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4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol

    • Product Name 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol
    • Alias 4-Methoxymethyl-2,3,5,6-tetrafluorobenzyl alcohol
    • 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

    922761

    Name 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol
    Cas Number 884494-72-6
    Molecular Formula C9H8F4O2
    Molecular Weight 224.15 g/mol
    Appearance Colorless to pale yellow liquid
    Purity Typically ≥97%
    Solubility Soluble in organic solvents (e.g., DMSO, methanol)
    Smiles COCC1=C(C=C(C(=C1F)F)F)F
    Inchi InChI=1S/C9H8F4O2/c1-15-5-6-2-7(10)9(12)8(11)3-6(13)4-14/h2-3,14H,4-5H2,1H3
    Storage Temperature Store at 2-8°C
    Synonyms 4-(Methoxymethyl)-2,3,5,6-tetrafluorobenzyl alcohol

    As an accredited 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl 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 tamper-evident screw cap, chemical-resistant label displaying product name, hazard symbols, and safety instructions.
    Shipping 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol is shipped in tightly sealed, chemical-resistant containers with proper labeling. It is packed and handled per regulatory guidelines, ensuring protection from moisture, heat, and mechanical shock. Transport complies with all relevant national and international chemical shipping and safety regulations for laboratory reagents.
    Storage 4-Methoxymethyl-2,3,5,6-tetrafluorobenzyl alcohol should be stored in a tightly sealed container, away from light and moisture. Keep it in a cool, dry, and well-ventilated area, ideally in a chemical storage cabinet designed for flammable or reactive chemicals. Ensure it is clearly labeled and segregated from incompatible substances such as strong oxidizing agents.
    Application of 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol

    Applications of 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol in Industrial Manufacturing

    Our production-grade 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol provides precise performance as a key intermediate in specialty chemical synthesis sectors. The following application scenarios detail its integration into several high-value, regulation-driven manufacturing environments, with transparent information on formula ratios, compliance requirements, downstream processing, and resulting finished products.

    1. Active Pharmaceutical Ingredient (API) Synthesis Intermediate

    Pharmaceutical manufacturers use this compound as a protected benzyl alcohol building block during multi-step syntheses of advanced fluorinated APIs, especially for cardiovascular and CNS pipeline candidates. Owing to its unique electron-withdrawing properties, it allows for selective deprotection and functional group transformations, essential for structure-specific synthetic routes that require high-purity fluorinated intermediates.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 211 – GMP for Finished Pharmaceuticals
    • European Pharmacopoeia (Ph. Eur.) quality specifications
    • USP General Chapters <791> (pH), <643> (Total Organic Carbon) for intermediates

    Typical usage ratio

    • 0.2–1.1 molar equivalents relative to main reactants, adjusted according to the specific step in the synthetic sequence and desired protection efficiency

    Downstream process integration

    • Enters at the intermediate stage as a reagent for etherification, serving as a masked functional group; removed by hydrogenolysis or acidic cleavage to release the free alcohol in later stages

    Final product types

    • Complex fluorinated API molecules
    • High-purity pharma intermediates for cardiovascular drugs
    • Central nervous system candidate actives
    • Next-generation oncology lead compounds

    2. Agrochemical Synthesis: Herbicide & Fungicide Intermediate

    Crop protection chemical manufacturers apply this alcohol as a functionalized benzyl group source when constructing novel fluorinated aromatic rings, which are core structures for certain herbicide and fungicide actives. Its presence enhances the resultant compounds' metabolic stability and bioactivity, particularly where multi-ring systems require site-selective methoxymethyl protection during synthesis.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • ISO 9001:2015 (for industrial chemical manufacturing)
    • Regulation (EC) No 1107/2009 (EU Plant Protection Products)
    • Chinese GB2763 Maximum Residue Limits regulation for agricultural chemicals

    Typical usage ratio

    • 0.5–2.5% by mass in intermediate coupling reactions, with exact dosage tailored to the number and type of protected aromatic moieties in the synthetic route

    Downstream process integration

    • Used in the early to middle stages where fluoroaromatic precursors are constructed, often followed by oxidative or hydrolytic cleavage before coupling to fuller agrochemically active scaffolds

    Final product types

    • Post-patent and new-generation fungicides
    • Phenoxy and triazole herbicides
    • Intermediate isolates for crop protection actives
    • Custom synthesis starting materials

    3. Electronic Chemicals for OLED and Liquid Crystal Material Synthesis

    Producers in advanced display technology manufacture employ this fluorinated alcohol as a key raw material to build highly pure aryl ether structures. It serves as a blocking group in monomer synthesis, facilitating the preparation of compounds essential for OLED blue-emitter hosts and high-performance liquid crystal materials, where stringent control of side reactions and high dielectric properties are required.

    Industry compliance standards

    • SEMI C69 – Specifications for Organic Electronic Materials
    • IEC 61249-2-51: Halogen-Free Electronic Material Definitions
    • ISO 14001 (Environmental Management for electronic chemical manufacture)
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances)

    Typical usage ratio

    • Used at 1.0–1.5 equivalents in the monomer assembly process, with the exact quantity based on final substitution pattern of the target molecule

    Downstream process integration

    • Introduced during the key transition-metal-catalyzed cross-coupling phase; deprotected in a later stage to provide terminal functional groups compatible with polymerization or further functionalization steps

    Final product types

    • OLED emitter and host compounds
    • Low-viscosity liquid crystal monomers
    • Semiconductor coating intermediates
    • Purified chemical precursors for flexible touchscreens

    4. Specialty Polymer and Fluorinated Resin Synthesis

    Polymer producers employ this compound as a specialty monomer or protected functional group donor while manufacturing high-value fluorinated resins. It plays a dual role—either as a temporary blocking group to introduce polarity into chains, or as a building block to impart hydrophobic and chemical resistance to block and random copolymers, widely used in automotive coatings and high-performance adhesives.

    Industry compliance standards

    • ASTM D543: Chemical Resistance of Plastics
    • ISO 9001:2015 for polymer manufacturing lines
    • REACH Regulation (EC) No 1907/2006 for chemical safety
    • VDA 278 (VOC emission testing for automotive interiors, EU)

    Typical usage ratio

    • 0.8–3.0% by mol for copolymerization reactions, controlled based on the target resin’s mechanical and chemical resistance specifications

    Downstream process integration

    • Fed into a continuous or batch reactor at the stage where side-chain functionalization occurs, or during seeded emulsion and solution polymerization to maintain precise molecular weight and composition ratios

    Final product types

    • Fluorinated acrylic resins
    • High-durability automotive clearcoats
    • Specialty pressure-sensitive adhesives
    • Membrane materials for chemical process industries
    Free Quote

    Competitive 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol: Deepening Industry Reliability

    We take pride in the precision and care that goes into making 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol at scale. This product, often recognized by its CAS number 862262-27-9, stands as a testament to the advancements chemical manufacturing has made in addressing specialized synthetic challenges. Drawing from decades on the plant floor and in the lab, our view of this compound goes beyond data sheets and technical literature.

    Model and Purity Matters

    Few processes in the world of pharmaceutical research and fine chemicals can tolerate variable purity or inconsistent supply. Consistency in color, clarity, and especially composition shapes the trust research departments and process chemists put in their supply partners. Our current batches of 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol maintain a purity above 98%, confirmed by NMR and HPLC methods, minimizing uncertainty in downstream applications. Years of refining our distillation and purification processes have elevated reliability, and this difference makes troubleshooting and scale-up repeatable for our clients.

    We’ve seen how subtle impurities create outsize headaches during reaction optimization. Testing issues such as high residual solvents or trace fluoride left unremoved may seem minor until you run into conversion stalls, erratic yields, or unexpected byproducts. Collecting feedback from synthetic chemists, we identified the need to target not just high assay values, but also to suppress trace interference. Adjusting pressure profiles across our reactors and redesigning our final quenching stage led to a robust impurity profile that supports the strict protocols our clients follow for regulated spaces.

    Why Fluorination Changes the Game

    Our experience with tetrafluorinated benzyl derivatives brings up a notable distinction: each additional fluorine atom shifts reactivity, solubility, and volatility in ways not always predicted on paper. For 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol, we paid special attention to solvent pair optimization, glassware compatibility, and batch stability. Multi-fluorinated benzylic systems often decompose or discolor under atmospheric exposure, especially if the oxygen and UV controls are not tightly enforced. We have invested in low-light, inert atmosphere filling lines, reducing batch-to-batch variation beyond what off-the-shelf distributors can offer.

    This careful oversight becomes even more relevant for our customers running multi-kilogram campaigns or anchoring key fragments on this moiety. By applying learnings from 100-liter scaleups, we adapted process controls to anticipate fouling on filter surfaces — solving a filtration bottleneck that hampered pilot projects in the past. From real manufacturing runs, we tackled unavoidable temperature dependencies, and time after time, we saw that keeping process parameters tight pays off during scale expansions. These choices save time in both process validation and in the lab, especially when timelines tighten during late-stage development.

    From Synthesis Bench to Kilo Plant

    Before batching ever starts, our R&D team revisits literature precedents and notes from prior campaigns to refine each operation. For 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol, that means more than just refining the core methoxymethylation or protecting group strategies. We analyze alternative reagents that present less hazard in storage and handling, and we systematically challenge our team to eliminate steps or reagents that complicate waste treatment or add unnecessary cost. This spirit distinguishes a manufacturer’s mindset from catalog suppliers that focus on small-lot orders for research only.

    Safety is not an afterthought: multi-fluorinated intermediates, when mishandled, produce acids and volatile byproducts that pose risks to crew and equipment. We maintain a staged ventilation approach and double containment lines, both for under-pressure and over-pressure excursions. Our operators go through rigorous refresher training on handling strong bases or Lewis acids relevant to this chemistry, and every campaign benefits from pre-job hazard reviews.

    Packaging decisions grow from practical lab feedback. Past experiences highlight that even minute moisture ingress can accelerate hydrolysis of sensitive fluorinated benzylic alcohols, sometimes scrambling analytic results or changing reaction courses. All shipments leave our plant in moisture-barrier, amber vials or drums. This seemingly small step arrived after losing weeks to batch recall and wasted manpower in earlier years. Over time, scaling thousands of grams taught us that robust packaging equals more predictable reaction performance for our partners.

    Usage and Application Insights

    We have seen most of this product’s volume consumed by contract research organizations and innovators focusing on medicinal chemistry pathways, particularly as intermediates in central nervous system and oncology lead programs. Its methoxymethyl group serves as both a synthetic handle and a temporary protection, supporting downstream elaboration without risking sites sensitive to acid or base. This dual-purpose quality appeals to chemists breaking new ground in fluorinated aromatic scaffolds.

    Beyond bench-scale discovery, kilo-lab teams rely on our product’s high lot-to-lot reproducibility. The compound flows smoothly in typical organic solvents without emulsifying or generating troublesome side reactions common to more chlorinated analogs. We’ve tracked feedback from process chemists who favor our product’s filtration and drying profile, helping compress timelines during the push from gram to kilo scale.

    In custom manufacturing, this compound has found application as a linker or building block in agrochemical active ingredient development. Its well-defined spectral signatures simplify QC and method development. Supporting these users means we provide technical documentation based on in-house analysis, not just what’s sourced from the literature. Real batch spectra and COAs accompany every shipment, fortifying confidence for those scaling processes for regulatory approval.

    Anecdotal evidence from troubleshooting customer campaigns underscores the value of this transparency. Several partners ran into trouble with competitive material sourced from brokers, observing tailing on HPLC and unexplained low conversions. In post-mortem analysis, they traced the root cause to trace stabilizers and inconsistent impurity profiles masked at first glance. By contrast, our team could identify fractional impurities at the sub-ppm level, and provide corrective feedback extending beyond just offering replacement material.

    Comparing With Other Benzylic Alcohols

    In the landscape of benzylic alcohols, fluorination changes the conversation. Most unsubstituted or mono-fluorinated benzyl alcohols show less thermal stability and respond differently under common coupling and oxidation conditions. Customers aiming for step-economy in multi-step synthesis often report that more heavily fluorinated analogs like 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol allow for cleaner progressions, fewer side reactions, and greater functional group compatibility.

    Simple benzyl alcohols fail to deliver the same resistance to oxidative degradation and hydrolytic instability, especially through workups or coupling steps faced in medicinal chemistry. We have compared runs side by side. Our records show that fluorinated homologues reliably deliver higher isolated yields where electron-rich aryl groups destabilize standard routes.

    Methoxymethyl-substituted, non-fluorinated benzyl alcohols also lack the unique reactivity window that comes with multi-fluorination. The presence of four fluorines on the ring stabilizes intermediates, dampens unwanted side reactions, and slows down undesired rearrangements. These properties matter in step-intensive synthetic programs seeking to reduce purification burdens.

    For large-scale campaigns, managing the volatility and storage stability sets tetrafluorinated benzylic alcohols apart from their chlorinated or brominated cousins. Chlorine and bromine-substituted analogs often off-gas or corrode containment materials, especially at elevated temperatures or over prolonged storage. Direct handling experience has taught us to always prioritize fluorinated options in long-term supply chains. We built out dedicated transfer lines and storage drums to specifically fit these stability characteristics — safeguarding both product and personnel.

    Scaling and Global Supply Pressure

    Our position as a manufacturer means anticipating market swings and regulatory pressures long before shortages hit the headlines. In recent years, regulatory shifts around specialty fluorinated aromatics have forced many smaller producers and traders to dial down production or exit the business altogether. By investing in closed-loop solvent recovery, centralized utilities, and digital batch tracking, we’re able to guarantee consistent supply for clients seeking 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol across multi-year contracts.

    We’ve weathered storms of unpredictable demand, from pandemic-induced project pauses to sudden surges in clinical candidate testing. Real supply depends not just on chemical precursors, but on the lived experience of creating inventory buffers and deepening ties with upstream suppliers of specialty fluorinated reagents. Our regular technical audits of source materials ensure that downstream partners experience no unpleasant surprises when running their own analyses.

    Key accounts benefit from our vertical integration: our team controls every handoff from raw material through to packaged final product. Shortening these links eliminates the guesswork and finger-pointing that often happens with traders working across anonymous global chains. Our chemical engineers and operators stay accessible to clients seeking clarification during regulatory scrutiny — they don’t recite off-the-shelf scripts, they answer from direct experience.

    Technical Support Grown From Real-World Projects

    Providing support means more than answering emails or sending stock CoA documents: it means collaborating to solve actual process challenges. Feedback from repeated industrial campaigns allowed us to tune our particle handling, crystallization, and finishing to ease the analytical burden on users. We have adapted our own chromatographic and spectroscopic toolkit in response to client needs, especially for those working in highly regulated industries needing full traceability.

    Investigating pilot-scale complaints about off-odors led us to double-vacuum de-gassing protocols. Isolating persistent filtering delays motivated a redesign of our filtration train to capture fines and colloids before packaging. We do not take a one-size-fits-all approach: our crew has tailored drum volumes, headspace purging and even delivery schedules to accommodate delicate timelines or special storage requirements.

    We stand ready for technical conversations that go beyond simple availability. By tracking how process changes at our site impact the performance of end-user reactions, we grow our collective knowledge base — and share in the success of partners pushing the frontier of new drug and material discovery. The goal remains the same: minimize technical risk, maximize confidence in every batch delivered.

    Sustainability and Waste Minimization Strategies

    Operating modern chemical plants brings a duty to the community, to the environment, and to our teams. We’ve made steady progress on reducing the environmental footprint behind every shipment of 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol. Closed-loop distillation and solvent recovery, supported by real-time exhaust scrubbing, prevent bottlenecked emissions. All wastewater streams undergo batch-wise treatment and third-party validation before disposal.

    Through active participation in international chemical safety networks, we benchmark our practices against global best standards and deliver on commitments to continuous improvement. Suppliers and downstream customers give us feedback on packaging reuse and recycling, which fuels further tweaks to drum return programs or alternative containment technologies.

    Over the years, waste reduction has shifted from a regulatory requirement to a cost-saving frontier. Less waste produced at the plant equates to leaner operations and fewer distractions during production runs. This focus gives our employees the freedom to concentrate on defect reduction and smarter planning — leading to more sustainable, predictable supply for our global clients.

    Future Directions and Staying Ahead of Industry Needs

    Customer feedback helps refine every new campaign of fluorinated benzylic alcohols. Technical partners challenge our team to isolate purer cuts, to lower thresholds for trace metals, or to manage packaging protocols for increasingly complex logistics scenarios. We invest heavily in pilot plant upgrades, digital process controls, and analytic research so each batch supports both small-scale discovery work and large-scale commercial campaigns.

    Innovation and partnership remain inseparable from success in specialty manufacturing. End-users push for less batch-to-batch variability, for documentation that meets global regulatory standards, and for technical competence that stands up to external auditing. We’ve grown accustomed to open technical exchanges around the clock, and we use every lesson learned — from the smallest purification detail to the largest supply commitment — as fuel for advancement.

    By building on experience, data, and enduring customer relationships, we continue supplying 4-Methoxymethyl-2,3,5,6-Tetrafluorobenzyl Alcohol that becomes the backbone of discovery and development worldwide. The value comes not from brochure claims or superficial purity, but through the totality of care, competence, and responsiveness invested in every kilogram we produce.