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4-(Trifluoromethoxy)Benzaldoxime

    • Product Name 4-(Trifluoromethoxy)Benzaldoxime
    • Alias 4-(Trifluoromethoxy)benzaldehyde oxime
    • Einecs 658-143-6
    • 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

    102299

    Product Name 4-(Trifluoromethoxy)Benzaldoxime
    Cas Number 89402-53-9
    Molecular Formula C8H6F3NO2
    Molecular Weight 205.13
    Appearance White to off-white solid
    Melting Point 87-91 °C
    Purity Typically ≥98%
    Solubility Soluble in organic solvents (e.g., DMSO, methanol)
    Smiles C1=CC(=CC=C1C=NO)OC(F)(F)F
    Inchi InChI=1S/C8H6F3NO2/c9-8(10,11)14-7-3-1-6(2-4-7)5-12-13/h1-5H

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

    Packing & Storage
    Packing Amber glass bottle containing 25 grams of 4-(Trifluoromethoxy)Benzaldoxime, sealed with a PTFE-lined cap and labeled with hazard information.
    Shipping 4-(Trifluoromethoxy)Benzaldoxime is shipped in tightly sealed containers, protected from light, moisture, and incompatible materials. It is transported under ambient conditions unless specified otherwise and labeled according to relevant chemical safety regulations. Proper documentation and handling procedures ensure safe delivery to laboratories or industrial sites.
    Storage 4-(Trifluoromethoxy)Benzaldoxime should be stored in a tightly closed container in a cool, dry, and well-ventilated area, away from light, heat, and incompatible substances such as strong oxidizers and acids. Avoid moisture exposure. Handle under an inert atmosphere if prolonged storage is required. Properly label the container and store at recommended temperature, typically at 2–8°C (refrigerated) unless otherwise specified.
    Application of 4-(Trifluoromethoxy)Benzaldoxime

    Applications of 4-(Trifluoromethoxy)Benzaldoxime in Industrial Manufacturing

    As a direct manufacturer with in-depth process experience, we support various advanced sectors by supplying high-purity 4-(Trifluoromethoxy)Benzaldoxime. This specialty building block advances the development of modern intermediates and active compounds, addressing sophisticated synthesis requirements in agrochemical, pharmaceutical, and specialty chemical industries. The following application matrix outlines key real-world downstream scenarios, with details covering regulatory compliance, precise formulation ratios, process positioning, and finished product profiles.

    1. Agrochemical Active Ingredient Synthesis

    4-(Trifluoromethoxy)Benzaldoxime is widely involved as a nitrogen- and oxygen-containing intermediate during the synthesis of advanced herbicide actives, particularly in the design of phenoxy- and oxime-based weed control agents. Leading downstream manufacturers utilize its selective reactivity to construct specific structures that enhance field stability and bioactivity, while conforming to stringent regulatory oversight throughout the product lifecycle.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • OECD Principles of Good Laboratory Practice (GLP)
    • EU Regulation (EC) No 1107/2009 (Plant Protection Products)
    • EPA FIFRA registration (USA)

    Typical usage ratio

    • 0.5–2.5 molar equivalents per targeted active intermediate, adjusted based on desired oxime-to-ketone conversion rates and impurity limits during controlled-reaction steps.

    Downstream process integration

    • Acts as a core nucleophilic intermediate in the late-stage condensation or oximation reactions of phenoxy herbicides and selective pre-emergent compounds, typically added during main batch synthesis prior to crystallization and final formulation.

    Final product types

    • Pre-formulated active ingredient concentrates for field application
    • Water-dispersible granules (WDG) containing new-generation herbicides
    • Soluble liquid (SL) and emulsifiable concentrate (EC) crop protection products

    2. Pharmaceutical Intermediate for Antiviral Drug Development

    Downstream pharmaceutical producers employ 4-(Trifluoromethoxy)Benzaldoxime as a key synthon for constructing oxime-functional APIs, especially in molecules designed for central nervous system (CNS) stimulation or novel anti-infective agents. Its electron-withdrawing properties allow for the introduction of stability-modifying groups, directly impacting the pharmacokinetic profile of investigational drugs.

    Industry compliance standards

    • Current Good Manufacturing Practice (cGMP) per 21 CFR Parts 210/211
    • ICH Q7 Guidelines for API Manufacturing
    • European Pharmacopoeia (Ph.Eur.) and United States Pharmacopeia (USP)
    • Drug Master File (DMF) registration for supplied intermediates

    Typical usage ratio

    • 0.7–1.2 molar equivalents relative to the main API precursor, selected by route-specific needs in the oxime etherification or reduction steps.

    Downstream process integration

    • Introduced in the intermediate oxidation phase or as an oxime precursor during building block assembly; commonly reacts in batch reactors under controlled pressure and temperature suitable for high-purity secondary amide or nitrile conversion.

    Final product types

    • Advanced pharmaceutical intermediates for CNS or antiviral platforms
    • Final APIs with a stabilized oxime functionality
    • Oral and parenteral dosage forms post-formulation (dependent on further finishing by the customer)

    3. Specialty Fine Chemicals for Electronic Materials

    Producers of advanced electronic chemicals leverage 4-(Trifluoromethoxy)Benzaldoxime to introduce trifluoromethoxy-phenyl groups into functionalized compounds intended for the semiconductor sector, particularly where modified aryl oximes are required for enhanced electron-withdrawing and surface energetics in photoresist component manufacture and dielectric materials engineering.

    Industry compliance standards

    • SEMI MS Standards (Semiconductor Equipment and Materials International)
    • ISO 9001:2015 Quality Management Systems for chemical process control
    • IECQ Hazardous Substance Process Management (HSPM)

    Typical usage ratio

    • 5–25% w/w within formulation blends, dependent on target resin backbone and desired dielectric properties in end-use photoresist or insulation layer systems.

    Downstream process integration

    • Distributed directly into monomer functionalization or as an additive during pre-polymer mixing, enabling controlled trifluoromethoxy introduction to aromatic rings—usually prior to or during resin backbone formation via condensation or addition polymerization.

    Final product types

    • Advanced photoresist precursors for integrated circuit lithography
    • Specialty insulating varnishes for microelectronics
    • Dielectric thin films for high-frequency PCB manufacturing

    4. Crop Protection Synergist Formulations

    Some agrochemical formulators use this compound not as an active, but as a structural synergist or safener in herbicide and fungicide mixtures, optimizing resistance management by modulating active ingredient bioavailability or selectivity. The oxime group’s unique chemistry aligns well with the industry trend toward molecularly targeted crop protection solutions.

    Industry compliance standards

    • EU REACH Regulation (EC) No 1907/2006
    • ISO 9001:2015 for agrochemical formulation processes
    • National pesticide registration guidelines (e.g., China ICAMA, US EPA)

    Typical usage ratio

    • 0.1–0.3% by weight in post-emergence herbicide liquid mixtures; adjustment based on measured enhancement of uptake or selectivity in target crop field trials.

    Downstream process integration

    • Added at final blending stage of crop protection formulation production, just prior to packaging, to preserve synergist activity and minimize degradation risk under storage and shipment conditions.

    Final product types

    • Ready-to-use tank-mix adjuvants for field application
    • Liquid suspensions containing multiple actives for targeted weed and disease control
    • Seed treatment blends for enhanced germination protection

    5. Structural Modification in Dye Intermediate Manufacturing

    The dye and pigment industry incorporates 4-(Trifluoromethoxy)Benzaldoxime as a core synthon to introduce both trifluoromethoxy and oxime groups in the advanced stages of azo and anthraquinone dye synthesis, improving the chemical’s stability against light and oxidation, which supports demands for colorfast, high-purity pigments required in textile and plastic applications.

    Industry compliance standards

    • OEKO-TEX Standard 100 for textile safety
    • EN 71-3 (European standard for toy safety, migration of certain elements)
    • ZDH Quality Management System for dyestuff processing

    Typical usage ratio

    • 2–6% by weight in coupling reaction mixtures, optimized according to desired chromophore intensity and stability during the diazotization or coupling stage of dye synthesis.

    Downstream process integration

    • Introduced during the penultimate coupling phase of azo dye manufacture, or as a modifier added to anthraquinone precursors, ensuring full integration into the colorant molecular structure prior to salt formation or pigment dispersion treatments.

    Final product types

    • High-performance azo and anthraquinone dyes for textile and apparel use
    • Polymer-compatible colorants for masterbatch and plastic compounding
    • Lightfast pigments for coatings and inks
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    Certification & Compliance
    More Introduction

    Introducing 4-(Trifluoromethoxy)Benzaldoxime: An Editor’s Insight into Its Manufacturing, Applications, and Real-World Potential

    What We Produce: The Value of 4-(Trifluoromethoxy)Benzaldoxime in Today’s Chemical Landscape

    Working on the frontlines of fine chemical synthesis, we see firsthand which products are in demand and why certain molecules shape ongoing research and industrial applications. 4-(Trifluoromethoxy)Benzaldoxime represents not only a compound but a reflection of our progress in fluorinated aromatic intermediates. Our plant team has invested years in fine-tuning each step of this product’s route, from raw fluorinated reagents selection to reliable isolation and purification.

    The structure itself, with its trifluoromethoxy group attached at the para position and oxime group at the aldehyde, opens the door to applications that call for electronic modulation, particularly where both stability and reactivity balance each other. Customers often ask for higher standards—whether it’s purity, guaranteed reproducibility, or scalability from gram to multi-ton quantities—because they know their work depends on it.

    Our Product Model and Manufacturing Reassurance

    Every batch begins with a review of the input materials. We source only high-assay precursors with authenticated supplier histories. Because routine doesn’t cover unexpected shifts, our chemists monitor each reaction step, making adjustments to temperature and pressure parameters instead of relying solely on preset programs. The final 4-(Trifluoromethoxy)Benzaldoxime comes out as a crystalline powder, usually with a purity above 99 percent by HPLC on our standard lot. Over years of operation, we’ve developed purification setups that avoid cross-contamination from previous runs. Routine third-party analysis shows our actual impurity levels well below typical market samples—and we keep ongoing logs to verify repeatability.

    Packing and shipping have become more important as customers’ expectations on moisture control and long-haul stability increase. We don’t cut corners here—everything gets vacuum-sealed, with desiccant and multi-layer foil. For providers using bulk vessels, we fit tamper-evident closures. Traceability runs through our chain: batch numbers tie back to raw material lots, logs document each step, and every package gets a complete distribution history. Such transparency is now expected, but for us it’s a practical necessity to avoid product loss and ensure reliability down the line.

    Usage Patterns and Emerging Applications

    Researchers in pharmaceutical and agrochemical fields make up most of the demand for 4-(Trifluoromethoxy)Benzaldoxime. In our experience, this molecule serves as a useful intermediate for building more complex nitrogen- or oxygen-containing motifs. The trifluoromethoxy group often functions as a key modulator of biological activity. In practice, we have seen project leads use our product to extend the half-life of lead drug candidates, or to introduce selective hydrogen bond acceptors in herbicide backbones.

    For pharmaceutical research, chemists appreciate that the oxime function allows further transformations—direct conversion to amides, hydroxylamines, or even direct cyclization under mild conditions. The electron-withdrawing trifluoromethoxy group alters reactivity compared with methyl or methoxy analogs, which translates to greater options during medicinal chemistry campaigns. Reliable access to high-purity oxime means teams can confidently investigate new structure-activity relationships without getting sidetracked by purification headaches.

    Within agrochemical development, our product bridges the gap between lab-scale discovery and industrial-scale implementation. Field feedback tells us that trifluoromethoxy-substituted cores often lead to slower degradation profiles—an attribute particularly valuable for active ingredients expected to last through the growing season. The oxime team at our site keeps a running set of notes on which transformations give best yield and which combinations of base and solvents cut down on byproduct formation, passing along these observations when clients run into synthetic bottlenecks.

    Differences from Other Structurally Related Materials

    People often ask how 4-(Trifluoromethoxy)Benzaldoxime stands apart from more common analogs, such as 4-methoxy- or 4-methylbenzaldoxime. We’ve synthesized and handled most of these variants, giving us practical insight into their comparative behavior. The trifluoromethoxy group, being strongly electron-withdrawing and highly lipophilic, fundamentally changes the molecule’s interaction with reagents and biological targets. Reaction rates in nucleophilic attack at the oxime site decrease slightly, granting better control during downstream synthetic steps. We have observed fewer side reactions in planned conversions versus methyl-substituted systems. In storage, the trifluoromethoxy group imparts enhanced chemical robustness—colored decomposition or volatile byproducts that sometimes show up in non-fluorinated materials appear at far lower rates here, even after several months under dry storage.

    Comparing price points, the initial cost of introducing a trifluoromethoxy moiety runs higher due to the specialty of raw materials and the need for closer monitoring during fluorination. We’ve structurally confirmed that the final output from our plant attains a lower impurity profile than typical market methyl or methoxy analogs, mostly due to our route design and commitment to endpoint purification. Researchers sometimes hesitate at the added cost, but ongoing experiments show tangible benefits in final compound stability, yield, and improved downstream process safety.

    Operational Realities and Our Response to Customer Demands

    Supplying 4-(Trifluoromethoxy)Benzaldoxime at high volumes in short turnaround time presents a unique challenge. We work directly with process engineers to streamline each part of the operation, since slowing any one stage can ripple outward. Every new order starts with a check on whether current production lines are keeping up with purity requirements and whether any unusual customer requests—higher moisture barriers, specialized millings, extended shelf life data—have come in recently. Where clients need kilogram to multi-ton batches delivered on tight schedules, our logistics team plans shipments outside of regular hours. This means early morning sample departures and late-night coordination with carriers, especially if materials are shipping overseas.

    Clients pushing for sustainable or green chemical production ask for documentation on resource efficiency, emissions, and waste minimization. Over the last five years, we’ve made concrete changes in the factory: solvent re-use protocols, in-house recycling of secondary reagents, and scrubbing of off-gas to minimize fluorinated emissions. Power for the main synthetic steps comes from a dedicated grid that sources from lower-carbon hydro, and routine audits keep this commitment honest. Some customers need guarantees that their pharmaceutical or crop-protection intermediates are produced under conditions that meet not only local but also international standards, so we provide site visit access along with comprehensive documentation.

    Our Track Record: Consistency and Reliability in Each Batch Shipped

    In the specialty chemical industry, past performance serves as the most reliable predictor of future expectations. Our team tracks batch-to-batch consistency across thousands of kilograms annually. Each finished lot undergoes checks for melting point, water content by Karl Fischer, polymorphic identity, and spectral purity. During busy project periods, we schedule split sampling so that customer analytical labs receive representative vials in advance, a practice that has saved more than one research timeline. Sometimes biopharma partners run parallel screens to catch batch-to-batch drift early. We welcome these controls; our data show over 97 percent reproducibility statistics per major parameter over multiple years.

    Troubles sometimes arise. High ambient humidity can carry over small but detectable traces of water during summer months, so we step up desiccant changes and double-seal each batch stored for longer than 10 days. Because our team has lived through such seasonal swings, we keep action logs and adjust on the fly instead of waiting for problems to surface later in a customer’s process. If a rare out-of-spec batch does ship, our policy is immediate root-cause analysis: production gets a stop order, QA holds related stock, and the entire customer chain receives full disclosure along with corrective recommendations. We believe that such openness earns trust and reduces long-term operational hiccups.

    Perspectives from Our Clients and Continuous Feedback Loops

    Real improvement comes from listening to recurring customers—the synthetic chemists, formulation scientists, and manufacturing techs who build their protocols around our material. We run regular satisfaction follow-ups: questions on how our product integrates with new synthetic methods, whether observed purities match expected figures, and how on-time delivery tracks against demanding project milestones. Over the past year, growing requests for custom particle sizes and purity grades have prompted us to expand both documentation and technical support. Our technical team answers direct process questions and shares recent optimizations where it’s practical.

    Some partners run pilot programs for pharmaceuticals or agrochemical leads that require unusual concentrations, or they attempt new reaction sequences not found in published literature. By making laboratory-scale samples rapidly available, then ramping up if initial screens pan out, we support their pipeline without locking them into oversize orders up front. Recent experience with clients in North America highlighted the value of flexible manufacturing—being able to shift from 100-gram to tens-of-kilograms throughput in less than one week proved decisive for a fast-moving crop protection project. The success stories here come from a willingness to adapt, but they also depend on a depth of knowledge built through direct feedback from real users.

    Continuous Refinement: Research, Development, and New Frontiers

    Staying ahead in today’s specialty chemical world means steadily refining both product quality and the knowledge that supports its use. We maintain a full-time R&D arm, tasked as much with troubleshooting as with looking ahead. Their work includes route scouting for improved atom economy, finding new catalysts to lower side-product ratios, and reverse engineering market competitors’ approaches—not to copy, but to strengthen our base. Several team members serve on pharmaceutical project panels, sharing insights into metabolic pathways where the trifluoromethoxy group influences oral bioavailability, or the comparative behavior of oxime linkages under stress-testing.

    Our scientists keep direct ties to academic partners, tracking case studies and fundamental research on fluorinated aromatic intermediates. We incorporate validated literatures—ketoxime rearrangement insights, methods for selective ortho or para-functionalization—into practical process improvements. Because our staff moves from bench to pilot plant, then into full-scale plant operation, knowledge flows without blockages or loss along the way. Over recent years, this approach has allowed us to spot cost-saving catalysts, reagent swaps, and more robust filtration steps that wouldn’t have emerged if each team only knew their stage of the process.

    Practical Advice: Handling, Storage, and Workflow Integration

    Users often underestimate the fine points of storing and handling sensitive intermediates. With 4-(Trifluoromethoxy)Benzaldoxime, we recommend storage in a cool, dry place, away from direct sunlight. Our experience shows this keeps the oxime functional group stable for months, and the trifluoromethoxy ring doesn’t degrade or shed fluoride like some customers fear. For high-throughput labs, single-use aliquots prevent contamination from repeat opening; our packaging lines are set up for direct aliquoting to match typical workflow needs. In industrial settings, we advise closed transfer to avoid airborne particulate, though routine monitoring reveals dusting rates are lower than non-fluorinated analogs.

    Solubility checks in common organic solvents help downstream users optimize their processes. We prep samples in acetone, acetonitrile, and dichloromethane, storing data on solvent compatibility so customers avoid solubility or precipitation surprises during late-stage scale-up. Over years, these hands-on operating notes have translated into smoother batch records for finished pharmaceuticals and streamlined workups for agrochemical field trials.

    Market Shifts and Our Adaptation Strategy

    The global market for trifluoromethoxybenzenes, including oxime derivatives, evolves every year. Regulatory backdrops in pharmaceuticals and crop management drive ongoing demand for stable, reliable fluorinated intermediates. Our market researchers track these shifts, updating forecasts and keeping our capacity flexible. In years where a blockbuster patent announcement triggers sudden spikes in trifluoromethoxy demand, we scale batch runs without cutting inspection times or sidestepping environmental controls.

    Downward price pressure from generic competition, especially in raw trifluoromethoxybenzene, leads us to maximize yield per step, cut waste, and negotiate better upstream deals on sourcing. Our downstream clients rely on stable supply and predictable pricing, so we buffer against market swings with dedicated reserves and long-term partnerships in our procurement team.

    Meeting Industry Standards: Quality, Stewardship, and Future Focus

    We comply with international quality standards, both out of necessity and because years of real-world operation have proven their value. Audits from pharmaceutical, crop-protection, and industrial clients come frequently. We maintain up-to-date certifications and regularly update training across our operational staff. Internal review cycles check every aspect of documentation and batch analytics, so any gaps get spotted early.

    Sustainability requirements have changed how we design our production processes. The shift away from chlorinated solvents or reagents isn’t just a regulatory checkbox; it means real cost savings and lower environmental risk, something that matters when we operate at scale. Our process teams keep full emissions logs, while site management reviews usage rates for solvent, water, and energy monthly. These checks keep us honest and competitive at the same time.

    Feedback from academic and industrial partnerships continues to steer our future projects. We invest in pilot programs for new functionalized benzaldoximes, supporting both the pharmaceutical discovery sector and crop-protection research trying to outpace resistance. Each time a client launches a new chemistry that needs custom intermediate support, we match our resources to their requirements and document each step.

    Looking Ahead: Our Commitment in Supplying 4-(Trifluoromethoxy)Benzaldoxime

    Manufacturing 4-(Trifluoromethoxy)Benzaldoxime for the global market means taking responsibility—for the chemistry we deliver, for our role in sustainable supply chains, and for meeting expectations of technical excellence. Our experience, from concept to regular delivery, demonstrates that quality in specialty chemical manufacturing grows from daily habits: precise testing, transparent problem-solving, and listening to those who trust their research to our materials.

    We don’t see ourselves as just suppliers, but as committed partners to the scientists, engineers, and teams who are pushing boundaries in their own fields. With each batch produced, tracked, and delivered, our promise stands: to maintain the standards, workflows, and responsiveness that have earned us the continuing trust of both established and emerging innovation leaders worldwide.