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2-Chloro-6-Fluorobenzaldoxime

    • Product Name 2-Chloro-6-Fluorobenzaldoxime
    • Alias 2-Chloro-6-fluorobenzaldehyde oxime
    • Einecs 697-426-2
    • 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

    997623

    Product Name 2-Chloro-6-Fluorobenzaldoxime
    Cas Number 189628-22-6
    Molecular Formula C7H4ClFNO
    Molecular Weight 173.56
    Appearance Solid
    Melting Point 91-94°C
    Purity Typically ≥98%
    Solubility Slightly soluble in organic solvents
    Smiles C1=CC(=C(C(=C1Cl)F)C=NO)
    Inchi InChI=1S/C7H4ClFNO/c8-6-3-1-2-5(9)7(6)4-10-11/h1-4,11H
    Storage Condition Store in a cool, dry place
    Synonyms 2-chloro-6-fluorobenzaldehyde oxime

    As an accredited 2-Chloro-6-Fluorobenzaldoxime factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A 5-gram amber glass vial, sealed with a screw cap, labeled "2-Chloro-6-Fluorobenzaldoxime," complete with safety and handling instructions.
    Shipping 2-Chloro-6-Fluorobenzaldoxime is shipped in tightly sealed containers to prevent moisture and contamination. It is packed according to international chemical transport regulations, typically in sturdy bottles within cushioned, labeled packaging. Temperature and handling instructions are included, and the shipment complies with local and international safety standards for hazardous chemicals.
    Storage 2-Chloro-6-Fluorobenzaldoxime should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizing agents. Protect from moisture, heat, and direct sunlight. Store at room temperature, and ensure proper labeling. Personal protective equipment should be used when handling to avoid contact or inhalation.
    Application of 2-Chloro-6-Fluorobenzaldoxime

    Applications of 2-Chloro-6-Fluorobenzaldoxime in Industrial Manufacturing

    2-Chloro-6-Fluorobenzaldoxime is an advanced pharmaceutical and agrochemical intermediate produced in-house to support innovation in several tightly regulated chemical industries. Below are key industrial application segments, showing exact integration into real downstream manufacturing with details on compliance, formulation, processing, and finished products.

    1. Active Pharmaceutical Ingredient (API) Intermediate for Quinoxaline-Based Drugs

    Leading pharmaceutical manufacturers select this raw material for synthesis routes involving quinoxaline frameworks, especially in new-generation oncology and anti-infective drug development. The oxime group introduces unique reactivity into condensation sequences to build core heterocycles. Sourcing requires traceable quality, robust handling for GMP lines, and high consistency during scale-up. Multistep synthesis workflows utilize the compound for oxime to amine reduction, followed by further aromatic substitution steps. Final downstream APIs demand low impurity content, controlled particle size, and qualification under international standards. Customers depend on validated manufacturing protocols and trustworthy supplier documentation.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • US Pharmacopeia (USP) for key intermediates
    • European Pharmacopoeia (EP) monograph requirements
    • FDA DMF (Drug Master File) submission standards

    Typical usage ratio

    • 10–30% in targeted heterocycle construction steps; ratio adjusted based on route efficiency, byproduct minimization, and targeted batch scale

    Downstream process integration

    • Added after initial halogen exchange to form oxime intermediate
    • Subsequent reduction or N-alkylation performed under inert atmosphere
    • Process monitored for residual solvents and trace organohalogens before API isolation

    Final product types

    • Quinoxaline-based antineoplastic APIs
    • Antiviral intermediates
    • Custom library compounds for pharmaceutical R&D

    2. Agrochemical Intermediate for Fluorinated Herbicide Synthesis

    Producers of selective herbicides employ 2-Chloro-6-Fluorobenzaldoxime as a core-building block for fluorine-containing arylketone and arylhydrazone herbicide families. This material enters as a condensation precursor, bringing both electron-withdrawing (Cl, F) and oxime functionalities to enable distinct SAR developments. Accurate weighing and temperature control are needed to minimize isomerization. Downstream coupling reactions require careful QC for residual starting material during final purification. Industrial users prefer the product in granular or dense crystalline form for high throughput batch runs in automated herbicide production lines.

    Industry compliance standards

    • ISO 9001:2015 for quality management
    • REACH Registration (EU Regulation)
    • Food and Agriculture Organization (FAO) Specifications for Pesticide Ingredients
    • China GB/T 19344 Agrochemical Quality Standards

    Typical usage ratio

    • 5–18% based on target herbicide concentration and required selectivity profile; adjusted for desired fluorine load per molecule

    Downstream process integration

    • Mixed with aromatic aldehydes in high-shear reactors
    • Reacted under controlled pH for condensation with hydrazines or amines
    • Transferred via closed pneumatic lines to downstream crystallization and drying steps

    Final product types

    • Fluorinated arylhydrazone herbicides
    • Pre-emergent grass control agents
    • Selective broadleaf weed control products

    3. Specialty Dye and Pigment Precursor for Electronic Materials

    Integrated electronics chemical companies use the compound to generate halogenated and fluorinated dye molecules, particularly for liquid crystal display (LCD) color filters and specialized photoresists. Oxime derivatives provide valuable building blocks for functionalized azobenzene and benzoxazole cores, contributing to color, lightfastness, and voltage-responsiveness required in advanced optical applications. Material purity, particle shape, and heavy metal profile are closely monitored. Downstream customers specify exact melting point and solubility ranges to assure downstream printhead and photolithographic compatibility in electronic substrate coating lines.

    Industry compliance standards

    • RoHS (Restriction of Hazardous Substances Directive, EU 2011/65/EU)
    • IEC 62474 declarable substances standards
    • SEMI (Semiconductor Equipment and Materials International) standards
    • ISO 12417 for organic dyes in display manufacturing

    Typical usage ratio

    • 2–9% in pigment precursor synthesis; ratio determined by target chromophore structure and process mass balance

    Downstream process integration

    • Fed into coupling reactions for azobenzene synthesis under nitrogen
    • Further modified by halogen-metal exchange or oxidative coupling for dye finalization
    • Purified in multi-stage column chromatography prior to final pigment dispersion

    Final product types

    • Liquid crystal display (LCD) RGB filters
    • Organic photoconductors for semiconductors
    • Ultra-fast response photoresists

    4. Fine Chemical Intermediate for Custom Organic Synthesis

    Specialty synthesis laboratories and contract manufacturers incorporate this material for constructing complex benzo-fused heterocyclic scaffolds required in advanced research projects. The unique substitution pattern serves in multi-step pathways for high-value molecules, such as ligands, molecular sensors, and analytical probes. Demand centers on lot-to-lot reproducibility, tight isomer control, and full traceability. Expert formulators use dedicated solvent regimes and inert working conditions to prevent hydrolysis or decomposition. Quality agreements demand transparent C of A, batch-level impurity profiling, and specialized packaging to support moisture-sensitive work environments.

    Industry compliance standards

    • ISO 17034 Reference Material Producer Accreditation
    • OECD GLP for research chemicals
    • Certificate of Analysis (in accordance with customer specification)
    • Responsible Care® chemical management

    Typical usage ratio

    • 5–25% of reaction mass depending on sequence and molecular complexity; ratio selected based on yield optimization and purity targets

    Downstream process integration

    • Initiates oxime-to-nitrile modification steps
    • Feeds into Suzuki-Miyaura couplings or Ullmann-type cyclizations for fused-ring development
    • Final work-up involves extraction under dry conditions and filtration for analytical characterization

    Final product types

    • Fine chemical building blocks
    • Molecular sensors and fluorescent probes
    • Custom heterocyclic intermediates for contract research
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    Certification & Compliance
    More Introduction

    Introducing 2-Chloro-6-Fluorobenzaldoxime: Insights from the Manufacturer

    A Closer Look at Our Experience with 2-Chloro-6-Fluorobenzaldoxime

    Over the years, our laboratory has seen the steady demand for reliable intermediates in specialty synthesis. Among the range of compounds we handle, 2-Chloro-6-Fluorobenzaldoxime stands out for the consistency and specificity it brings to the bench. From early pilot batches to ongoing industrial production, this molecule offers both versatility and reliability, which every chemist soon appreciates.

    Our journey with this compound began out of a need to secure a more consistent workflow in the downstream development of pharmaceuticals and crop protection agents. Like many manufacturers working in this space, we have faced the full spectrum of challenges: unpredictable supply of raw halogenated aromatics, batch-to-batch impurity profiles that waste valuable man-hours, and regulatory pressure building up as product portfolios expand. In light of these hurdles, leaning on in-house control has been a critical part of producing 2-Chloro-6-Fluorobenzaldoxime to exacting standards.

    Model and Specifications Based on Direct Process Control

    We synthesize 2-Chloro-6-Fluorobenzaldoxime under well-defined parameters, generally offering material as a white to pale yellow crystalline solid with a high degree of purity. Each lot is refined to minimize trace isomers and halogenated byproducts, a difference that becomes obvious for those scaling up. Our experience tells us that slight deviations in crystallization conditions tend to introduce impurities that compromise downstream reactions, so we have invested in analytic practices at each production stage—using HPLC, GC, and NMR as standard checkpoints.

    Many of our peers in fine chemical manufacturing might focus on achieving a “minimum purity” standard, but we have found that consistently delivering material above 99% (by HPLC) prevents a vast number of rework and troubleshooting hours later in the process chain. Moisture content, though rarely discussed in typical product outlines, makes a significant difference when the next synthesis step involves sensitive organometallics or Lewis acids. Our controlled drying protocol brings the compound down to levels where reactivity profiles remain predictable, batch after batch.

    Usage: Applied Know-How from Synthesis to End-Use

    Those who work in the chemical industry know this oxime derivative serves as an essential intermediate in various transformations. In our facilities, we have watched it become a staple precursor for constructing more complex halogenated aromatic systems. Most commonly, it functions as a protected functional group in multistep synthesis, helping control reactivity of both the aldehyde and halide functionalities.

    A significant portion of our output goes toward pharmaceutical research. The electron-withdrawing nature of both the chlorine and fluorine substituents enhances the oxime's stability under a range of reaction conditions, including transition metal catalysis. As such, medicinal chemists can introduce further functional groups or shift toward downstream reduction, cyclization, or rearrangement with fewer concerns about side reactions. We have also seen demand from agrochemical programs, where the compound’s halogenation pattern supports structure-activity relationships in new heterocyclic designs.

    Working closely with our partners, we often provide process-development samples to match proprietary scale-up needs. For example, one research team needed kilogram quantities at short notice during SAR exploration. Because the synthetic route and purification steps were fully controlled under our roof, we scaled safely from lab to pilot plant in days, not months. This kind of fast response stems from deep familiarity with the material and all its quirks.

    What Sets 2-Chloro-6-Fluorobenzaldoxime Apart

    2-Chloro-6-Fluorobenzaldoxime doesn’t just fill a gap in the catalog—it addresses a real need for regioselectivity and controlled reactivity. As a manufacturer, we have compared this compound with its close analogs—such as plain benzaldoxime, the difluoro, or dichloro variants. In practice, having both chlorine and fluorine at the 2- and 6- positions strikes a balance between ring activation and deactivation, which shifts reactivity toward desired pathways during further transformations. That’s something we have validated not just on paper but through repeated customer feedback and our own test reactions.

    One technical issue we have grappled with involves scale-induced impurity profiles. For example, scaling from bench to several hundred kilograms typically introduces more halogenated side products during chlorination. Products with similar backbone structures can look identical in standard melting point checks, but we have learned that subtle differences in halogen substitution (like 2,6- vs 2,4- or 3,5-) can dramatically alter subsequent reaction rates and selectivity for metal-catalyzed transformations. Our in-process controls catch these early, so we don’t leave surprises for formulation teams.

    From a handling perspective, this oxime proves comparatively stable, storing well under typical warehouse conditions without excessive degradation. Some analogs, particularly those with more electron-withdrawing substituents, tend to darken or decompose, complicating logistics for our warehouse and transport teams. Our material retains a clean, crystalline nature, ensuring reliable, safe use directly from the drum. This matters when production schedules run tight and there is little margin for delay.

    Impact on Research and Scalable Manufacturing

    In our experience, early-stage research and commercial synthesis differ mainly in the stakes involved. While chemists exploring new structure-activity landscapes need small, high-quality batches, the pilot plant demands reproducibility plus flexibility in campaign scheduling. Every time we deliver a lot of 2-Chloro-6-Fluorobenzaldoxime, we reflect on how our upstream choices—raw material sourcing, batch documentation, and analytical control—translate directly into customer trust. One batch contaminated with off-target isomers can mean weeks of lost productivity or regulatory complications for downstream customers, so investing in analytic precision just makes good sense.

    We have witnessed several projects hinge on the differences that high-purity intermediates bring. In one recent collaboration, a pharmaceutical partner discovered that switching to our 2-Chloro-6-Fluorobenzaldoxime improved the crystallization and yield of a final API by almost twenty percent. This wasn’t the result of a “secret recipe” but rather the outcome of attentive process monitoring, materials handling, and open feedback channels with our partners.

    Some may say these are small wins, yet once multiplied across many campaigns and research groups, they add up to a real advantage. There are always choices to make in chemical sourcing, but as the manufacturer, we believe firsthand evidence and reliable supply speak louder than certification stamps or glossy data sheets.

    Challenges and Solutions in Real-World Production

    Our experience tells us that sourcing halogenated aromatic precursors remains one of the bigger hurdles in keeping costs reasonable and ensuring continuity. Global fluctuations in fluorinated building blocks impact availability, with downstream effects on timetables and client planning. Rather than chase shortcuts or cheapen raw input quality, we built long-term relationships with established upstream suppliers and maintain a contingency stock for the most volatile materials.

    Another recurring challenge relates to regulatory scrutiny. Authorities demand full traceability for all pharmaceutical and fine-chemical intermediates. Manufacturing 2-Chloro-6-Fluorobenzaldoxime in-house means we provide validated documentation for every step, while third-party resellers often can’t furnish such proof without long delays. We invest in real-time tracking of batch IDs and rigorous lot archiving, so every shipment ties back to its raw material passport and process history.

    Our chemists continuously review and refine our drying, storage, and packaging conditions. Anhydrous packaging minimizes hydrolysis, especially since oximes can pick up water if left unprotected. We revamped container options a few years ago to improve shelf life and reduce the risk of bulk powder caking—a recommendation that came straight from our own plant operators. These improvements rarely appear in standard specifications, but they pay off daily in ease of handling and formulation success rates.

    Continuous Improvement Driven by End-User Needs

    Being so close to the manufacturing line allows us to test incremental improvements without disrupting supply. We routinely invite feedback from technical leads and formulation teams using our 2-Chloro-6-Fluorobenzaldoxime, then translate those ideas into updated work instructions. In one instance, a formulator working on a novel triazine discovered minor aggregation issues at high humidity. We adjusted our post-drying step and, in the following batches, customer reports showed a noticeable uptick in free-flowing characteristics and lower filter pressure during transfer.

    Such real-world learning forms the backbone of quality manufacturing. The chemical industry doesn’t reward complacency; even a reliable molecule like this oxime keeps evolving in terms of how it gets produced, handled, and applied. Internal development projects now use digital tools to model impurity formation at scale, helping us further optimize production without raising costs.

    Product Comparisons Rooted in Empirical Results

    Having produced and analyzed hundreds of aromatic oximes, we have a solid grasp on where 2-Chloro-6-Fluorobenzaldoxime outperforms alternatives. In comparison to the unsubstituted oxime, reactivity differences are clearly visible under typical dehydration or reduction conditions. The dual halogenation pattern moderates electron density, slowing undesired overreactions that often plague bulk processing.

    During evaluation, we saw that dichlorinated or difluorinated benzaldoximes offered either too much deactivation (making them sluggish for coupling chemistries), or introduced persistent impurities that resisted chromatographic removal. The 2-chloro-6-fluoro backbone, on the other hand, grants both the needed reactivity and stability with fewer downstream headaches.

    It’s not unusual for clients to query why they shouldn’t just use a generic benzaldoxime or source from low-cost overseas traders. What the data shows, and what we have seen firsthand, is that impurities or uncontrolled moisture wreak havoc in complex catalytic systems. For those engaged in route scouting or scale-up, differences in minor impurity content (even fractions of a percent) mean everything when catalytic poisons or unexpected residues threaten yields and regulatory acceptance. As a manufacturer standing behind our material, we value empirical results above theoretical “equivalency.”

    Environmental and Safety Considerations

    Running a safe, environmentally conscious operation sits at the front of our plant management ethos. Our production processes for 2-Chloro-6-Fluorobenzaldoxime incorporate solvent recovery, modern ventilation, and closed-system transfers to sharply limit both operator exposure and emissions. Solvent stewardship isn’t just about meeting guidelines—it means optimizing for waste minimization and downstream treatment.

    Our operators receive hands-on training in handling halogenated intermediates. The experience of years spent tracking batch deviations and learning from incidents has taught us the importance of robust standard operating procedures. Any deviation triggers a full root-cause review, and we build those lessons back into both machine setup and worker training. These are issues that sometimes get shunted aside in trading relationships, but for a manufacturer directly responsible for safety and compliance, such details hold real-world consequences.

    Trust in Direct Manufacturer Collaboration

    We take pride in the fact that our expertise in producing 2-Chloro-6-Fluorobenzaldoxime translates directly into benefits for those who use it. Each drum that leaves our site carries the accumulated learning of our chemical engineers, quality teams, and production operators. Our commitment is to continuous improvement, not just in technical parameters but also in the everyday realities of chemical manufacturing.

    Being able to oversee each stage—from sourcing the basic aromatics, through controlled halogenation, to the final purification and packaging—means accountability isn’t outsourced. End-users who reach out to discuss technical details or request rapid custom batches know that they’re talking to the people who designed the process, not an anonymous intermediary.

    For those advancing research or ramping up new production lines, reliable supply and transparency count just as much as competitive pricing. Over decades of operation, we have learned that sustainable partnerships are built on openness, evidence, and the ability to adapt in the face of industry changes. Our door remains open to customers seeking robust, traceable, and application-tested intermediates—not just one more anonymous product on a list.