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4-(Trifluoromethyl)Benzhydrazide

    • Product Name 4-(Trifluoromethyl)Benzhydrazide
    • Alias Benzhydrazide, 4-(trifluoromethyl)-
    • Einecs 696-020-4
    • 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
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    372838

    Cas Number 116370-38-2
    Molecular Formula C8H7F3N2
    Molecular Weight 188.15 g/mol
    Appearance White to off-white solid
    Melting Point 110-114°C
    Solubility Slightly soluble in water, soluble in organic solvents
    Purity Typically ≥98%
    Synonyms 4-(Trifluoromethyl)benzohydrazide
    Chemical Structure CC1=CC=C(C=C1)C(=O)NN
    Smiles C1=CC(=CC=C1C(=O)NN)C(F)(F)F
    Inchikey INYKPRWPEJCUES-UHFFFAOYSA-N

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

    Packing & Storage
    Packing White powder supplied in a 25g amber glass bottle, featuring a tamper-evident cap and a printed reagent label with hazard warnings.
    Shipping 4-(Trifluoromethyl)Benzhydrazide is shipped in tightly sealed, chemical-resistant containers to protect against moisture and contamination. It should be labeled according to relevant safety regulations, handled by trained personnel, and transported under conditions minimizing exposure to heat or direct sunlight. Suitable documentation and hazard information must accompany all shipments.
    Storage Store **4-(Trifluoromethyl)benzhydrazide** in a tightly sealed container under cool, dry, and well-ventilated conditions. Protect from moisture, heat, and sources of ignition. Keep away from incompatible substances such as strong oxidizers and acids. Label the container clearly and store in a designated chemical storage area. Follow all standard laboratory safety protocols when handling and storing this compound.
    Application of 4-(Trifluoromethyl)Benzhydrazide

    Applications of 4-(Trifluoromethyl)Benzhydrazide in Industrial Manufacturing

    We supply 4-(Trifluoromethyl)Benzhydrazide to demanding sectors across pharmaceutical, agrochemical, specialty intermediate, and advanced material industries. Our experienced teams support technical formulation, in-process performance, and quality alignment for downstream manufacturers seeking high-purity hydrazide derivatives.

    1. Pharmaceutical Active Ingredient Synthesis

    This compound serves as a specialized intermediate for the synthesis of selective serotonin receptor modulators, anti-inflammatory agents, and oncology-targeted APIs. Pharmaceutical formulators value its electron-withdrawing trifluoromethyl group for constructing tailored heterocyclic scaffolds and improving pharmacokinetic profiles. Its high chemical reactivity enables direct acyl hydrazone formation under mild condensation, facilitating late-stage API modification in multi-step processes.

    Industry compliance standards

    • ICH Q7A GMP for Active Pharmaceutical Ingredients
    • USP-NF (United States Pharmacopeia–National Formulary)
    • EP (European Pharmacopoeia) compliance for intermediates
    • FDA 21 CFR Part 211 for manufacturing operations

    Typical usage ratio

    • 0.10–0.35 molar equivalents relative to key coupling precursors; fine-tuned according to final API yield requirements and process step optimization

    Downstream process integration

    • Introduced at the hydrazone condensation stage, after protection/deprotection cycles, or functional group transformation steps

    Final product types

    • Small-molecule drugs (e.g., receptor modulators, enzyme inhibitors)
    • Drug substance intermediates for clinical and commercial manufacturing
    • Reference standards for pharmaceutical R&D

    2. Agrochemical Intermediate Fabrication

    Leading crop protection formulators utilize this material as a core hydrazide for the synthesis of novel herbicide and fungicide actives. The trifluoromethyl substituent supports development of compounds with improved bioactivity and environmental stability. Direct hydrazide incorporation occurs in multi-step production, enabling process chemists to construct complex heterocycles with high field efficacy and regulatory compliance for large-scale agricultural deployment.

    Industry compliance standards

    • GB 4839-2016 (China National Agrochemical Standard)
    • EC 1107/2009 Regulation (EU plant protection product registration)
    • FAO Technical Guidelines for the Registration of Pesticides
    • ISO 17025 laboratory accreditation for analytical test results

    Typical usage ratio

    • 10–25% w/w in hydrazide derivative synthesis as a limiting reagent, tailored by target molecule design and process throughput

    Downstream process integration

    • Added during the key cyclization or condensation reactions in technical grade active substance manufacturing

    Final product types

    • Active pesticide ingredients (e.g., hydrazone-based herbicides and fungicides)
    • Technical concentrates for downstream formulation
    • Analytical standard substances

    3. Fine Chemical Building Block for Advanced Materials

    Our production partners in electronic and optical material fields use this specialty hydrazide as a precursor in organic synthesis for fluorinated specialty monomers and crosslinkers. The trifluoromethyl group offers thermal and chemical resistance, improving polymer backbone performance. Material scientists employ it for precision assembly of functional monomer units, allowing for the development of coatings, films, and photoresist chemicals with enhanced performance under high-temperature or corrosive service environments.

    Industry compliance standards

    • ISO 9001-certified quality management systems
    • RoHS Directive 2011/65/EU for material restrictions
    • REACH Regulation (EU) No. 1907/2006 for safe chemical use
    • ASTM D543 (polymer chemical resistance testing)

    Typical usage ratio

    • 5–15% w/w in prepolymer or monomer activation stages, adjusted according to desired crosslink density and thermal performance targets

    Downstream process integration

    • Used at polymerization feed stage to introduce fluorinated functionality; may be reacted directly with diacids or triazines for network assembly

    Final product types

    • Photoresist resins and coatings for electronics
    • High-temperature polymers and laminates
    • Fluorinated specialty films
    • Functional crosslinking agents for adhesives

    4. Specialty Dye and Pigment Intermediate

    Dye and pigment manufacturers apply this material in synthesizing high-performance azo and hydrazone-based colorants. Its electron-withdrawing group modifies absorption spectra, resulting in vivid shades and improved fade resistance for technical textiles and plastics. Real-world colorant production processes incorporate it during the controlled diazotization or coupling reaction phase, optimizing batch reproducibility and colorfastness.

    Industry compliance standards

    • OEKO-TEX Standard 100 for textile chemicals
    • EN 71-3:2019 (European Toy Safety Standard for pigments)
    • ISO 105-A02 for color fastness in textiles
    • ETAD Code of Practice for dye intermediates

    Typical usage ratio

    • 2–8% molar ratio relative to coupling component; controlled precisely for shade targeting and color uniformity

    Downstream process integration

    • Added to the coupling or diazotization reactors at the point where primary amines convert to azo or hydrazone linkages

    Final product types

    • Hydrazone-based textile dyes
    • Azo pigments for plastics and inks
    • Specialty colorants for functional applications (e.g., security inks)

    5. Organic Synthesis Reagent in Research and Analytical Laboratories

    Contract research organizations and institutional synthesis labs use this compound as a hydrazine source in new molecule discovery. It enables rapid screening and efficient formation of hydrazones, semicarbazones, or other functionalized hydrazide derivatives. The compound’s distinct reactivity streamlines small-scale route development and supports method validation for pharmaceutical and advanced chemical analysis projects.

    Industry compliance standards

    • GLP (Good Laboratory Practice) for research compounds
    • ISO/IEC 17025 for analytical laboratories
    • Relevant local chemical handling and safety regulations
    • GMP guidelines if research advances to clinical stage compounds

    Typical usage ratio

    • 0.05–0.25 mmol scale in micro-reactions; scaled up to gram quantities for validation or preparative studies as per project design

    Downstream process integration

    • Reacted during hydrazone/semicarbazone formation, often at the screening or lead optimization phase in synthesis R&D

    Final product types

    • Hydrazone derivatives for structure-activity relationship studies
    • Reference standards for analytical chemistry
    • Custom-synthesized intermediates for CRO customers

    6. Intermediate for Veterinary Drug Synthesis

    This hydrazide functions as a direct intermediate in the manufacture of veterinary active substances, especially in products targeting parasitic or infectious disease control in livestock and companion animals. Product developers deploy it for hydrazone coupling, strategically introducing stability and improved PK profiles for actives that must meet regulatory criteria for animal health products.

    Industry compliance standards

    • VICH GL3 (Good Manufacturing Practice for Veterinary APIs)
    • Ph. Eur. (European Pharmacopoeia) veterinary monographs
    • US FDA CVM Guidance for Industry #61
    • ISO 9001 for production traceability and batch records

    Typical usage ratio

    • 0.12–0.30 molar ratio to primary synthesis precursor, based on specific animal health molecule design and regulatory batch size

    Downstream process integration

    • Introduced in hydrazone formation step after base building block synthesis; purification aligns with veterinary drug submission requirements

    Final product types

    • Veterinary active ingredients (API level)
    • Product intermediates for finished dosage forms (oral/spot-on/injectables)
    • QC reference stocks for regulatory submission
    Free Quote

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    Certification & Compliance
    More Introduction

    4-(Trifluoromethyl)Benzhydrazide: Proven Quality from Our Manufacturing Floor

    The Commitment It Takes to Craft a Reliable Intermediate

    Working in the specialty chemicals industry stands as a daily reminder of how much depends on our consistency. Producing 4-(Trifluoromethyl)Benzhydrazide isn’t just about following a reaction pathway. Each run demands attention—a fact apparent to anyone who has walked our production floor or handled our reactors. Trifluoromethyl-substituted benzhydrazides like this one go beyond bulk commodity use. The industry speculates plenty on what sets certain intermediates apart, but few talk about the chain of checks, the measured weighing, and the constant verification steps it takes to make sure every batch aligns with customer expectations. In our experience, the success of a final product in a pharmaceutical or agrochemical process often leans on the quality of those first raw materials.

    What We Know About the Role of Trifluoromethyl Groups

    Chemists who design next-generation APIs or crop-protection molecules draw on the power of trifluoromethyl groups for a reason. Adding a CF3 moiety to a benzene ring can shift key properties. In bench-scale batches, we’ve watched hydrazide derivatives modulate polarity, lipophilicity, and metabolic stability. These changes register not just on paper, but when clients report back that their synthetic yields have stabilized, impurities are easier to control, and downstream steps show greater reliability. Commercial-grade 4-(Trifluoromethyl)Benzhydrazide shines in active ingredient research not just for its raw reactivity, but for its practical ease of handling and its stable physical profile, both at room temperature and after long-term storage.

    Key Physical Traits: Beyond the Datasheet

    Specs on paper only tell part of the story. Uniform off-white to pale yellow crystalline powder isn’t an accident. Our drying, milling, and packing lines run under tight temperature and humidity controls. Anyone who has managed a hydrazide knows the importance of avoiding agglomeration during storage—especially when dealing with sensitive downstream reactions. Our operators track batch weights, monitor color appearance, and check for free-flow properties. Material that clumps, picks up moisture, or shows even minor discoloration can collapse the purity window clients look for. We run assays that take purity beyond 98% using HPLC, GC-MS, and NMR, ensuring the product handles as it should at every stage—from kilo-lab to integrated synthesis campaigns.

    Typical Applications and Why Customers Come Back

    Over years of supplying 4-(Trifluoromethyl)Benzhydrazide, we’ve charted its use as a core building block for developing pyrazoles, triazoles, and other heterocyclic scaffolds. Med chemists searching for potent drug candidates often require this hydrazide for its effectiveness in cyclization and functional group transformations. Agrochemical researchers regularly highlight its role in creating fluorinated bioactive compounds that deliver targeted field efficacy and improved shelf-life. Others find unique applications in the dye industry and advanced materials sector, thanks to the electron-withdrawing strength of the CF3 group. We’ve heard first-hand the frustrations that arise from inconsistent suppliers—issues like small color changes leading to batch failures, or trace organic impurities surfacing late in project timelines. Our long-term customers return because our materials meet their spec, lot to lot, field to lab.

    Differences that Matter: What Sets Our Product Apart

    It’s tempting for many producers to chase volume at the expense of tight quality control. Our facility has proven that supporting customers means adapting synthesis routes when raw material quality shifts, and that every step in the process matters to the end user. We make extensive use of quality risk assessments, tracking not just product purity but also byproduct profiles and trace contaminant carryover. More than once, our technical team has had to troubleshoot process bottlenecks traced back to an overlooked impurity in hydrazide lots from other vendors. In those moments, having full control over each step of our own process—from raw CF3 aromatic acid, through hydrazinolysis to final purification—means we adjust and document changes in real time. Regulatory environments continue to tighten in many target markets, and knowing that each batch can be traced back to its origin batch means compliance documentation becomes straightforward for our customers.

    Market pressure sometimes pushes for higher output at lower cost, particularly for molecules considered “generic.” We don’t cut corners on solvent residuals, heavy metals, or batch traceability. Our investment in upgraded chromatographic and spectroscopic testing ensures no customer has to risk time, labor, or material loss on uncertain starting materials. We maintain a batch retention system that allows us to investigate and resolve any customer feedback on material quality, tracing each complaint back to production, QC, and storage history. This openness fosters mutual trust—which isn’t easy to quantify, but grows more valuable as regulatory filings and patent applications become more involved.

    Specification Range: Honest Numbers from Real Data

    Buyers look at spec sheets with a skeptical eye, and rightfully so. No one wins when a “typical” value on a website masks the reality of process variability. For 4-(Trifluoromethyl)Benzhydrazide, we’re glad to share actual quality data based on year-on-year production. Our product regularly delivers:

    Across our lots, spectral identity checks by NMR and FTIR confirm structural purity, while melting points have remained within a +/- 2°C range of published reference values for five consecutive years.

    Process Knowledge: Challenges and Solutions We’ve Learned on the Job

    Batch chemistry always brings surprises. As manufacturers, we see firsthand how raw material purity, especially the CF3-substituted aromatic acid precursor, influences final hydrazide quality. Trace halides, unexpected esters, or micro-level metal residues from upstream steps can migrate into the hydrazide and show up downstream during customer syntheses. Over the years, we’ve refined our filtration and recrystallization steps, selecting filter aids and solvents that ensure full removal of both organic and inorganic impurities. We’ve moved away from routine use of high-boiling solvents, which can leave traces and slow down drying. Instead, our process takes advantage of short-path overheads and low-pressure distillation, helping us tighten control over both product profile and waste output.

    Analytical troubleshooting has taught us to expect subtle nuisances—like polymorphic transitions depending on crystallization temperature, or slow, surface-layer hydrolysis under storage in humid conditions. That’s why we prioritized investment in tightly sealed packaging lines and humidity-controlled warehouses. As a manufacturer, nothing fosters growth like listening to customers who encounter unexpected results, then retracing the entire lifecycle of a single drum or bag to pinpoint the root cause. Whether it’s a case of accelerated shelf-life loss or a rare case of nonconforming melting point, our multi-step process validation gives us the ability to adapt and address these practical challenges directly.

    Handling Considerations: Real-World Storage and Transport

    Our experience loading, shipping, and storing hydrazides in bulk reveals how transportation can make or break quality. On hot and humid days, residual moisture loves to sneak into sacks and drums if seals lose integrity after short hauls or shifting on pallets. Over time, we’ve standardized heavy-duty, multi-layer packaging—with strong inliner bags and tamper-evident ties—keeping moisture uptake to a minimum and reducing unwanted hydrolysis during transit or long-term storage. Our facilities schedule regular, random checks for moisture content and check drum conditions at offsite storage. In colder climates, we monitor for condensation inside packaging following shipment, tweaking internal protocols as needed. These small steps keep products in spec and avoid issues at the customer’s site, where even a small deviation can mean wasted time and cost.

    Global Market Demands and Regulatory Requirements

    Exporting specialty chemicals like 4-(Trifluoromethyl)Benzhydrazide has shown us the maze of local regulations, from Europe’s REACH requirements to the US EPA TSCA inventory. We’ve handled pre-registration, dossier preparation, and batch documentation exercises, just to satisfy patchwork regulatory systems across multiple continents. Few things slow research programs like a reagent stuck in customs due to missing safety data or registration certificates. We operate under ISO quality and environmental management standards, which means every container that leaves our factory carries all supporting documentation and safety labeling standard for that target market. Major clients want not only a COA and SDS, but also assurance that our production methods can stand up to environmental scrutiny. Our chemists keep up with changing substances of concern lists, reviewing each ingredient from sourcing to waste disposal.

    Sustainable Manufacturing: Down to the Waste Streams

    Our environmental obligations go beyond producing pharma intermediates at high yield. Adopting a closed-loop approach to solvents has decreased our waste output and reduced our costs. With every batch, we monitor effluent and vent streams to ensure compliance with both local and international discharge standards. Solvent recovery lines don’t just improve margins; they let us report back to clients on the environmental footprint of their own supply chain. We have already phased out halogenated solvents in favor of greener alternatives where possible—something that delivers advantages not only for process safety but also for the shelf life of sensitive hydrazide products. Having delivered to clients across the pharmaceutical, agrochemical, and advanced materials sectors, we’ve learned that detailing our policies on solvent safety, emissions, and energy reduction opens up new opportunities with global firms focused on sustainability.

    Quality Control from Start to Finish

    Every product release follows a process we’ve refined through tough lessons: repeated validation, analytical method development, and rigorous product tracking. Each batch generation starts with well-qualified, identity-tested raw materials. Final lots must pass HPLC or GC purity checks, moisture content analysis, detailed impurity profiling, and a full slate of physical characteristic tests. But it doesn’t stop there. We store retention samples for each batch, so we can cross-reference any client concern back to its physical and analytical signature. This approach has let us resolve issues where third-party labs reported differences in melting point—often finding causes linked to sample handling rather than true variation in product properties.

    We’ve spent years measuring, controlling, and adjusting each process parameter. Our staff receive continuous training on analytical methods, from running calibration curves to interpreting overlapping chromatograms. When customers demand custom specifications—higher purity, specific particle size, or unique packaging types—we handle these not as exceptions but as a regular part of business. Open lines of communication, combined with real-time analytical documentation, help both sides avoid misunderstandings that cost time and resources in fast-paced R&D programs.

    Why Consistency Outweighs Cost

    Our industry often focuses on price per kilogram, but clients rarely benefit when unpredictability enters the mix. We’ve seen what happens downstream when a customer attempts to save by switching to an apparently cheaper supplier: failed reactions, lost man-hours, and full batch recalls. Consistent access to 4-(Trifluoromethyl)Benzhydrazide at the same high standards has allowed our customers to maintain program timelines and keep regulatory filings on track. Feedback from pharmaceutical firms backs up what we see internally: consistent hydrazide quality reduces the need for repeated process development, long purification steps, and unnecessary troubleshooting.

    Down-to-earth, face-to-face troubleshooting has taught us more than market surveys ever could. Listening to process chemists in the lab, plant operators at the front line, and supply chain managers filling out import forms gives us the practical insight needed to anticipate issues and plan for long-term partnerships. More than once, open dialogue has helped us refine specifications or adapt packing sizes to better support customer batch sizes, further reducing product loss and rework.

    Comparisons with Other Products in the Market

    We have had the chance to analyze a wide range of hydrazide intermediates, each presenting its own profile in terms of solubility, chemical reactivity, and physical stability. One truth stands out—materials containing trifluoromethyl groups like ours often outperform simple benzohydrazide derivatives when the end-use calls for ruggedness under harsh chemical conditions. Our product features improved resistance to oxidative breakdown, lower susceptibility to hydrolysis under storage, and consistent reactivity in synthetic transformations even after prolonged shelf life. There’s no need to simply look at the molecule in a vacuum: our customers consistently report more reproducible results and lower impurity carryover as compared to similar intermediates lacking the CF3 handle.

    While some hydrazides tend to degrade or pick up color from marginal temperature excursions during shipment, ours steers clear of such pitfalls, owing to the product’s robust structure and our control over crystal form. Bench chemists tell us that minor variances in physical properties can affect filterability and solubility in mixed solvents—a detail we’ve verified repeatedly in method support studies when working alongside client development teams. Comparative studies against simple non-fluorinated analogues consistently show improved chemical handling, less batch-to-batch variability, and better retention of analytical specifications.

    Feedback-Driven Improvements to Meet Evolving Needs

    With each product iteration, customer-driven innovation shapes our processes. Some pharmaceutical and agrochemical researchers have asked for even tighter impurity profiles—seeking limits on minor related substances well below standard pharmacopeia levels. We address such requests by introducing additional purification stages and more selective analytical markers into our workflow. Only those who manufacture hydrazides at scale realize how these fine adjustments ripple through logistics, analytics, and downstream use.

    Occasionally, calls for greener or customized synthesis options prompt us to reexamine solvents, filtration aids, or batch size options. We see these not as burdens, but opportunities to strengthen relationships and win trust. Each time a customer reports better yields or easier downstream processing, it validates our choice to prioritize true process control over rapid, bulk scale-up. We value the open exchange of technical information—and remain open to new ideas that may emerge from the community of scientists who rely on our product as part of their daily research.

    What True Manufacturing Control Delivers

    Standing behind our chemical means daily work, from process optimization to ongoing in-house analytical development. Years of batch records, real-world client feedback, and field-proven performance give us the perspective needed to guarantee consistency. Lab-scale and industrial-scale batches both receive careful attention, ensuring our 4-(Trifluoromethyl)Benzhydrazide keeps up with your R&D cycle and production schedule. Product stewardship means responding to shifts in market demand, regulatory expectations, and analytical techniques head-on.

    With every order shipped, we take pride in delivering not just a chemical, but a foundation our customers can trust to build the next generation of pharmaceuticals, crop protection agents, and advanced specialty materials. Years of real-world experience, combined with a relentless focus on continuous improvement, form the backbone of our daily commitment. The challenges faced in our manufacturing plant—routine or unexpected—shape the product our partners rely on. This is what it means to make hydrazides built for real industry use.