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1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine

    • Product Name 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine
    • Alias MFCD00800988
    • Einecs 674-067-8
    • 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

    326518

    Productname 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine
    Molecularformula C7H6ClF3N2
    Molecularweight 210.59 g/mol
    Casnumber 138569-85-4
    Appearance Light yellow to brown solid
    Meltingpoint 84-86°C
    Purity Typically ≥ 98%
    Solubility Slightly soluble in organic solvents
    Storagetemperature Store at 2-8°C
    Smiles C1=CC(=C(C=C1Cl)NN)C(F)(F)F
    Inchi InChI=1S/C7H6ClF3N2/c8-5-2-1-4(7(9,10)11)3-6(5)13-12/h1-3,13H,12H2

    As an accredited 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Brown glass bottle, 25 grams, with tightly sealed cap, labeled hazardous: 1-[2-Chloro-4-(trifluoromethyl)phenyl]hydrazine. Includes hazard and safety information.
    Shipping 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine is shipped in tightly sealed containers, protected from light, moisture, and incompatible substances. It is labeled as a hazardous chemical, and shipment complies with relevant transportation regulations (such as DOT, IATA, and IMDG). Proper documentation and handling precautions are strictly followed to ensure safe delivery.
    Storage Store **1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine** in a tightly sealed container, away from light, heat, and sources of ignition. Keep in a cool, dry, well-ventilated area. Segregate from oxidizers, acids, and bases. Label appropriately and follow all local regulations for hydrazine derivatives. Use appropriate personal protective equipment (PPE) when handling, and avoid prolonged exposure or inhalation.
    Application of 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine

    Applications of 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine in Industrial Manufacturing

    1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine serves as a specialized intermediate across chemical manufacturing lines, contributing to advanced molecule construction in crop protection, pharmaceutical, and pigment industries. Our technical-grade hydrazine derivative supports downstream formulation and integration where precision and traceability are essential throughout supply chains. The following scenarios detail its focused roles, regulatory adherence, recommended incorporation levels, process integration points, and resulting end-product categories for direct business procurement and industrial consumption.

    1. Crop Protection Active Ingredient Synthesis

    Downstream agrochemical manufacturers use this compound to build active ingredients in selective herbicides and fungicides, harnessing its chemical structure for constructing key heterocyclic compounds. Production batches rely on exact inclusion for regulated molecular modifications during synthesis stages to comply with regional market entry requirements.

    Industry compliance standards

    • EU Regulation (EC) No 1107/2009 on plant protection products
    • EPA FIFRA (Federal Insecticide, Fungicide, and Rodenticide Act)
    • Chinese GB2763-2021 National Food Safety Standard for Pesticide Residues

    Typical usage ratio

    • 0.9–1.7 molar equivalents per mole of core substrate; adjustments depend on the presence of side-chain modifiers and target molecule structure

    Downstream process integration

    • Added during primary amination or hydrazinolysis step in batch reactors, followed by purification and crystallization to isolate target agrochemical intermediates

    Final product types

    • Selective herbicide technical concentrates
    • Triazole and pyrazole-based fungicidal actives
    • Post-emergent pesticide formulations

    2. Pharmaceutical Intermediate Production

    Leading API (active pharmaceutical ingredient) contract manufacturers rely on this compound as a hydrazine building block to introduce trifluoromethylated phenyl groups during production of intermediates for anti-inflammatory and oncological therapies. Its use must adhere to pharmacopeia monograph limits for residual solvents and starting material identity.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice Guide for Active Pharmaceutical Ingredients
    • USP-NF (United States Pharmacopeia–National Formulary) Section on Residual Solvents
    • EU EudraLex Volume 4, Part II GMP for APIs

    Typical usage ratio

    • 1.05–1.25 molar equivalents relative to the reactant requiring hydrazine substitution; ratio refined by process chemist based on contaminant profile monitoring

    Downstream process integration

    • Introduced at targeted condensation or nucleophilic substitution stage, with subsequent extraction and chromatography for intermediate purification

    Final product types

    • Pharmaceutical intermediates for triazole, pyridazine, and related APIs
    • Building blocks for next-generation anti-inflammatory drug candidates
    • Precursors for research-use-only oncology compounds

    3. Specialty Dye and Pigment Synthesis

    Colorant producers deploy this hydrazine derivative in the synthesis of custom pigment molecules, particularly those requiring electron-withdrawing substituents for high-performance coatings and inks. Its introduction supports the development of vivid, stable chromophores with regulated impurity profiles demanded by global pigment standards.

    Industry compliance standards

    • EN 71-3:2019 Safety of Toys—Migration of certain elements
    • DIN 55943 (Testing of pigment raw materials)
    • REACH Annex XVII restrictions for aromatic hydrazines

    Typical usage ratio

    • Typically 0.8–1.3 equivalents per pigment precursor; adjusted for pigment lattice complexity and desired shade intensity

    Downstream process integration

    • Reacted with aldehydes or ketones during azo coupling or hydrazone formation, followed by salt milling and controlled drying

    Final product types

    • High-lightfast inks for industrial printing
    • Weather-resistant coatings pigments
    • Specialty dyes for technical plastics compounding

    4. Fine Chemical Reagent Synthesis

    Chemical companies utilize 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine as a key precursor in the synthesis of diagnostic reagents and laboratory chemicals requiring exact substitution patterns. The compound enters fine chemical routes where traceability and specification compliance are essential to the validity of downstream analytical and research-grade products.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems
    • Analytical grade purity standards per ACS Reagent Chemicals
    • RoHS Directive 2011/65/EU where applicable in instrumental applications

    Typical usage ratio

    • 1.0 equivalent relative to reactant in targeted synthesis; slight excess allowed to drive completion if downstream purification available

    Downstream process integration

    • Forms the central scaffold in reaction vessels during stepwise synthesis, followed by flash chromatography or recrystallization for fine chemical isolation

    Final product types

    • Custom laboratory reagents
    • Analytical test kit components
    • Traceable fine chemicals for QA/QC in regulated laboratories
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    Certification & Compliance
    More Introduction

    Introducing 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine: Reliable Solutions from the Laboratory Floor

    Direct from Production: Our Perspective on Advanced Intermediate Manufacturing

    After years in the chemical synthesis industry, we see specialty intermediates as the backbone of progress—not only for pharmaceuticals, but for agrochemicals and cutting-edge materials as well. When we talk about 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine, we’re drawing from real-time experience scaling up from grams on the bench to batch-level output suited for commercial synthesis. Each kilogram that leaves our factory represents not just a line in a product catalog, but a story of understanding substrate behavior, tackling difficult reactions, and finding solutions that stick in real-world application.

    The Reality of Manufacturing Complex Intermediates

    Sourcing high-purity 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine isn’t about just meeting assay numbers. It really comes down to consistent process controls and hands-on knowledge built up over repeated runs. Our teams have worked to pin down optimal reaction temperatures, purification steps, and storage conditions so each lot looks, feels, and performs the same in every batch you use. Over time, we noticed how even minor changes—ambient humidity during drying or slight solvent impurities—could impact crystalline formation or shelf stability. Addressing these lessons has become routine for us, not out of regulatory obligation, but because poor reproducibility disrupts both development and compliant production downstream.

    The drive to scale up production for 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine followed steady requests from partners who struggled with purity and unpredictable reactivity. Responding to these industry challenges, we invested in controls that catch byproducts early, target narrower melting point ranges, and give detailed COAs with every shipment. Our technical staff didn’t learn this by reading; they learned it through months in the plant adjusting the process when unexpected color changes or persistent trace impurities hit.

    Key Features Born from Hands-On Manufacturing

    Those seeking this hydrazine derivative for medicinal or crop science development rarely need a generic intermediate. Instead, what matters most is how it interacts with other actives or how it enables tougher transformations not possible with simpler analogs. Our batches consistently deliver defined molecular weight and meet clarity standards that let customers get predictable results in Suzuki couplings, hydrazone formation, or more advanced cyclizations.

    One aspect we pay close attention to is chemical handling and shipment. Many chemicals degrade on the road if not protected from moisture or direct light. We don’t treat packaging as an afterthought. Instead, bags and drums are sealed on the day of dispatch, minimizing air exposure and loss of potency. In practical terms, this means less product lost to decomposition and fewer headaches for end users. For us, customer success is built into every aspect, not just purity on a laboratory report.

    Specification with a Purpose, Not for Shelf Appeal

    Specification sheets and certificates tell only part of the story. On the ground, reproducibility, moisture content, and trace metal residues shape success in the lab and factory. Our QC stations check for these parameters in real time. If a deviation crops up—be it a subtle pink tinge or a slightly lower melting range—our teams halt production and get to the root cause. The result is fewer batch recalls, fewer last-minute adjustments, and more reliable scale-up, especially for regulated industries where unpredictability undermines project timelines.

    How Our Compound Finds its Place Among Several Options

    Chemists often debate the merits of different hydrazines. Some opt for plain phenylhydrazine or other substituted versions, but 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine continues to stand out thanks to its blend of electron-withdrawing groups. The presence of both chlorine and trifluoromethyl substituents doesn’t just alter reactivity. It broadens the scope for building blocks in pharmaceuticals and improves downstream yields for complicated scaffolds—facts clients have confirmed by sharing their project results with our technical support.

    Experience has shown us that this derivative holds up better under a wider range of conditions than less substituted hydrazines, resisting oxidation longer in storage and blending more consistently with polar and non-polar solvents. It’s not simply a matter of “high purity”; it’s the visible stability under pressure, temperature, and even humidity shifts that makes it a preferred choice. Laboratories that once rotated through different hydrazine sources now standardize on this compound for certain pathways, reducing variability and improving documentation for audits.

    User Applications: What Our Customers Accomplish Beyond the Literature

    In active ingredient development, this hydrazine derivative brings more than just functional groups to the table. We’ve supported users as they pioneered new heterocycles, optimized anti-inflammatory agents, and launched early-phase studies into innovative herbicides—all using our material as a reliable starting point. Their discoveries often rely on subtle molecular tweaks, which require a reagent that survives rigorous scale-up and repeated testing cycles.

    Feedback loops with end-users make a difference. One customer—a mid-size pharmaceutical company—shared that switching to our consistently high-purity batches eliminated bottlenecks during key condensation steps, trimming weeks from their development timeline. Another agrochemical client highlighted how the compound’s unique balance of lipophilicity and reactive sites allowed for efficient design of soil-stable active agents. Instead of facing repeated solvent screening or purification headaches, they reported better yields straight from their pilot runs.

    Why Our Manufacturing Approach Matters

    We approach production with the mindset of the end user because we’ve stood in their shoes, troubleshooting synthetic routes late into long shifts. It’s one thing to offer a chemical; it’s another to predict and remove pain points that arise after delivery. By choosing carefully sourced raw ingredients, we avoid batch-to-batch drift. Real-time monitoring on each line means our hydrazine derivative comes free from common contaminants, including those hard-to-remove halogenated or fluorinated byproducts that slow downstream synthesis.

    Working with regulatory teams, we keep detailed records that simplify import and export for projects requiring cGMP or other compliance standards. Through regular dialogue with R&D chemists and process engineers, we anticipate changing demands, such as tightening residual solvent limits or accommodating new analytical methods. Our experience makes us responsive, whether chasing a purer signal on NMR or scaling up to meet a new pilot plant campaign.

    Real Differences Compared to Brokered or Reseller Goods

    Purchasing through distributors or resellers can introduce risk—mislabeling, unknown handling, and inconsistent batch history. We’ve seen customers burned by out-of-spec wares. As the actual manufacturer, we trace every drum back to the reactor and purification protocol used, offering transparency and real accountability.

    Instead of shuffling containers through anonymous warehouses, we streamline logistics for maximum speed from plant to lab. Cold chains, moisture barriers, spot-check inspections before every shipment—these aren’t marketing buzzwords for us, they’re practical measures our staff puts in place, drawn from years shipping sensitive reagents to customers worldwide. When technical support calls come in, you’re speaking directly to those closest to the process, not a third party reading from a product sheet.

    Practical Details: What Users Notice About Our Product

    Users appreciate how our 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine dissolves cleanly in commonly used solvents, cutting down prep time. Consistent particle size means better transfer in automated feeders and fewer clogs in process lines. Logistical obstacles, like time lost to slow filtration or awkward melting, show up less often with our material. Each lot undergoes additional checks for trace halides, so downstream integrations—like catalytic coupling or hydrazine exchange—see more predictable outcomes.

    Over the years, waste minimization has become more important for our partners. Unused or degraded material means not just lost cost but disposal headaches. Reliable shelf stability and predictable performance let our partners use every gram they purchase, reducing per-batch losses and avoiding production slowdowns.

    Supporting Our Users Into the Future

    Manufacturing 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine at scale taught us that refining process controls doesn’t just benefit us—it benefits every researcher, engineer, and product manager that bets on consistent supplies for multi-step syntheses. We keep investing in new reactor systems, enhanced filtration, and dryer technologies to further boost reliability. Our R&D supports specialty requests, whether for larger volumes or tighter impurity profiles demanded by emerging therapeutic applications.

    Customers sometimes find us through failed pilot projects using alternative hydrazines that introduced unpredictable side reactions. By offering open technical support and sharing lessons from our own troubleshooting, we help them recover time and resources, keeping their projects on schedule and within budget.

    Continuous Improvement: Challenges and Solutions from the Frontlines

    Producing specialty intermediates has never been a “set and forget” exercise. Every batch teaches us something—sometimes through small improvements, other times because of major challenges (unexpected yield drops, or new regulatory hurdles). Factory teams document these learnings and adapt them to new runs, an approach that has saved our partners both material and development cycles.

    An example from the floor: several years ago, we identified that some shipments were arriving at customer warehouses with mild yellowing. It wasn’t visible at dispatch but appeared after transit in hot, humid climates. Root cause analysis traced this back to trace metallic impurities and packaging permeability. By switching to advanced barrier films and adding a final quality control melt-point check, we eliminated the issue, restoring confidence with our partners who were facing both stricter regulatory audits and high-value end-product requirements.

    Listening to Industry Needs: Collaboration Drives Better Outputs

    Science and application expectations shift as industries evolve. We stay in touch with developments in medicinal chemistry, plant protection, and polymer research to anticipate emerging requirements. Customer input has led us to revise filtration protocols, improve lot documentation, and invest in new particle sizing equipment. Our teams see these requests as drivers for progress, not burdens.

    Where development calls for tighter control—like limiting trace solvents—the dialogue between our technical staff and end users has closed gaps that otherwise stall projects. If a new method or instrument pushes for an even cleaner baseline, we don’t dismiss these details. Practical feedback feeds directly into updates for future batches, turning incremental improvement into a continuous cycle.

    Traceability, Real Responsibility, and Supply Chain Security

    Every drum of our 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine can be traced back to its raw inputs and production run. In an era where accountability matters, this transparency serves not only compliance officers but the scientists managing complex timelines and budgets. We provide batch histories, including processing steps and shipment logs, giving both purchasing managers and technical leads the documentation needed for confident sourcing.

    Persistent supply chain instabilities don’t vanish through hopeful procurement; they require close supplier integration and clear communication when issues arise. Our teams understand this blend of pressure and partnership. If a weather event disrupts logistics, we inform users and provide estimated returns to routine. If raw material input tightens, we advise R&D teams so they can adjust planning in time. Real vendor reliability means bad news doesn’t travel slow, and partners always know what to expect.

    Conclusion: More Than a Line Item—A Committed Manufacturing Partnership

    Having manufactured 1-[2-Chloro-4-(Trifluoromethyl)Phenyl]Hydrazine for years has given us a front-row seat to the scientific advances our material supports across industries. We see our role not just as a supplier, but as a partner who understands the real-world pressures behind each synthesis, scale-up, and product launch. Continuous process improvement, relentless attention to detail, and shared problem-solving with our partners drive everything we do. Quality at the source matters most, and we’re committed to delivering a material that brings reliability and progress to every stage of your innovation journey.