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HS Code |
905748 |
| Name | 1-[3-(Trifluoromethyl)Phenyl]Propanol-1 |
| Cas Number | 20858-39-7 |
| Molecular Formula | C10H11F3O |
| Molecular Weight | 204.19 |
| Appearance | Colorless liquid |
| Boiling Point | 96-98°C (at 13 mmHg) |
| Density | 1.22 g/cm3 |
| Purity | ≥98% |
| Smiles | CC(CO)C1=CC(=CC=C1)C(F)(F)F |
| Melting Point | -10°C |
| Synonyms | 3-(Trifluoromethyl)propiophenol, 1-Propanol, 1-[3-(trifluoromethyl)phenyl]- |
As an accredited 1-[3-(Trifluoromethyl)Phenyl]Propanol-1 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle labeled "1-[3-(Trifluoromethyl)Phenyl]Propanol-1, 25g," with secure screw cap and hazard symbols. |
| Shipping | **Shipping Description:** 1-[3-(Trifluoromethyl)Phenyl]Propanol-1 is shipped in tightly sealed, chemical-resistant containers. Ensure transport complies with all local and international regulations for hazardous chemicals. Protect from light, moisture, and extreme temperatures. Proper labeling with hazard identification and handling instructions is mandatory. Use secondary containment to prevent leaks during transit. |
| Storage | 1-[3-(Trifluoromethyl)Phenyl]propanol-1 should be stored in a tightly closed container, kept in a cool, dry, and well-ventilated area away from incompatible materials such as strong oxidizers. Protect from direct sunlight, moisture, and sources of ignition. Ensure proper labeling and follow all relevant chemical safety protocols. Personal protective equipment should be used when handling the chemical to avoid exposure. |
Applications of 1-[3-(Trifluoromethyl)Phenyl]Propanol-1 in Industrial ManufacturingAs a specialized producer of 1-[3-(Trifluoromethyl)phenyl]propanol-1, we support downstream manufacturing customers who require exacting performance from advanced aromatic intermediates. Below, we outline the principal industrial application areas where this material brings unique molecular advantages and meets demanding sector requirements. 1. Pharmaceutical Intermediate for Active Ingredient SynthesisThis compound serves as a critical building block for developing fluorinated APIs, particularly in psychiatric and anti-inflammatory drug pipelines. Its trifluoromethyl aromatic structure enables precise control in selective hydrogenation or Friedel–Crafts acylation stages. Researchers favor this intermediate for complex molecule construction, benefiting from its compatibility with established synthesis routes and validation pathways for regulatory filing. Downstream integration demands strict quality control and traceability from the raw material stage through to the final formulation batch release. Industry compliance standards
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2. Agrochemical Synthesis (Herbicide and Fungicide Intermediates)Manufacturers in the crop protection sector adopt this fluorinated aromatic alcohol as a key component during the synthesis of highly bioactive agrochemicals. The presence of the CF3 group on the phenyl backbone increases compound persistence and alters molecule-target specificity in field applications. Process engineers incorporate this intermediate during targeted acylation or alkylation steps before halogenation, requiring careful mass balance and environmental controls to minimize loss during handling and post-reaction work-up. Industry compliance standards
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3. Advanced Polymer Modifier for High-Performance PlasticsPolymer manufacturers deploy this aromatic alcohol as a specialty monomer or reactive additive to impart fluorinated characteristics to engineering resins, including enhanced hydrophobicity and improved dielectric properties. The fluorinated structure modifies polymer backbone flexibility and surface energy, favorable for electronics-grade, weather-resistant, and low-friction materials. This application requires rigorous attention to dosing rates, as deviations impact polymer chain propagation and consistency in final article physical properties. Industry compliance standards
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4. Fragrance Ingredient for Fine Chemical and Perfume ProductionThis structurally distinctive alcohol finds use in fragrance ingredient manufacturing due to the electron-withdrawing trifluoromethyl group, which tailors volatility and persistence in final compositions. Compounders leverage this raw material to create novel aromatic profiles for use in high-end perfumes and specialty fragrances, where olfactory stability over time is critical. Batch formulation requires consistent purity and documented trace residual solvent levels to ensure compliance with IFRA guidelines and facilitate IFRA certificate support for downstream customers. Industry compliance standards
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Producing 1-[3-(Trifluoromethyl)phenyl]propanol-1 in our plant puts us right at the intersection of reliability and innovation in specialty chemicals. The daily work of our teams—chemists, engineers, and quality staff—is dedicated to making sure every batch reflects the high standards of both purity and consistency that professionals expect. We’ve watched many of our clients demand higher performance for their processes, whether they're in pharmaceuticals, agrochemicals, or material science, and this molecule has become a valuable asset in their toolkits.
Our history with this compound goes back to the early surge in fluorinated aromatic building blocks for synthetic research and industrial scale-ups. Seeing how challenging it can be to integrate these groups into complex molecules, we invested heavily in production lines that keep impurities, especially pinacol, benzyl alcohol, or trifluorotoluene, at bay. Our reactors are set up to support seamless batch and semi-continuous synthesis under stringent monitoring—our technicians sample, sample again, and never rely on a single checkpoint. Decades of refinement shape every kilogram we supply, and that’s a responsibility we take seriously.
This compound features a trifluoromethyl group on the meta position of a phenyl ring, attached through a three-carbon propanol chain. That structural arrangement places it ahead of classic aryl alcohols when it comes to introducing both hydrophobicity and metabolic stability to target molecules. We’ve seen its trifluoromethyl group shield phenyl rings from oxidative degradation, so this molecule finds its way into both stable intermediates and final actives.
By controlling reaction temperatures and solvent purity during production, we’ve achieved batches with GC-MS purity levels that consistently exceed 98%. Our teams ensure that moisture during packing remains below 0.2%, a critical figure given how water can catalyze decomposition or build up undesired hydrates in certain syntheses.
We have run comparative trials with related structures—the 4-trifluoromethyl analog, as well as methyl and ethyl derivatives. 1-[3-(Trifluoromethyl)phenyl]propanol-1 stands out. Its meta trifluoromethyl group sits far enough from the alcohol head that it reduces electron-rich reactivity at the active site while preserving lipophilic benefits. Substituting the position to para or ortho often changes how the compound behaves in condensation reactions or chiral resolution, and neither methyl nor ethyl substitutions deliver the same blend of stability and functional group reactivity. This difference remains central to why major research institutions and production companies continually return to this exact structure.
Our flagship model for this molecule, manufactured in both research and technical grades, comes in lots ranging from 100g lab packs to 25kg drums. The lot integrity is earned through frequent in-process control—our teams spot and rectify deviations in color (pale yellow to colorless is standard), odor (mild, characteristic aromatic, not pungent), and of course, purity by HPLC and NMR.
Each drum is closed under dry, inert nitrogen and labeled with test data, including water content, GC purity, and trace analysis for residual reactants. As manufacturers, we understand how even minor contaminants—residual alkanes, ring halides, or partially fluorinated byproducts—can tank a high-value reaction or create regulatory headaches in API production. Our commitment means we store and ship with chain-of-custody monitoring. Not all suppliers do this; over the years, we’ve had to rework or outright reject incoming “equivalent” materials when expanding capacity or backfilling for emergencies. Direct-from-factory means traceability and accountability, not just a promise of quality.
Most of our customers buy 1-[3-(Trifluoromethyl)phenyl]propanol-1 as a building block for pharmaceutical or crop protection development. The trifluoromethyl group helps new leads pass through metabolic testing, boosting both drug candidate stability and activity against biological targets. In our experience, medicinal chemists focus first on the intermediate stage: our product provides the backbone they later refine through oxidation, halogenation, or coupling—either producing aryl ethers, ketones, or extending the carbon chain.
Process chemists from major firms visit us for technical consultations, looking to minimize byproduct formation and improve their cycle times. Our technical team hosts regular knowledge exchanges, where we compare our process data with customer scaling feedback. These sessions help customers adapt the molecule to new reaction conditions—microwave irradiations, flow reactions, or enzymatic transformations—while we collect valuable insights to improve future runs.
We also serve agrochemical innovators. Plant protection active ingredient pipelines need new scaffolds that withstand UV breakdown and aggressive soils. The trifluoromethyl substitution pattern helps these actives last longer in the environment, so formulators favor our product for its reliable performance and batch homogeneity. Over the years, several patents in herbicide and fungicide areas have cited our material as a pivotal intermediate.
In the world of materials science, 1-[3-(Trifluoromethyl)phenyl]propanol-1 forms the precursor to polymers and specialty plastics where chemical resistance and tailored dielectric profiles matter. We’ve seen this compound used in the synthesis of fluorinated polyesters, pushing the boundaries in electronics, insulation, and protective coatings. Manufacturing these materials places major demands on intermediate quality because downstream yields depend on starting batch purity. Our facility routinely supports customers in scaling up from bench to pilot plant, troubleshooting issues unique to large-scale chemistry such as phase separations or uneven thermal profiles.
As a producer, we know that the chemical manufacturing world is crowded with traders and distributors offering generic or sometimes questionable-quality stock. Shortcutting synthesis, over-optimistic impurity specs, or neglecting traceability raise risks, not just for process upset but for compliance with ever-stricter global regulations. We’ve been subject to regular customer-led audits—our logs, batch records, and on-site procedures reflect industry best practice. Every container shipped from our site aligns with both our customer agreements and with REACH, TSCA, and other compliance regimes.
As demand for specialty fluorinated building blocks has risen, we’ve kept up investment—new purification columns, additional deep-freeze storage, and constant retraining of our QA teams. Being an original manufacturer allows us to supply customers who want guaranteed access to a stable, predictable supply—and to stand behind the product if a rare deviation happens. In our experience, this kind of direct relationship with clients—engineer to chemist, operator to operator—translates directly to smoother production, fewer upsets, and better outcomes. Unlike brokers or resellers, who might offer vague promises or ignore problems, we stay engaged through the lifecycle of each supply contract.
We regularly work with customers on custom batch sizes, documentation requests, and support for technology transfer projects. Documenting analytical methods and sharing spectral data isn’t a formality for us; it’s how we keep both our customers and our own teams learning and advancing. Laboratory staff are encouraged to surface anomalies, and every year we review not just results, but also failed experiments and unexpected outcomes. These lessons find their way into the next batch, which means a higher bar for everyone using 1-[3-(trifluoromethyl)phenyl]propanol-1 in their own critical work.
Comparing this product to others, we see consistent differences. A classic 1-phenylpropanol, without a trifluoromethyl group, catches faster in acid-base extractions, oxidizes more rapidly, and, in some syntheses, generates off-target byproducts at higher rates. Even other trifluoromethylphenylpropanol isomers—such as those with para or ortho substitution patterns—do not match the mix of reactivity suppression and solubility range provided by the meta-substituted molecule.
In large-scale production trials, our teams have watched downstream processing become substantially more predictable with the meta isomer. Side-reactions are easier to suppress or monitor, and aqueous workups stay cleaner—the meta position makes the molecule less reactive toward unwanted electrophilic substitutions. This translates to higher yields in customers’ multi-step syntheses, often saving weeks in both troubleshooting and reprocessing.
Clients in advanced applications, such as chiral drug synthesis, repeatedly confirm that our grade of 1-[3-(Trifluoromethyl)phenyl]propanol-1 maintains optical purity and reproducibility even under aggressive enantiomeric resolution conditions. Anecdotally, some researchers have reported less trouble with crystallization and purification compared to close analogs. We attribute this difference to our upstream control of solvents, reagent ratios, and precise monitoring throughout the reaction and purification stages.
Some newer market entries offer bulk quantities at what look like bargain rates, but quality audits often reveal inconsistent spectral results, surprising levels of heavy metals, or poor solubility in telltale test solvents. Long-term, a slight up-front saving rarely offsets the costs of failed process runs or unreliable regulatory data. This risk led us to double down on raw material vetting and to maintain rigorous in-house and third-party analytical audits, so our customers avoid costly surprises.
Our teams engage with R&D customers early in their pipeline, often collaborating on tailored reaction schemes that integrate 1-[3-(Trifluoromethyl)phenyl]propanol-1 as a starting point. This means not only supplying high-purity material, but also advising on pre-formulation steps, storage, and integration into process design.
On request, we help with up-scaling from the first-mole synthesis all the way to multi-ton shipments, adjusting run conditions to fit unique requirements—such as minimizing isomeric drift, matching color standards, or limiting residual solvent traces below even the strictest international thresholds. Often, we provide reference standards and method validation resources to help QA teams at partner firms keep up with regulatory expectations.
We also maintain feedback loops with regulatory compliance teams and stay alert to emerging requirements in different parts of the world. When Japan, Korea, or EU agencies introduce new lists of hazardous impurities or process controls, our laboratory immediately adapts batch records and analysis protocols accordingly. This adaptability keeps our customers competitive and shields them from regulatory disruption.
Producing specialty chemicals at scale means planning for raw material risk and making responsible choices around waste and energy. We’ve invested in supply relationships that insulate us from upstream volatility—backup vendors, extended forward contracts, and technical exchanges that improve both security of supply and real-time intelligence when markets go tight. We deal directly with fluorine source providers and maintain on-site stores of critical components, so we’re not at the mercy of intermediary shortages.
Waste handling presents real challenges for all chemical manufacturing, and the fluorination steps in our process require particular care. Unlike some plants that incinerate or dilute and discharge, we pursue reclamation wherever feasible—solvent recovery, byproduct reprocessing, and the capture of hydrogen fluoride emissions to meet local and global standards. Our site environmental team participates both in certification audits and ongoing improvement workshops, sharing best practice with peer firms and pushing for methods that both meet compliance and keep us competitive on cost.
Energy use tracks closely with batch yields and process intensity. Our technical upgrades—reactor insulation, improved agitation, heat exchange recovery—reduce total energy input per kilogram of 1-[3-(Trifluoromethyl)phenyl]propanol-1 produced. This discipline helps us meet both our own sustainability goals and those of our larger multinational partners, who increasingly demand low-carbon or transparent sourcing for their supply chains.
Industry professionals expect both greater customization and shorter lead times as research and market needs shift. Over recent years, we’ve set up rapid pilot-process lines to help customers test new analogs or explore recycled reagents, all without waiting for months-long supply scheduling. Our facility’s modular setup allows us to reconfigure reactor trains, purification assets, and QA testing calendars in days, not weeks.
New applications for 1-[3-(Trifluoromethyl)phenyl]propanol-1 continue to appear as synthetic chemists push further into drug-like molecule space and as electronics firms seek out ever more advanced precursor materials. We participate in both industry consortia and academic workshops, exchanging process learnings and trending analytical challenges. In our view, being a manufacturer today means ongoing education—watching the literature, staying in touch with downstream users, and embracing smarter automation or data analytics as they emerge.
Our decades-long relationship with both global conglomerates and independent innovators has taught us that chemistry is, above all, a partnership. Whether supplying a kilogram for a new drug trial, a multi-ton batch for agro formulation, or just sharing application data with a curious university group, we invest in every order and every inquiry. Our in-house staff track their own metrics for improvement, and we’re always ready to adapt process or packing to unique client needs. Working directly with chemists around the world, we do more than just make a molecule: we help push science forward with every shipment.