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4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde

    • Product Name 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde
    • Alias Clofedanol Impurity 8
    • Einecs NA
    • 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

    527966

    Product Name 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde
    Molecular Formula C15H12ClFO3
    Molecular Weight 294.71 g/mol
    Cas Number 612539-36-7
    Appearance White to off-white solid
    Melting Point 98-102°C
    Solubility Soluble in DMSO, slightly soluble in methanol
    Purity Typically >98%
    Storage Temperature 2-8°C
    Smiles COC1=CC(=CC=C1OC2=C(C=CC(=C2)Cl)F)C=O
    Synonyms 2-Chloro-6-fluorobenzyl-4-hydroxy-3-methoxybenzaldehyde ether

    As an accredited 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde 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, sealed with a screw cap, labeled with chemical name, formula, hazard symbols, and handling instructions.
    Shipping The chemical 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde is shipped in secure, leak-proof containers compliant with chemical transport regulations. Packaging ensures protection from moisture, light, and mechanical damage. All shipments include proper labeling, safety documentation (SDS), and tracking to guarantee safe and timely delivery per standard hazardous materials guidelines.
    Storage Store **4-[(2-Chloro-6-fluorobenzyl)oxy]-3-methoxybenzaldehyde** in a cool, dry, and well-ventilated area, away from direct sunlight, heat, and sources of ignition. Keep the container tightly closed and clearly labeled. Avoid exposure to moisture and incompatible substances such as strong oxidizers. Handle using appropriate personal protective equipment in accordance with good laboratory safety practices.
    Application of 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde

    Applications of 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde in Industrial Manufacturing

    As the direct producer of 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde, we supply this intermediate to a range of highly specialized sectors. Each downstream segment requires strict process control and adherence to regulatory frameworks, with precise handling needed to achieve specification in complex synthesis steps.

    1. Pharmaceutical Active Intermediate Synthesis

    Pharmaceutical manufacturers utilize this aromatic aldehyde in the multi-step synthesis of advanced active pharmaceutical ingredient (API) intermediates, particularly for specific anti-inflammatory and CNS medication classes. The compound enters as a pivotal building block in the late-stage condensation or reductive amination steps, supporting selective functional group transformation. Stringent control over impurity profiles and stoichiometric ratios is essential to comply with health authority requirements for API batches.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • European Pharmacopoeia Monographs for APIs and intermediates (Ph. Eur.)
    • US FDA 21 CFR Part 210/211 (cGMP for finished pharmaceuticals)
    • Chinese Pharmacopoeia (ChP) standards for intermediate handling and traceability

    Typical usage ratio

    • Usually 0.9–1.05 molar equivalents relative to the target intermediate
    • Adjustments based on reaction conversion and downstream purification efficiency

    Downstream process integration

    • Charged into condensation step with protected amine or hydrazine functional groups
    • Reaction monitored by HPLC/GC for residual aldehyde content
    • Purification through crystallization or chromatographic isolation prior to next synthetic stage

    Final product types

    • API intermediates for non-steroidal anti-inflammatory drugs (NSAIDs)
    • Intermediates for central nervous system (CNS) medications
    • Specialty building blocks for drug research projects

    2. Agrochemical Intermediate Manufacturing

    Agrochemical formulators rely on this chlorofluorinated benzaldehyde as a precursor for producing crop protection active substances, especially novel herbicide and fungicide candidates. The raw material is most often involved in etherification or ring-closure reactions, where its unique substitution pattern imparts selectivity and metabolic stability to the end molecule. Process configurations demand careful control over reaction stoichiometry and residual solvent residues to meet downstream toxicological and environmental compliance.

    Industry compliance standards

    • OECD guidelines for industrial chemical manufacturing
    • FAO/WHO specifications for pesticide intermediates
    • ISO 9001:2015 Quality Management Systems for chemical synthesis
    • REACH Regulation (EC) No 1907/2006 for hazardous intermediates in the EU

    Typical usage ratio

    • Ranges from 1.0 to 1.2 molar equivalents, depending on targeted active substance yield
    • Excess used in some coupling steps to drive full conversion

    Downstream process integration

    • Introduced in nucleophilic substitution or alkylation steps during agrochemical intermediate synthesis
    • Integrated with catalyst dosing and continuous monitoring for by-product formation
    • Final quenching and solvent recovery applications post-reaction

    Final product types

    • Herbicide intermediates for cereals and broadacre crops
    • Fungicidal intermediates targeting grape and vegetable pathogens
    • Custom chemical fragments for research pipeline actives

    3. Fine Chemical & Specialty Fragrance Ingredient Production

    The fragrance industry employs this methoxybenzaldehyde derivative in synthesizing complex aromatic aldehyde notes with enhanced volatility and resistance to oxidation. This molecule often acts as a parent aldehyde for condensation with cycloaliphatic amines, yielding designer fragrance bases for luxury perfumes. Processing must minimize uncontrolled side-reactions and meet industry-specific allergen and purity rules defined by fragrance safety panels.

    Industry compliance standards

    • IFRA (International Fragrance Association) Code of Practice
    • EU Regulation (EC) No 1223/2009 on cosmetic products
    • ISO 9001:2015 for aromatic chemical manufacturing
    • OECD Good Laboratory Practice (GLP) for research and safety evaluations

    Typical usage ratio

    • In aldehyde condensation, typically 0.8–1.1 equivalents to co-reactant
    • Exact ratios optimized for fragrance note and olfactory impact in final base

    Downstream process integration

    • Added at the aldehyde condensation stage under controlled temperature and pH
    • Reaction monitored by GC–MS for profile of fragrance aldehydes and isomers
    • Integration into perfumery concentrate blending tanks post-reaction

    Final product types

    • Luxury fine fragrance aldehyde bases
    • Specialty aroma chemicals for colognes and body sprays
    • Highly stable aromatic ingredients for personal care product lines

    4. Functional Polymer Building Block

    Specialty polymer manufacturers utilize this aromatic raw material to incorporate electron-withdrawing substituents and reactive aldehyde moieties into advanced resin systems. The benzaldehyde core enables crosslinking reactions, especially in custom thermosetting resins for high-performance coatings and electronic encapsulants. Controlled feed ratios and analytical verification remain crucial for performance consistency and end-use reliability in critical applications.

    Industry compliance standards

    • RoHS Directive 2011/65/EU for electronic encapsulant materials
    • UL 94 flame classification for resin systems
    • ISO 14001:2015 Environmental Management Systems
    • ASTM D7767—Reactive aldehyde resin standards

    Typical usage ratio

    • Generally introduced at 3–10% by weight of total monomer content
    • Ratios tuned by targeted crosslink density and final Tg (glass transition temperature)

    Downstream process integration

    • Introduced in polymerization step with co-monomers and initiators
    • Crosslinking monitored for aldehyde functionality conversion by FTIR
    • Final integration into coating or electronic potting compound formulations

    Final product types

    • High-durability protective coatings for electronics
    • Encapsulant resins for circuit board assemblies
    • Custom thermosetting polymers for industrial tooling

    5. Research Reagent and Reference Standard Supply

    Laboratories and R&D organizations procure this compound for targeted method development, impurity tracking, or structural elucidation studies. Researchers apply it as a reference aldehyde for validating synthetic routes and studying degradation pathways of related benzaldehyde derivatives. Analytical-grade processing and documentation ensure traceability for published scientific work or regulatory submissions, with batch-specific certification for chemical purity and identity.

    Industry compliance standards

    • ISO/IEC 17025—General requirements for the competence of testing and calibration laboratories
    • GLP (Good Laboratory Practice) for analytical standards
    • USP Chapter <621> for chromatography method validation
    • Accredited Certificate of Analysis (CoA) for reference standards

    Typical usage ratio

    • Applied at micro-mole scale for analytical calibration or method validation
    • Standard solutions prepared at 10–1,000 ppm depending on application

    Downstream process integration

    • Dissolved as reference standard in calibration runs for HPLC, GC, or NMR workflows
    • Used to spike blank samples for system suitability tests and recovery studies
    • Supports identity confirmation for impurity profiling and degradation kinetics

    Final product types

    • Certified reference materials (CRMs) for regulated studies
    • Analytical test solutions for quality control laboratories
    • Published research data on aromatic aldehyde chemistry
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    Certification & Compliance
    More Introduction

    4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde: Direct Insights from the Manufacturer’s Viewpoint

    Understanding What We Make

    Every batch of 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde tells its own story inside our plant. Our teams don’t just watch the dials and meters, they pay attention to the reactions at the bench and on the production floor. It’s not just about following a synthetic route. It’s about ensuring every variable stays in check — from raw material sourcing to the final purification of every lot. This aldehyde doesn’t come out “right” by chance. It emerges from careful control and learning from run history, with adjustments when humidity changes or solvent lots vary. Each mole we bring through to the final product is tracked, checked, and signed off with hands-on scrutiny.

    Specification and What It Means to Us

    Quality for this product means more than numbers on a certificate. For 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde, key targets include appearance, purity, and stability under normal storage conditions. After years of making it, we know how minor variations impact subsequent steps, whether this aldehyde goes toward an API intermediate or a specialty ligand. Any vendor can call a compound “pure,” but as the ones running prep HPLC and GC-MS post-synthesis, we spot subtle by-products early. Our finished material comes as a fine, off-white to pale yellow solid, with HPLC purity exceeding 98%. Water content and residual solvents both matter for shelf life, so we keep close watch with Karl Fischer and headspace GC before release.

    Where It Goes and Why Buyers Come to Us

    The world isn’t short on aromatic building blocks. Our customers tell us markets shift fast and that demands for 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde rise and fall with their project pipeline. We listen closely to feedback on application. For folks working on pharmaceuticals, the methoxy and benzyl ether groups in this molecule support regioselective functionalization. That matters when constructing custom scaffolds for new drug candidates. Researchers in crop science use the product—often as a precursor to complex, functionalized benzyl derivatives for agrochemical screening. Industrial labs ask us for repeat orders after confirming that our material handles oxidation and substitution steps better than the competition, often with less batch-to-batch drift.

    Process Learning: What Separates This Material from Others

    Producing this specialty molecule isn’t just following the literature procedure. Our approach starts with nuts-and-bolts reliability in raw materials. Halogen exchange can prove temperamental on scale, especially on the fluoro position, so we build in extra control checks on our feedstock. The benzylation step offers its own challenges. Trace over-alkylation destroys product purity if temperatures stray from plan or stirring slows at scale. In real-world manufacturing, that means our operators know the signs of a runaway by slight color changes and can make manual interventions if the automated system hints at drift. By treating every batch as a learning opportunity, we maintain reproducibility and can trace the lineage of each lot through our digital and paper records.

    Why Our Material Performs Differently

    Some buyers tell us they assumed this aldehyde acted just like a generic benzaldehyde with a handful of extra substitutions. Our own experience in downstream reactions has shown the impact small impurities can have on catalytic hydrogenation or subsequent nucleophilic additions. Sourcing control makes a difference in the outcome of those later steps. Customers develop trust after running side-by-side screening with several suppliers, only to find less off-gassing and a sharper melting point (about 64–65°C) from our batches. Less noise in the analytical profile means fewer process upsets and real savings in time during scale-up.

    Supporting Quality with Data, Not Just Promises

    Audits and customer site visits push us to show real documentation, not just marketing. All analytical records — NMR, IR, mass spectrometry, elemental analysis — are reviewed at both the bench and management levels before release. If a customer ever sees an anomaly, we walk through run sheets together. We thrive on collaboration with chemists who notice small shifts in reactivity and purity. Several of our bulk buyers have been sending the same chemist delegation for a decade because they value this openness. We routinely support their method development with reference samples and side-by-side analytics. We welcome honest feedback, as it drives targeted improvements during our in-house continuous improvement meetings.

    Safety Priorities in Handling and Production

    With this aldehyde’s chlorinated and fluorinated ring system, plant operators follow strict protocols. On the floor, folks know this isn’t acetone or toluene: its potent odor calls for local exhaust and well-sealed containers. We choose glass-lined reactors after corrosion testing in the pilot lab exposed vulnerabilities in steel. The team wears chemical splash goggles, proper nitrile gloves, and double-checks containment before moving drums to packing. Each staff member has hands-on training, with clear signage and SDS access near usage points. Our safety officers frequently test the effectiveness of PPE and fix ambient sensor alarms as soon as drift shows up. This creates a feedback loop of practical protection that new hires learn from their first shift onward. Downstream, every outbound barrel includes detailed batch traceability and transportation documentation in line with hazardous chemical regulations. Drivers receive special coaching for spill management.

    Sustainability and Waste Minimization

    Solvents and by-product management weigh on every operator’s mind. Each run of this aldehyde produces acidic aqueous streams and solvent-heavy distillates. Instead of routine disposal, we reclaim and purify methylene chloride and toluene on-site, lowering purchase volume and shipping hazards year after year. We have tightened up the scrubbing processes, capturing chlorinated organics from vents in packed towers, then safely neutralizing them. Our team monitors waste output and always looks for creative ways to reduce it. Operators took the initiative to test catalytic residues in wash water and now recover some metal content back into the process. With regulatory standards tightening every few seasons, active staff participation keeps our plant ahead of compliance, while giving us useful feedback to run more efficient shifts.

    Challenges Unique to This Aldehyde

    Synthesis and scale-up aren’t without hurdles. Every molecule has its own character, and this benzaldehyde’s multi-substituted ring brings surprises in reactivity. We once faced a sudden drop in yield after a change in a minor supplier’s process for one input. After intensive troubleshooting and several failed batches, micro-scale testing spotted a disguised contaminant, and corrective actions restored both purity and lot consistency. Improved supplier agreements followed, along with broader analytical catch nets at incoming inspection. Sometimes, a process improvement requires shifting glassware or swapping agitation methods to maintain dispersion during addition steps. Weekly team meetings gather input across production, QC, and maintenance staff, smoothing out process rough edges with hard-won experience.

    Comparing to Similar Benzaldehydes

    Buyers accustomed to para- or ortho-substituted aldehydes see differences instantly. Extra electron-withdrawing groups alter not just reactivity, but also the feel and smell in the lab. For us, the trick isn’t just generating the target structure, but doing it reproducibly—our plant must avoid “swapping” halogens between positions or contaminating with close analogues during clean-out. Some producers let their lines run aldehyde after aldehyde, and it shows up as minor impurities downstream. We thoroughly purge lines, use dedicated glassware for the multi-halogenated series, and keep a strict cleaning verification protocol. This product rarely comes with the residual odor of syringaldehyde or unrelated benzyl ethers.

    Staying Responsive as Research Needs Change

    One year, demand for this item is steady; the next year, a new medicinal synthesis explodes and buyers scale orders up dramatically. Feedback from customers led us to pack product in smaller, moisture-tight bottles during trials with the chemical’s reactivity. Later, we added bulk drum offerings sealed under nitrogen for scale-up plants needing lower exposure and long-term stability. In the past, the solid used to cake after months of warehouse storage, so we tweaked not just the drying protocol at dispatch, but the liner selection in each container. Customer calls with handling tips led us to print best practices directly on every box, which downstream chemists appreciate during night shifts or last-minute reaction setup.

    How Communication Improves Results

    Whether a customer comes to us from pharma, agroscience, or electronics, staff across product management and technical support answer technical questions directly. Our product managers might walk upstairs to check a batch log with a technician, instead of sending canned answers by email. Sometimes yields drop at a customer’s pilot plant—a quick call lets us review the run sheet together, finding small gear calibration or environmental differences that explain the deviation. If a researcher asks for reactivity guidance, we’ll pull up our in-house database of downstream reaction notes. Open communication keeps quality transparent and gives both sides a sense of control.

    Listening to the End Users

    We rely on clear feedback loops. A customer’s process chemist once noticed faint color formation over months in their stored material; after a joint investigation, we found a trace light-sensitive impurity in the packing resin and switched to opaque drums the next quarter. By treating user insights as practical wisdom, we keep the product moving and reduce call-backs. We understand that the real world rarely matches standard conditions. Bench notes from academic labs, industrial production process logs, and on-site QC all blend into our routine evaluations.

    Respecting the Material’s Role in Broader Chemistry

    It’s one thing to make a specialty benzaldehyde for sale—it’s another to understand where it fits into chemical innovation. This molecule’s structural features serve as a springboard for more ambitious reactions. With both halogen atoms and flexible side chain functionality, it becomes a versatile coupling partner in Suzuki or Buchwald–Hartwig reactions. Medicinal chemists value the ready modification of the aldehyde group for structure-activity screening. Materials scientists experiment with it as a component for advanced polymer backbones, seeking unique electron transport properties. We keep tabs on published papers and patents each year to ensure our process meets advancing research standards.

    Why Consistent Supply Matters to Our Customers

    Schedules on the production line don’t always match customer timelines. A delay in raw material shipping or a disruption in production can stall whole research programs. Knowing this, we buffer extra inventory for volatile items like this aldehyde, even when market prices fluctuate. Our planning teams coordinate with purchasing every week, checking forecasts and monitoring critical raw material availability. We started offering advanced order reservations after customer feedback voiced early concerns about planning reliability. Stable supply supports innovation and lets researchers take more risks, knowing their material shows up as planned.

    Improving with Every Batch

    Every campaign teaches us something new. We collect internal failure reports and highlight near-misses in our continuous training sessions. Line operators share observations about viscosity changes, subtle foaming, or color drifts as they happen. Quality teams pore over analytics, flagging trends that go unnoticed during routine checks. We take pride in our internal improvement logs: cumulative upgrades at the operator, process, and QC desk levels have cut complaint calls by over half since this program began. Honest reviews and repeat business tell us which changes mean the most.

    Real-World Impact: A Chain Beyond the Factory Gates

    None of this happens in isolation. Down the line, someone’s formulation depends on the consistency and predictability of what we make. A missed mark at our site can set off a scramble for a drug developer or trigger revalidation costs that reach far beyond the starting material. We recognize the true value of this product is measured by its impact on real problem-solving downstream. Behind every kilo we ship, there are teams preparing presentations, filing patents, and launching new compounds. In some ways, we work in the background, but each worker in our plant understands their efforts shape outcomes elsewhere in the world.

    Trust Built on Direct Experience

    Suppliers come and go. Our relationships with customers rest less on glossy flyers and more on the ease of getting straight answers, the speed of special requests, and the reliability of outcomes batch after batch. Many customers have stuck with us for years because we treat each product’s story as ongoing, not static. A chain of signatures links each lot from incoming raw material through final drum filling, and every operator adds something real to the record book. The human element—people solving problems, noticing trends, finding new efficiencies—stands behind this molecule at every stage.

    The Path Forward

    As we keep producing 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde, new challenges emerge. Regulations evolve, customer expectations rise, research applications diversify. Our job means adapting, investing in better infrastructure, and training new generations of staff to honor old lessons while testing new ground. As upstream feedstock supply chains undergo change and market trends shift, we keep one eye on risk and another on opportunity. Each batch builds on direct experience, not automated repetition. We take our cues from real-world results, measured not just in certificates, but in the trust earned over thousands of kilos produced.

    A Promise Made in Every Batch

    Our product doesn’t just come with a label—it comes with a story built by the people who measure, mix, and monitor it from raw material to sealed drum. We believe the integrity of every consignment matters, and that every improvement we make serves not just ourselves, but the scientists and engineers moving research forward elsewhere. As manufacturers, we know the difference between just “making” a chemical and understanding what it means for those further down the line. For anyone seeking reliable, high-performing 4-[(2-Chloro-6-Fluorobenzyl)Oxy]-3-Methoxybenzaldehyde, our experience is built into every container.