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2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl

    • Product Name 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl
    • Alias HMTF
    • Einecs 821-822-2
    • 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

    380766

    Chemical Name 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl
    Molecular Formula C10H12F3NO2·HCl
    Molecular Weight 269.67 g/mol
    Appearance White to off-white solid
    Solubility Soluble in water and polar organic solvents
    Purity Typically ≥98% (HPLC)
    Cas Number 1421379-39-0
    Storage Conditions Store at 2-8°C, protected from light and moisture
    Synonyms TFEM HCl; 2-(Hydroxymethyl)-3-methyl-4-(2,2,2-trifluoroethoxy)pyridine hydrochloride
    Smiles CC1=NC(=C(C=C1OCC(F)(F)F)CO)C.Cl

    As an accredited 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 25g quantity of 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl is supplied in a sealed amber glass bottle.
    Shipping The chemical `2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl` is shipped in a tightly sealed container, protected from moisture and light. It is handled according to standard chemical safety regulations and transported with appropriate hazard labeling. Shipping complies with all relevant local and international chemical transport guidelines.
    Storage Store 2-Hydroxymethyl-3-methyl-4-(2,2,2-trifluoroethoxy)pyridine HCl in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight and moisture. Keep it away from incompatible substances such as strong acids, bases, and oxidizing agents. Avoid exposure to heat or ignition sources. Label the container clearly and follow all relevant chemical safety protocols.
    Application of 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl

    Applications of 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl in Industrial Manufacturing

    We deliver 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl directly to major industrial segments where rigorous formulation control, validated compliance, and downstream performance optimization are critical. Below we demonstrate core application channels based on concrete manufacturing practice and regulatory realities.

    1. Pharmaceutical Intermediate Synthesis for Antiviral Agents

    Leading pharmaceutical plants rely on this compound as a highly specific pyridine building block during late-stage synthesis of new-generation antiviral molecules. The material’s electron-withdrawing trifluoroethoxy group introduces enhanced metabolic stability and targeted bioactivity, making it valuable for small-molecule drug development pipelines. Its introduction is timed precisely, post-coupling, for side-chain modification prior to final salt formation, ensuring high yield without unwanted by-products.

    Industry compliance standards

    • ICH Q7: Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP-NF Monographs for synthetic intermediates
    • EU EudraLex, Volume 4, Part II: APIs
    • 21 CFR Part 211: Finished Pharmaceuticals

    Typical usage ratio

    • Used at 0.8–1.5 molar equivalent relative to primary coupling partner in stepwise synthesis, adjusted for scale and target compound reactivity

    Downstream process integration

    • Added after completion of backbone pyridine assembly, before the installation of final substituents and salt formation

    Final product types

    • Direct precursors for nucleoside analog antivirals
    • API intermediates in influenza and RSV treatment drugs
    • Raw material for HCl salt forms of antiviral candidates

    2. Crop Protection Active Ingredient Synthesis

    Agrichemical integrators incorporate this specialized pyridine derivative for the synthesis of selective herbicides and fungicides, targeting modifications that optimize field stability and environmental safety. Key process engineers introduce it as a functionalization unit in the late stages of heterocyclic agrochemical core construction, providing tailored trifluoroethoxy substitution for controlled degradation rates in soil and plant matrices.

    Industry compliance standards

    • FAO/WHO Guidelines on Pesticide Specifications and Quality Control
    • ISO 9001:2015 for agrochemical manufacturing
    • Regulation (EC) No 1107/2009 on plant protection products
    • US EPA 40 CFR Part 158: Data Requirements for Pesticides

    Typical usage ratio

    • 0.3–0.7 wt% of total batch mass in condensation and cyclization stages depending on the desired activity and molecular weight of the end compound

    Downstream process integration

    • Introduced during penultimate stage of heterocyclic scaffold functionalization, following core pyridine assembly, prior to formulation with adjuvants

    Final product types

    • Selective herbicide AI intermediates
    • Broad-spectrum systemic fungicide APIs
    • Custom pyridine herbicide analogs

    3. Development of Fluorinated Specialty Chemicals for Electronic Materials

    Producers of semiconductor process chemicals, OLED materials, and photoresist monomers specify this advanced pyridine structure for its capacity to introduce highly controlled trifluoroalkyl functionality into polymers and pre-polymers. Application chemists incorporate it via site-selective nucleophilic substitution, enhancing dielectric properties and resist stripping performance in fabrication environments. Strict batch traceability is prioritized to maintain downstream purity requirements.

    Industry compliance standards

    • IEC 62474: Material Declaration for Electronic Industry
    • JIS Q 9100: Quality Management in Electronics Manufacturing
    • RoHS Directive (2011/65/EU) for purity limits
    • SEMATECH standards for process chemical purity

    Typical usage ratio

    • Loading ratio tailored to end-use: 0.2–0.5 wt% in polymerization reactions for photoresist precursors, and up to 3 mol% for functionalized advanced materials

    Downstream process integration

    • Added during monomer synthesis or after preliminary oligomer assembly through nucleophilic substitution and cross-coupling steps

    Final product types

    • Fluorinated monomers for photoresists and etching agents
    • High-k dielectric additives for semiconductor devices
    • Pyridine-based intermediates for OLED emitters

    4. Synthesis of Targeted Analytical Reagents

    Analytical laboratories and test kit manufacturers require this chemical for the preparation of specialized derivatization reagents and complexing agents used in fluorine-specific detection protocols. The compound is introduced as a derivatizing group in custom indicator molecules, where the trifluoroethoxy moiety ensures consistent reactivity and improves detection selectivity in high-performance analytical workflows.

    Industry compliance standards

    • ISO/IEC 17025:2017 for laboratory reagent qualification
    • ASTM D7359 for fluorine quantification in organic compounds
    • USP General Chapter <1225> Validation of Compendial Procedures
    • REACH Regulation (EC) No 1907/2006: laboratory chemical compliance

    Typical usage ratio

    • Typically introduced at stoichiometric or slightly above (1.1–1.5 equivalents) versus analyte target, depending on derivatization efficiency or detection threshold

    Downstream process integration

    • Incorporated during synthesis of reagent molecules via electrophilic substitution, followed by purification and stability verification before formulation into analytical kits

    Final product types

    • Derivatization reagents for HPLC/GC-MS fluorine detection
    • Complexing agents for trace analysis sample prep
    • Reference materials used in certified analytical kits
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    Certification & Compliance
    More Introduction

    2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl: A Closer Look from the Manufacturer’s Bench

    Real-World Experience Driving Quality and Reliability

    At our facility, chemistry shapes itself from the ground up. The years spent refining our process for 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl have taught us that mastery in synthesis means more than reaching purity thresholds or hitting yield targets. True value comes from tackling batch-to-batch consistency and understanding the quirks that come with scaling this compound. From raw materials to the packed drum, the handling of this specialty pyridine derivative never feels routine.

    Our plant operators have learned the subtle ways this molecule tests patience. Moisture control takes on a new level of seriousness. The hydrochloride salt form brings a tangible boost in chemical stability during storage and transport, especially since humidity has a way of creeping into every corner of a warehouse. Those hours in quality control with spectral data taught us where limits come from—fluorinated motifs in the compound create signals that stand out like beacons on an NMR, where there’s no hiding modest deviations. We don’t shy away from tough analysis. Each certificate behind this hydrochloride salt reflects deliberate work: specific rotation checked, clarity and color inspected under the right light, melting point measured to the degree.

    Our Production Model and Specification Focus

    Supplying an advanced intermediate like this one brings a unique rhythm to the production calendar. We chose our primary production scale to strike a balance between demand flexibility and reliable traceability—our experience tells us traceability matters more as project sizes grow and regulatory standards tighten. Typical batch sizes stay between 5 and 50 kg, although we can adjust up or down depending on custom program needs. Purities always track beyond 98.5 percent by HPLC, with binary solvent purification at the core of our crystallization step. Water and volatiles content learn to stay low when handled directly from the reactor into vacuum, then into robust containers lined to avoid trace contamination.

    This compound demands a lot from every stage. Early on, we noticed standard filtration would not suffice; the dense, microcrystalline powder can trap trace organics if filtration speed falls too low. We switched to bespoke depth-filter designs with continuous differential pressure readings. The result: cleaner product, measured by residual solvent levels dropping far under 0.1 percent. When prepping for dispatch, we weigh, seal, and triple-check labels in-house. Each drum has a hand-signed inspection slip, a habit born out of our own frustration with third-party errors before we brought this step under our direct control.

    Storage takes care too—this hydrochloride compound holds strong at room temperature in sealed packaging for months, though our laboratory maintains it at 4°C as extra assurance for longer-term applications or regulatory holds.

    How Our 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl Gets Used

    Nothing tells a better story than seeing our material form the backbone of a new drug candidate in the hands of a pharma partner or serving as a robust intermediate on the agrochemical scale. The presence of the trifluoroethoxy moiety brings clear benefits for downstream medicinal chemistry—pharmacokinetic properties shift, and the molecule’s metabolic stability often increases without further trial-and-error. Years of feedback from development chemists point to this derivative’s regular spot as a “tried and trusted” building block where both electron-rich and -deficient aromatic structures must be fitted into a larger, function-driven scaffold.

    Our conversations with formulation scientists make it obvious that the hydrochloride salt’s increased water solubility translates to easier integration in a wide range of screening recipes. The methyl substitution pattern, combined with the hydroxymethyl group, allows for targeted transformations, with minimal formation of unwanted side-products. These subtle details set the compound apart for those working long days at the lab bench.

    We keep tabs on how customers run coupling reactions, whether using Suzuki, Sonogashira, or more niche conditions. Reports from early-stage R&D programs confirm fewer purification headaches post-reaction, which, by their own words, saves both time and “glassware breaks.” On the industrial scale, our partners note faster filtration and crystallization rates than with comparable intermediates using alternatives like bromo or non-fluorinated analogues.

    Direct Comparison: What Sets This Product Apart

    Plenty of pyridine-based intermediates circulate through research pipelines. Our hands-on approach to manufacturing reveals real-world distinctions. Traditional analogues lacking the 2,2,2-trifluoroethoxy group often struggle with oxidative stability in scale-up settings or end up as dead ends when solubility becomes the bottleneck. Hydroxymethyl substitution adds synthetic handles, allowing for clean homologation steps or rapid protection/deprotection cycles.

    When benchmarking against similar hydrochloride salts, trace heavy metals and halide residues emerge as the quickest way to differentiate value. Our investment in continuous in-line ICP screening was not a matter of ticking boxes; project teams encountering catalyst-sensitive reactions know even 10 ppm of palladium or copper can throw off yields or create downstream regulatory headaches. Regular feedback from our pharmaceutical collaborators influenced how we selected raw sources and mapped QA checkpoints. If a competitor’s lot lands with lingering tert-butyl or acetone residues—detected only after weeks in storage—synthetic progress slows or even halts. Our records for this key pyridine derivative show those impurities falling well below accepted thresholds, year after year.

    Manufacturing Decisions Are Practical, Hands-On

    We continually improve our process as end-user requests grow more precise. Product success followed a series of iterations—starting with hand-scooped powder, through to process automation, and finally toward digital weighing and solvent-free drum sealing. We built these habits because the first few kilos sent into the research world circled back with straight talk: crystallinity looked off, flux rates wobbled, and chemical reactivity reacted directly to trace process changes. Community feedback makes a real difference, which is why technicians here swap notes with in-house chemists daily.

    Batch data review means hunting for anomalies, not reading off numbers. Tools get swapped out, valves replaced, and reactor settings dialed closer on days when humidity stays high. The team’s keen eye for “off notes” in IR spectra or random color changes has prompted more process upgrades than any auditor’s review. The comfort of knowing ‘your own’ material, forging strong internal trust, proves far more valuable than relying on outside aggregates.

    Emphasizing Transparency and Knowledge Sharing

    Industries that use this hydrochloride salt keep on growing. With stricter purity regulations and more complicated supply chain scrutiny, buyers look far beyond basic metric sheets. We field steady questions about elemental impurities, trace organics, storage guidelines, and workflow integration. Every response pulls straight from our operational logs and technical notebooks. This approach—direct communication from the production line to the customer’s lab notebook—builds confidence and ensures smoother project handoffs.

    Our participation in industry roundtables, quality consortia, and applied research projects feeds a loop of practical learning. If process safety data shows a need for a new containment protocol or white residue flags potential cross-contamination, the feedback circle closes fast. Simple metrics—number of rejected drums, inbound queries about reactivity, days spent troubleshooting—keep us focused on what matters in real-world scenarios.

    Looking Beyond the Drum: End-User Outcomes

    Downstream, synthetic chemists confront tight deadlines, competitive development cycles, and regulatory reviews. A reliable supply of this 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl gives them a fighting chance to hit their next project milestone. We’ve watched project teams shave weeks from route scouting when intermediates arrive clean, dry, and trustworthy. Medicinal projects using fluorinated building blocks often move toward late lead optimization with fewer surprises, since that trifluoroethoxy handle brings useful tweaks in logP or metabolic resistance.

    Customers in scale-up and process improvement settings report fewer purification red flags and more predictable workup times. Even beyond the lab, these small advantages protect budgets, reduce delays, and keep regulatory pathways clear from unexpected byproduct formation. Our link to manufacturing means quick responses when clients pivot in synthetic strategy or request adjusted lots—there’s no need for boardroom escalation to change from a 5kg order to a 50kg shipment, or to tailor container types for specific workflows.

    Facing Regulatory and Sustainability Challenges

    Stricter guidance from agencies on elemental impurities, solvent recycling, and batch documentation drives us to update procedures. We take compliance beyond the unobtrusive clipboard—actual time on the factory floor tells us where risks lurk. Introducing full logging for each reactor changeover, switching to low-residue solvents, and investing in in-line monitoring align with the growing regulatory landscape. Our lot histories go deep enough to provide direct tracebacks across quarters, not just the paperwork’s edge.

    Sustainability often gets thrown around as a tagline. Here, the story draws more from small improvements stacking up: waste solvent streams tracked and transferred for energy recapture, drum material upgraded from single-use plastics to reprocessed steel, and off-gas runs scrubbed before venting. Collaboration with regional disposal partners ensures that byproducts stay out of local water tables, which was an early concern during the initial set-up phase. The decisions always circle back to real consequences, not just environmental claims—tank levels, hazardous venting, energy logs.

    Unexpected Issues and Customer Feedback Loops

    Open conversations with customers have reshaped how we troubleshoot both upstream and downstream issues. Sticky powder clumping during humid transport shipments led us to invest in custom barrier liners and moisture-absorber insertion protocols. Feedback about minor discoloration after long overseas shipments inspired a double-UV carton lining. From each issue, we learned that close listening and a willingness to forgo easy fixes adds value that compound sheets alone cannot show.

    Supporting customers during scale-up batches sometimes means overnight calls, spare sample dispatches, and direct data sharing. We commit to helping them not just receive product but actually make progress in their research or production cycle. We have seen that this openness leads to fewer hitches, more repeat orders, and longer partnerships, which ultimately drives our continuous improvements and upgrades to both process and documentation.

    Practical Improvements That Stick

    Production changes come alive when feedback points to either new growth or recurring headaches. Minor tweaks, like adding an extra filtration step or re-setting batch cooling rates, might not register on standard documentation, but they have side effects like boosting filtration throughput and improving shelf life. Equipment upgrades followed actual bottlenecks—such as mixing vessel liners preventing trace corrosion by hydrochloride forms—rather than theoretical risk assessments. The working relationship between the plant team and end-users shapes our daily schedule more than any outside presentation.

    Record-keeping holds steady as a manual and digital hybrid: handwritten notes capture moments that online logs might miss, like a faint odor detected midway through drying. Dashboards consolidate batch histories, linking impurity spikes to particular lots, guiding each future synthesis to higher ground.

    Why Relationships Matter More Than Instruments

    As suppliers, we live in a world crowded by documentation, metrics, and checklists, but real-world impact comes from the rapport among team members, external partners, and end-users. Years spent at the synthesis bench, and in the packing room, make it clear that trust—built by connection, not committee—decides who leads the market. We don’t keep secrets from our longest-running partners, and they know that, when an issue comes up, a voice from our plant picks up the phone instead of an anonymous line.

    When discussing real-world differences, our pyridine derivative’s consistent color, reliable solubility, and solid shelf stability spark more conversation than abstract purity numbers or “white-powder” descriptors. Users judge with eyes and hands, not just spreadsheets, and our job is to keep delivering on what matters at the bench.

    Summary: Hands-On Experience Shapes Better Product

    Having spent years on the synthesis, packaging, and delivery of 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl, we’ve internalized both its strengths and quirks. No single approach fits all, so our ongoing dialogue with users, along with constant procedural adjustments, aligns the product’s strengths with those real-world needs. Each kilo shipped carries with it a history of direct handling, troubleshooting, and tangible customer feedback.

    The compound’s unique trifluoroethoxy and methyl positions offer chemists steady footing during advanced synthetic steps, while the hydrochloride form ultimately protects both product and downstream workflow from surprises. Instead of simply filling orders, we build the reliability from raw material intake to customer delivery. Decades of practical work, a stack of customer notebooks, and a plant team that sweats the small stuff mean that every kilo of our 2-Hydroxymethyl-3-Methyl-4-(2,2,2-Trifluoroethoxy)Pyridine HCl stands up to scrutiny, not just in the lab, but where it counts—in application, in results, and in the confidence of our partners.