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HS Code |
147482 |
| Iupac Name | 2-[(3-methyl-4-(2,2,2-trifluoroethoxy)-2-pyridinyl)methylthio]-1H-benzimidazole |
| Molecular Formula | C16H14F3N3OS |
| Molecular Weight | 369.36 g/mol |
| Cas Number | 119141-89-8 |
| Appearance | Off-white to pale yellow solid |
| Smiles | Cc1cnc(CSc2nc3ccccc3[nH]2)cc1OCC(F)(F)F |
| Solubility | Sparingly soluble in water |
| Melting Point | Approximately 150-155°C |
| Boiling Point | Decomposes before boiling |
| Storage Conditions | Store in a cool, dry place, protected from light |
As an accredited 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle with tamper-evident cap, labeled “25g 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole, for research use.” |
| Shipping | This chemical, 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-pyridinyl]methylthio-1H-benzimidazole, is shipped in sealed, chemical-resistant containers under ambient conditions unless otherwise specified. It is protected from moisture and light, with appropriate labeling in compliance with hazardous material shipping regulations. Shipping documents include safety data sheets and handling instructions. |
| Storage | Store **2-[3-Methyl-4-(2,2,2-trifluoroethoxy)-2-pyridinyl]methylthio-1H-benzimidazole** in a tightly sealed container, protected from light and moisture. Keep at room temperature or as specified by the manufacturer. Avoid strong oxidizers and sources of ignition. Ensure adequate ventilation in the storage area and follow all recommended safety protocols, including use of appropriate personal protective equipment. |
Applications of 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole in Industrial ManufacturingAs a dedicated manufacturer of 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole, we supply this specialty intermediate to advanced industrial sectors. Our expertise covers the critical interface of compliance, formulation, processing, and quality control for demanding downstream applications. Below are detailed application scenarios within diversified but tightly regulated manufacturing fields. 1. Agrochemical Active Ingredient SynthesisMajor crop protection formulators use this compound as a core heterocyclic building block in the synthesis of systemic fungicides and insecticides. The trifluoroethoxy and methylthio sidechains impart target-binding activity and environmental stability needed in patented pesticide molecules. Strict traceability is enforced during API production for regulatory registration. Downstream plants typically employ multi-step reaction pathways starting with our raw material, ensuring process integrity through rigorous analytical QC. Finished goods include wettable powders, granules, and emulsifiable concentrates registered under regional crop-protection statutes. Industry compliance standards
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2. Pharmaceutical Intermediate for Benzimidazole-Based APIsPharmaceutical producers select this benzimidazole derivative as a key intermediate in the route towards novel anthelmintics and antifungals. It provides fluorinated and thio-substituted functionality valued for bioactivity modulation. Plants source GMP-compliant product to initiate coupling or cyclization steps in multi-kilo syntheses. The compound is introduced at specific reaction controls to ensure chiral and regiochemical accuracy in API preparation. Final APIs undergo validation and submission under stringent pharmacopoeial requirements. Industry compliance standards
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3. Specialty Polymer Additive SynthesisIn high-performance materials manufacturing, our compound functions as a monomeric precursor contributing to electrical, chemical, and thermal resistance features in engineering plastics. Polymerization specialists incorporate this raw material in precision dosages to graft trifluoroethoxy and pyridinyl groups onto advanced polymer chains. Automated dosing systems guarantee composition consistency. End-use applications demand documentation for non-toxicity and compliance with end-market polymer purity norms. Industry compliance standards
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4. Industrial Dye Intermediate for Specialty Textile ChemicalsMajor textile chemical manufacturers employ our benzimidazole derivative as a structural intermediate for advanced synthetic dyes and optical brighteners. The compound, introduced during diazotization and coupling reactions, enhances dye fixation, color fastness, and fluorination properties in fabrics. Downstream customers follow ZDHC and bluesign® safety lists, driving demand for strictly controlled, traceable intermediates. The material enters at the pre-condensation or azo-group formation stages of dye synthesis, with final QC validating fit-for-purpose chromophore creation. Industry compliance standards
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5. Veterinary Drug Intermediate ManufacturingOur advanced pyridinyl-benzimidazole intermediate directly supports production of veterinary pharmaceuticals for livestock and companion animals. Process chemists utilize the raw material in the penultimate step of benzimidazole-based anthelmintic and antifungal synthesis. Product conformity to veterinary pharmacopeias and trace residuals is crucial due to food chain entry. Manufacturers use closed-system synthesis with our material introduced at precise stoichiometric points, tracked by batch for VICH and local regulatory compliance. Industry compliance standards
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Day by day, chemical plants produce compounds that factor into complex applications worldwide. Our experiences as true producers, not intermediaries, guide every decision that brings a new specialty molecule to market. 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole represents an outcome of deep collaboration between laboratory process and full-scale manufacturing know-how. Few see what happens behind the scenes during the scale-up of such a tailored compound, but attention to each step dictates consistent results. This substance stems from strong technical roots in heterocyclic chemistry and fluorinated intermediates—fields our teams have refined with years of continuous batch optimization and strict in-house analytical routines.
Our typical production workflow starts long before the first reactor charge, with carefully selected raw materials designed for batch reproducibility. Over several production runs, we have maintained a batch-to-batch purity of over 98%. The molecular integrity of 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole relies on advanced purification strategies: column chromatography for precise separation, controlled drying to eliminate residual moisture, and a closed transfer to resistant storage vessels. The weight range per batch averages 20 to 100 kg per reaction cycle, giving application-oriented customers reliable supply. Our in-house QA team performs HPLC and NMR analysis on every single batch, confirming both purity and the absence of common contaminants.
Specialized benzimidazole derivatives often get grouped together, but real-world performance varies substantially between analogs. What distinguishes the 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole molecule is the combination of the trifluoroethoxy group on the pyridine ring and the methylthio linkage to the benzimidazole core. The presence of electron-withdrawing trifluoromethyl enhances both metabolic stability and lipophilicity. As a producer, we notice that these chemical modifications lead to more predictable reactivity with downstream functionalizations. The methylthio moiety opens the door for further substitution or coupling reactions, making it a popular choice for R&D teams tackling tough synthetic challenges.
Many new chemical entities begin as milligram samples in controlled laboratory environments. Transitioning this molecule to large-scale batch reactors involved refining every reaction parameter. Temperatures are closely monitored to stay within safe exothermic ranges, and pressure controls ensure that the reactive trifluoroethoxy group remains stable. One of the main hurdles involved finding solvent systems that supported both reactivity and downstream separations. In practice, we built solvent recycling loops and robust waste treatment methods to support sustained operations. Through this discipline, we now run multi-step syntheses with in-line monitoring, limiting impurities and improving reaction yields—often reaching completed batch purities above 98% by area on HPLC.
2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole attracts the attention of pharmaceutical research chemists aiming to expand benzimidazole chemistry or seeking new pharmacophore options in medicinal development. Though we cannot speak for anyone’s proprietary applications, we see purchase orders aligned with agrochemical screening, probe molecule discovery, and advanced material fabrication. Each end-use relies on the unique reactivity imparted by the trifluoroethoxy and methylthio functional groups. As the manufacturer, we often field requests for different grades or variant particle sizes, usually tailored to R&D requirements. Consistency matters more to buyers than a laundry list of theoretical uses. We have seen formulations sensitive to trace solvents or metallic residues, and our in-line purification protocols guarantee reproducible results batch after batch.
Manufacturing underpinned by real-world documentation always outlasts shortcuts. We supply not just the molecule but all supporting data, including comprehensive certificates of analysis for every lot, impurity profiles, and stability results from our dedicated team. Our facility maintains full traceability from raw material sourcing to finished product packaging. Experienced buyers appreciate that we archive batch records for at least five years, ensuring fast responses to any auditing request. While some manufacturers treat regulatory compliance as a barrier, our experts view it as an essential tool for building trust, safety, and long-term business continuity. We have implemented ISO-compliant manufacturing management, which keeps deviations rare and corrective actions prompt.
Lab-synthesized samples from third parties sometimes introduce unknowns that impede scaled development work. Production realities diverge from academic papers and catalog listings. We have seen customers frustrated by subtle differences in color, solubility, or melting point, which trace back to different manufacturing routes or even inconsistent purification techniques. By controlling all steps—from intermediate distillation through to dry and milled final product—we avoid these stumbling blocks. Our analytical chemists conduct full spectral characterization using NMR, MS, and FTIR, confirming molecular identity well beyond a standard reference line. Such full-spectrum assurance allows companies to set realistic project timelines worldwide, banking on repeatable supply and well-documented origin.
No matter how refined, every chemical synthesis invites logistical or process challenges over time. We have encountered supply chain slowdowns, variations in raw material quality, and evolving customer specifications. Internal troubleshooting always returns to core principles: respond fast, analyze deeply, and communicate transparently with customers. If a formulation fails a specific dissolution test or trace detection shows an outlier, immediate batch quarantine follows. Our flexibility shows in custom purification, further micronization, or adapted packaging materials based on customer equipment feedback. Real production feedback has driven container improvements, from lined drums to nitrogen-purged inner bags for moisture-sensitive shipments. Fast adaptation saves customers both downtime and extra cost.
Researchers often approach us with questions about moving from gram-scale benzimidazole chemistry to multikilogram pilot runs. There’s a gulf between shaking flasks and kilo-lab reactors. We routinely offer technical guidance—for instance, which solvent grades deliver better yields or how specific agitation rates cut residual particulate. Our plant-based teams often demonstrate a new scale-up in parallel with customer trial schedules, documenting critical reaction parameters. Practical experience means that we can suggest alternatives when a lab method stumbles at commercial scale. By participating directly in process troubleshooting alongside R&D groups, our manufacturing staff transfer lessons learned from thousands of reactor hours directly to the bench, not just through written protocols. That direct collaboration often leads to the next innovation in process chemistry.
Our experience with a range of related compounds—plain benzimidazole cores, halogenated versions, or chain-extended analogs—provides unique insight into what makes 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole distinctive. Trifluoroethoxy substitution imparts greater chemical stability than most straight-chain alkoxy analogs. The methylthio linkage grants tunable reactivity missing from simple alkylated products. In head-to-head tests, our custom compound outperforms similar molecules in terms of handling ease and reproducible crystallization, two factors that matter at scale but rarely appear in catalog comparisons. Some customers experimenting with lower-purity grades from competitors have encountered clogging, inconsistent crystallization, or reactivity loss. Our team's willingness to optimize the purification stage through active solvent change or added filtration steps safeguards batch consistency.
From raw material staging to final packaging, every kilogram moves through safety checkpoints designed for both employee and customer protection. We have designed our workflow to minimize operator exposure and ensure the integrity of every transfer. On the shop floor, specialized glass-lined vessels, inert gas atmospheres, and dust extraction systems blunt both chemical and physical hazards. During outgoing inspection, spot tests match product against historical control samples, highlighting any anomaly before shipment. Regular training and practical safety protocols make incidents rare. Transparent MSDS documentation and frank communication with customers ensure that best practices travel with every drum or bottle of product, supporting safe handling from our door to yours.
Responsible manufacturing carries beyond regulatory minimums. Our facility recycles solvents and reclaims waste streams through both distillation and chemical neutralization. Shift chemists receive hands-on environmental management training. We employ continual improvement metrics on solvent recovery, water use, and waste minimization. Instrumented controls log process parameters, allowing us to identify areas for further emission reductions. We take pride in meeting or exceeding current environmental performance targets, and we actively participate in data-driven sustainability reporting for internal reviews. Customers increasingly ask for sustainability data as part of their supplier due diligence; by connecting day-to-day production with documented environmental stewardship, we support their broader product responsibility goals.
Many downstream partners have shared stories of production holdups due to long lead times, stockouts, or ambiguous supply chain quality. Unlike intermediaries, direct manufacturing brings the ability to quickly address unforeseen demand surges or handle special requests for packing size and shipping method. Our full warehouse keeps real product available for urgent shipment, and scheduled production guarantees regular inventory updates. We keep an open-door approach with all partners, offering direct access to technical staff and batch production updates. Over the years, this openness has fostered more than just transactions—customers return for insight, troubleshooting, and industry context. In such partnerships, reliability and genuine technical exchange matter just as much as price or specification sheets.
Our decades of bench-to-bulk manufacturing experience allow us to contribute not just material but process expertise. We actively support research into new applications, from pharma and specialty agrochemicals to high-performance materials. The feedback loop between end-user formulation teams and our process staff often uncovers process bottlenecks or optimization possibilities not obvious from the outside. By inviting project teams to engage directly, factory chemists bring practical shortcuts or solve unexpected scale-up issues—helping new research programs reach realization faster and with less risk. We believe that direct engagement and willingness to test new variants or process tweaks distinguishes true manufacturers and builds long-term trust throughout the supply chain.
Molecules like 2-[3-Methyl-4-(2,2,2-Trifluoroethoxy)-2-Pyridinyl]Methylthio-1H-Benzimidazole make their impact not at the loading dock, but in the hands of formulation chemists and process engineers worldwide. Our journey—starting from lab-scale synthesis through scaling, documentation, and support—continues with every new production batch and customer feedback session. True manufacturing delivers more than material: it brings a culture of responsibility, solution-minded collaboration, and a focus on outcomes shaped by real factory experience rather than distant catalog promises. The road to better-performing molecules runs straight through factories where hands-on teams control every parameter and stand behind every drum unloaded at a customer site.