful distillation and post-synthesis washing pays dividends, and it’s a step few non-manufacturing resellers bother to discuss.

    Regulations get tighter year by year. We commit to following every update on chemical management—be it REACH, TSCA, or regional directives—because we carry the risk if a spec is missed. Inspections push us to excel; more than once, auditors caught a new impurity or packaging issue, which led us to overhaul part of our process. That means safer labs and more consistent supplies for our customers. We keep documentation always within reach, backed up by on-site analytics, not third-party assurances.

    Differences from Related Products

    Working hands-on with 4-(Trifluoromethoxy)phenyl methyl sulfone exposes all the contrasts to related structures. Removing the trifluoromethoxy group leaves methyl phenyl sulfone, a compound found in older protocols—mainly as a solvent or mild oxidant. Those batches show lower chemical resistance, less utility in aggressive synthesis, and weaker electronic effects when tied into aromatic substitution.

    Compared to simple phenyl sulfones, TFOMS offers lower volatility, improved oxidative stability, and higher resistance to nucleophilic cleavage. It takes energy—thermal or chemical—to force decomposition, where less complex sulfones fail at lower thresholds. That matters when researchers aim for robust, reproducible outcomes.

    Some new labs ask about using trifluoromethoxy benzene sulfone analogs, hoping for similar properties at lower price points. We spent time head-to-head comparing their behaviors. The analogs often shed fluoride or sulfone moieties under stress, giving short shelf-lives or unexpected impurities that choke off multi-step syntheses halfway through. By contrast, our TFOMS batches prove durable, cycling through trial after trial with high batch-to-batch reproducibility.

    Customers running scale-up consistently return to TFOMS for its track record. We see more one-off substitutes drop out of production because their performance falters on fifty- or hundred-kilo scales. None of those missteps touch the reliability demanded by innovation-driven industries. If you have ever had to halt a manufacturing line over a single unwanted byproduct, you think twice about the source and integrity of your fine chemicals.

    Process Improvements and Customer Impact

    Years in manufacturing teach lessons the hard way. Some of our earliest projects stumbled over color drift—slight yellowing that customers noticed in analytic readouts. The answer came through better purification and improved atmospheric controls at the crystallization stage, giving a product with less UV lnterference in QC labs. Every batch that passes spectral purity checks saves time for downstream users.

    Many industrial clients need bulk volumes for pilot plants or first-time scale-up production. TFOMS moves from bench to plant floor with minimal adjustment, because we have fine-tuned the particle sizing and flow characteristics batch after batch. We avoid costly bridging and feeder faults by closely controlling morphology and residual solvent content, small details that make filling, dispensing, and automatic dosing smooth.

    Our engineers study every feedback slip and retention sample. The tweaks that came from customer requests—shifting granular size, even small differences in drum material—directed us to optimize logistics. Everything we deliver is built from these conversations. Each tweak brings more consistent reactions in the customer's reactors, reducing off-spec byproducts and downtime chasing errors.

    Commitment to Safety and Responsible Handling

    We emphasize care at every stage, protecting employees with advanced controls and customers with clear handling advice. We avoid airborne dusts, collect fugitive emissions, and design work areas for easy cleaning. Nobody learns these lessons from instruction manuals; it takes years working side-by-side on the manufacturing floor.

    Our logistics staff understand temperature requirements and the need to avoid cross-contamination during loading. Over the years, that vigilance kept us in good standing with environmental regulators. Technical staff work directly with customer teams to share handling tips and provide safety information grounded in real industrial experience.

    Environmental stewardship shapes our choices. Solvent recovery, waste stream management, and energy usage get attention in every production review. Investment in cleaner processing means a cleaner product—free from the lingering trace solvents or chlorinated residues few labs want in their runs. Collaborating openly with environmental health officers, we kept our footprint low while increasing the purity and reliability of every shipment.

    Industry Trends and Future Outlook

    The demand for specialty fluorinated chemicals grows, driven by needs in pharmaceuticals, electronic materials, and advanced polymers. We see design shifts each year, with researchers asking for even higher functional group diversity and more robust molecular platforms. The unique mix of low reactivity, high thermal resilience, and precisely tuned polarity found in TFOMS answers this call.

    Looking ahead, the bar rises for both purity and traceability. Customers expect tighter control of every impurity, more transparency in supply chain management, and support on compliance questions well ahead of regulatory deadlines. Our approach is straightforward: open data sharing, accessible technical files, and in-house verification by our own team, not outside certifiers.

    Collaboration works both ways. We learn from every technical exchange and problem-solving session with academic and industrial partners. Many improvements in our process, from new drying equipment to improved reactor automation, grew out of real-world issues shared by our customers. That feedback loop keeps us prepared as scientific priorities shift and new applications for TFOMS come into focus.

    Built by Manufacturers, Trusted by Chemists

    Each drum of 4-(Trifluoromethoxy)phenyl methyl sulfone carries the imprint of a manufacturer who puts care before volume. Chemical production is as much about solving problems as it is about delivering reliable product. We continue exploring new uses with the compound, supporting both well-trodden processes and new research avenues.

    Our factory teams have stood through audits, process scale-ups, and the daily rigor of hands-on QC. The lessons run deep: avoid shortcuts, keep communication open, and respect what dedicated manufacturing brings to fine chemicals like TFOMS. Those who rely on our product never receive leftovers or uncertain intermediates, just a compound proven in the demanding realities of modern chemistry.

    We remain ready to discuss on-the-ground applications and new directions for 4-(Trifluoromethoxy)phenyl methyl sulfone with anyone seeking insight, reliability, and a partner who has stood at every step of the manufacturing process. Our doors are open to collaboration and ongoing improvement—because the only constant in specialty chemical production is the need to keep learning, testing, and delivering real value, day in and day out.