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4'-(Trifluoromethoxy)Acetophenone

    • Product Name 4'-(Trifluoromethoxy)Acetophenone
    • Einecs 242-354-4
    • 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
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    Specifications

    HS Code

    429017

    Chemical Name 4'-(Trifluoromethoxy)Acetophenone
    Cas Number 827-64-1
    Molecular Formula C9H7F3O2
    Molecular Weight 204.15
    Appearance White to off-white solid
    Melting Point 44-46°C
    Boiling Point 111-113°C at 18 mmHg
    Density 1.329 g/cm3
    Refractive Index n20/D 1.485
    Smiles CC(=O)C1=CC=C(C=C1)OC(F)(F)F

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

    Packing & Storage
    Packing A 25g amber glass bottle labeled "4'-(Trifluoromethoxy)Acetophenone," sealed with a screw cap, includes a hazard warning sticker.
    Shipping 4'-(Trifluoromethoxy)Acetophenone is typically shipped in tightly sealed containers made of compatible materials to prevent leakage or contamination. It should be labeled according to regulatory requirements, and transported under ambient conditions unless otherwise specified. Proper documentation accompanies the shipment to ensure safe and compliant handling throughout transit.
    Storage 4'-(Trifluoromethoxy)acetophenone should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from direct sunlight, open flames, and incompatible substances such as strong oxidizers. Avoid moisture and sources of ignition. Clearly label the storage container and keep it in a designated chemical storage cabinet, following standard laboratory safety protocols.
    Application of 4'-(Trifluoromethoxy)Acetophenone

    Applications of 4'-(Trifluoromethoxy)Acetophenone in Industrial Manufacturing

    As a direct manufacturer of 4'-(Trifluoromethoxy)Acetophenone, we supply this specialty aromatic ketone to clients engaged in advanced chemical synthesis within the pharmaceutical, agrochemical, and fine chemical sectors. Leveraging process knowledge and real-world formulation data, we ensure precise integration of this intermediate in critical downstream applications. Below, we detail several production scenarios where this compound plays an essential transformation role.

    1. Pharmaceutical Intermediate Synthesis for Fluorinated APIs

    Leading API manufacturers apply this compound in the synthesis of advanced fluorinated intermediates for development of antihypertensive, antineoplastic, and CNS-active pharmaceuticals. Its trifluoromethoxy group introduces a unique electronic effect, optimizing molecular scaffold design during key coupling or condensation reactions, with precise stoichiometry and reaction monitoring to meet regulatory approval and batch reproducibility standards.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • EU GMP Part II (APIs and Raw Materials)
    • USP–NF and Ph. Eur. monographs (where applicable)
    • US FDA 21 CFR Part 210/211

    Typical usage ratio

    • 5.0–20.0 mol% relative to the target precursor; the loading adjusts according to desired yield and molecular conversion efficiency per synthetic route.

    Downstream process integration

    • Feeds into stepwise nucleophilic aromatic substitution or Grignard reactions ahead of cyclization and protecting group manipulations during multi-step API assembly.

    Final product types

    • Fluorinated pharmaceutical intermediates
    • Key building blocks for antihypertensive drug synthesis
    • API precursor for neuroactive and antitumor compounds
    • Clinical trial reference standards for new chemical entities (NCEs)

    2. Agrochemical Intermediate Manufacturing

    Producers of modern crop protection agents utilize this material to introduce trifluoromethoxy-substituted aryl groups within herbicide and fungicide scaffolds. The compound’s fluorinated moiety enhances physicochemical stability and modulates biological activity, entering downstream chlorination or condensation steps within protected, validated operations.

    Industry compliance standards

    • FAO/WHO Specification for Plant Protection Products
    • ISO 9001:2015 Quality Management Systems
    • REACH Regulation (EC) No 1907/2006—Substance Registration
    • Local agrochemical production permits (e.g., US EPA Regulation 40 CFR)

    Typical usage ratio

    • 2.5–10.0 wt% as an arylating intermediate across condensation or halogenation steps, based on end-product specification and regulatory residue constraints.

    Downstream process integration

    • Charged in the early-stage formation of active agrochemical ligands via metal-catalyzed cross-coupling or enolate-driven alkylation prior to formulation and encapsulation.

    Final product types

    • Trifluoromethoxy-substituted pre-emergent herbicides
    • Systemic and contact fungicide active ingredients
    • Pesticide formulation intermediates for later onsite blending
    • Stabilized crop protection technical concentrates

    3. Specialty Fine Chemicals and Advanced Electronic Materials

    Manufacturers in the electronics industry require high-purity fluorinated aromatic compounds as core building blocks for photoresists, liquid crystal intermediates, and advanced dielectric materials. The compound participates in processes where electron-withdrawing groups must be precisely introduced, supporting tight control of dielectric constant and UV transparency in technical polymers.

    Industry compliance standards

    • IEC 61249 for materials in printed circuit boards
    • SEMATECH purity and trace metal specification
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances)
    • ISO 14001:2015 Environmental Management for chemical manufacturers

    Typical usage ratio

    • 0.2–4.0 mol% as a reactive modifier or structural building block based on resin synthesis batch size and targeted polymer property profile.

    Downstream process integration

    • Introduced during monomer synthesis, prior to step-growth polymerization or selective UV crosslinking in resist formulation plants.

    Final product types

    • Advanced epoxy and polyimide resins for semiconductor coating
    • Liquid crystal intermediate precursors
    • Optical-grade specialty polymers and coatings
    • Electrostatic dissipative component resins

    4. Fragrance Ingredients and Aroma Chemicals

    Industrial perfumery and aroma chemical syntheses selectively deploy this compound as a precursor in the downstream elaboration of fluorinated aromatic notes found in premium fragrance compositions. Trifluoromethoxy incorporation extends volatility profiles and facilitates unique olfactory characteristics, often entering key methylation or reduction steps.

    Industry compliance standards

    • International Fragrance Association (IFRA) Standards
    • Good Manufacturing Practices for Aroma Chemicals (IFRA-IOFI GSC)
    • European Regulation (EC) No 1223/2009 on cosmetic products
    • REACH (where applicable for imports into EU)

    Typical usage ratio

    • 0.05–0.40 wt% relative to the finished aroma concentrate, adjusted to meet fragrance profile targets and safety margins per formulation type.

    Downstream process integration

    • Added post-synthesis as a precursor in Friedel-Crafts alkylation/reduction or directly as a blending constituent in aroma compounding vessels before final base esterification.

    Final product types

    • Fluorinated aromatic fragrance ingredients
    • Key notes for fine fragrances and personal care products
    • Aroma compositions for household and industrial applications
    • Intermediates for further functionalization by flavor houses
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    Certification & Compliance
    More Introduction

    4'-(Trifluoromethoxy)Acetophenone: Practical Chemistry, Better Outcomes

    Understanding Our Approach to 4'-(Trifluoromethoxy)Acetophenone

    Manufacturing chemicals comes with its own set of lessons, especially with niche products like 4'-(Trifluoromethoxy)Acetophenone. In our years running reactors and refining purification techniques, this compound stands out for those who handle organic synthesis regularly. Its structure—acetophenone ring with a trifluoromethoxy group at the para position—gives chemists a distinct handle for functionalization, showing practical advantages every step of the way compared to simpler acetophenones.

    Specification and Consistency: Direct from the Source

    Using 4'-(Trifluoromethoxy)Acetophenone means managing two key factors: purity and traceability. From the manufacturer’s floor, we keep batch logs down to individual lot numbers, backing each drum with trace analytical records. Regular users notice right away if the starting material flinches on GC purity, so we do not skip the basics—narrow boiling spread, well-defined melting point, and rigorous GC-MS confirmation. Standard assays target >99%, and all color, odor, and volatile profile expectations land within tight bands. Nitrogen blanketing across transfer and packaging lines boosts shelf life and holds off oxidative byproducts, critical for clients working in fine pharmaceutical and agrochemical intermediates.

    Experience in Laboratory and Plant: Why Structure Matters

    Some will ask what really sets 4'-(Trifluoromethoxy)Acetophenone apart from standard acetophenone or acetophenones with other substituents. The trifluoromethoxy group changes the electron density, and field chemists can spot shifts in reactivity after just a few trials. We see milder conditions for aromatics functionalization and more stability in sensitive intermediates. Compared to electron-withdrawing fluorine at ortho or meta positions, para substitution delivers fewer side products and holds up better in scale-up conditions. Solubility profiles in typical organic solvents edge out non-fluorinated analogs, allowing for shorter filtration times, fewer losses, and easier workup. This matters every day on the bench and at pilot scale both.

    Practical Cases: From Research to Bulk Production

    Labs working on new agrochemicals or pharmaceutical scaffolds often need a reliable para-trifluoromethoxy compound for building out structure-activity relationships. Medicinal chemists lean on this compound because the trifluoromethoxy group imparts strong metabolic stability and influences binding affinities in biologically active targets. In agricultural discovery pipelines, it provides a proven backbone for herbicide and fungicide leads. On plant floors, where uninterrupted syntheses save tens of thousands, our team keeps routines strict: protected storage, no leaky seals, no chance contaminants from upstream acetophenones. These disciplines mean downstream partners see predictable yields and fewer surprises, which cuts costs and downtime in multi-step syntheses.

    Supply Chain Transparency, Hands-On Quality

    Sourcing from real manufacturers leads to fewer headaches than chasing lots through traders or resellers. We get early calls on performance shifts or new application requirements, which helps us target process adjustments at the reactor level, not with arbitrary post-processing. The tracing starts with raw trifluoromethoxy benzene, tracked through catalyst usage and solvent swaps, finishing with HPLC and GC audits on every delivery. Our clients don’t deal with the silent drift in performance that comes from market intermediaries swapping suppliers midstream. This kind of discipline protects R&D budgets and keeps pilot plants running smoothly.

    Safety and Responsible Handling: Learned from the Shop Floor

    Handling fluorinated aromatics carries specific risks that go beyond what’s seen in simple derived acetophenones. Dense vapor management, dedicated catch pots, and quick-exit ventilation are just parts of our daily routine, learned through years at the bench and scaling up operations. Careful solvent selection avoids chlorine contamination and limits peroxide formation. Packaging can leave a big mark on product quality too; we switched to lined containers after seeing how steel interacted under certain humidity. These hands-on details cut waste, improve consistency, and answer client concerns long before a packed drum leaves the plant.

    Process Optimization: Avoiding Unnecessary Complications

    Our role puts us in close contact with researchers scaling up methodologies. While academia can explore every theoretical route, manufacturing needs results that don’t demand extra purification cycles or waste control headaches. The consistency of our 4'-(Trifluoromethoxy)Acetophenone means chemists avoid retracing steps to troubleshoot side-products. Clients also sidestep the common problem of reordering and finding a subtly shifted impurity profile or altered reactivity, because we keep proper process documentation and repeat runs based on proven chemistries, not forced improvisation.

    Comparing with Other Substituted Acetophenones

    Each substituted acetophenone has a different fingerprint in application and handling. We have produced para-methoxy, para-chloro, and para-nitro derivatives in batch runs, and the differences in crystallinity, stability, and reaction profile become clear as soon as one scales up. Para-trifluoromethoxy groups, in our hands, increase melting point slightly and give improved stability under storage compared to fluoro or methoxy analogs. Product loss during distillation typically falls in the lower quartile of similar products, and downstream dehydration or amination pathways show fewer tars and side products by NMR. Hands-on users spot the difference in how easily the product dissolves, both in polar and nonpolar solvents, which makes filtration and washing less of a bottleneck.

    Building on Real Usage Feedback

    Users report more robust process windows with our 4'-(Trifluoromethoxy)Acetophenone as compared to batches sourced through indirect channels. We exchange technical feedback directly with R&D chemists and production engineers, allowing us to fine-tune parameters batch by batch. Onsite visits have shown us the value of tailored drying protocols to improve stability under high humidity. In one example, a partner moved from a labor-intensive silica filtering protocol to direct crystallization after we refined the wash phase, saving both labor and solvent. These lessons feed back into every shipment, shaping how we adjust particle size, moisture content, and packing workflows.

    Environmental Responsibility Anchored in Practical Measures

    Manufacturing fluorinated intermediates takes strict controls to keep emissions, effluents, and residues contained. We designed scrubber capacity well above regulatory minimums, and the staff keeps vigilant logs on all transfer cycles to catch losses before they grow into issues. Incineration and solvent recycling minimize both overhead and environmental pressure, critical for fluorine-rich materials. By maintaining tight connections between production and end-use, we cut out the guesswork. Distributors cannot always confirm solvent history or previous handling, but we supply those records up front, reducing environmental and regulatory risk for everyone in the chain.

    Application Experiences: Medicinal and Industrial Chemistry

    Downstream users tell us that 4'-(Trifluoromethoxy)Acetophenone plays a unique role in fragment-based design for pharmaceutical projects. Its electron-deficient nature and steric properties impact binding kinetics in ways that other acetophenones cannot match. For some, this makes the difference between an abandoned lead and a candidate that advances toward animal testing. Agrochemical developers, on the other side, see gains in compound persistence and rain-fastness when using this building block. By supporting solvent switch studies and thermal stability analyses, we help partners finish pre-formulation quickly and get cleaner patent claims on new active ingredients. These user-driven demands shape everything from our crystallization protocols to our transport climate controls.

    Solving Real Problems in Scale-Up and Delivery

    Clients come to us facing live setbacks: yields that drop for no clear reason, materials that don’t meet impurity thresholds, or powders that cake in storage. Through close technical sharing, we have adapted to these issues in real time. Once, a customer's production line jammed due to overdrying of a batch. We worked directly from our QC data to trace the cause, and updated our drying endpoints to prevent recurrence. In another case, an unexpected side reaction during scale-up was traced to trace water presence, prompting changes to our final step gas-purging routine. This flexible, experienced-based approach reduces project risk and adds value to the relationship in ways that empty marketing language cannot.

    Cost Efficiency Rooted in Proven Processing

    Our investment in processing controls and staff training returns savings that pass directly to the end user. Routine purification and solvent recovery keep margins stable, especially on larger lots where other suppliers struggle to hold purity and appearance. Many clients notice fewer rejects, less overordering to compensate for batch inconsistencies, and smoother integration into downstream reactions. Running regular pilot studies on the factory floor, we zero in on small details—solvent ratios, purging sequences, packaging improvements—that make a difference when multiplied across tons of material. Long-term users point to these operational efficiencies as the quiet, often overlooked edge the direct manufacturer holds over fragmented supply chains.

    Mistakes, Lessons, and Continuous Improvement

    Working hands-on with 4'-(Trifluoromethoxy)Acetophenone, we have seen our share of surprises. Early runs sometimes brought trace impurities not visible until clients attempted complex couplings. We updated filtration and recrystallization protocols, ran deeper impurity scans, and quickly saw batch consistency jump. Sometimes, bottlenecks appeared in final drying or powder flow; our in-house team built new fluid bed drying setups and retrained operations staff. Critically, we do not wait for outside auditors to spot problems. Our production crew flags trends in color, odor, or handling behavior immediately, leading to changes before they cascade downstream. Experience taught us shortcuts get expensive fast, so we invest in preventive maintenance, raw material vetting, and supply partnerships where results, not claims, drive repeat business.

    Supporting Clients Across R&D, Production, and Scale

    Our team combines daily plant operations with technical problem-solving for clients pushing chemistry forward. We back R&D programs with small-batch samples, scale up seamlessly for pilot runs, and meet production-scale demand with the same direct communication. Clients building dendrimer scaffolds, exploring greener synthetic routes, or balancing physical property tradeoffs in pharmaceutical design have shaped how we make and deliver 4'-(Trifluoromethoxy)Acetophenone. Packaging options flex to storage or shipping extremes, backed by real stress-testing, and always tied to practical advice gathered over years—not generic suggestions copied from distributor leaflets.

    Why Direct Purchasing Makes a Practical Difference

    Taking delivery from the manufacturer shortens lead time, strips out unnecessary markups, and brings real-time access to technical troubleshooting. Feedback cycles are short, corrections quick, and the person answering a quality question knows the exact reactor, operator, and analytical set. Clients with complex regulatory review save time by accessing source documents, eliminating the research headaches caused by broken chains of custody. Operational headaches—unreliable color, unexplained odor shifts, or variable particle size—drop away with direct oversight of every production stage. Across dozens of deliveries and hundreds of client projects, direct purchase translates to confidence and concrete performance at the bench and on the plant floor.

    Shaping the Future—Today’s Production, Tomorrow’s Standards

    The market for specialized building blocks like 4'-(Trifluoromethoxy)Acetophenone grows every year, driven by true innovation in pharma, agro, and material science. As manufacturers, we not only fulfill today’s demands but also invest in cleaner, safer, more reliable ways to deliver tomorrow’s versions of this indispensable intermediate. Regular customer input helps us experiment with greener process solvents, tighter analytics, and smarter packaging—adjustments that would lag in slower market channels. Our philosophy stays simple: lessons from hands-on chemistry shape every gram shipped, every process improvement, and every partnership sustained.