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2,6-Dimethylfluorobenzene

    • Product Name 2,6-Dimethylfluorobenzene
    • Alias 2-Fluoro-m-xylene
    • Einecs 210-401-6
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    543681

    Cas Number 443-86-7
    Molecular Formula C8H9F
    Molecular Weight 124.16 g/mol
    Iupac Name 2,6-dimethylfluorobenzene
    Appearance Colorless liquid
    Boiling Point 157-159 °C
    Melting Point -31 °C
    Density 1.009 g/mL at 25 °C
    Refractive Index 1.500-1.504
    Flash Point 45 °C (open cup)
    Solubility In Water Insoluble
    Smiles Cc1cccc(C)c1F
    Pubchem Cid 10130

    As an accredited 2,6-Dimethylfluorobenzene 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 100 mL, with a tamper-evident cap. White label displays chemical name, hazard symbols, and handling instructions.
    Shipping 2,6-Dimethylfluorobenzene is shipped as a liquid chemical in tightly sealed, chemical-resistant containers, following standard hazardous materials protocols. It should be labeled with appropriate hazard and identification markings, protected from heat, sparks, and open flames, and transported in compliance with local, national, and international regulations for flammable organic liquids.
    Storage 2,6-Dimethylfluorobenzene should be stored in a tightly closed container in a cool, dry, and well-ventilated area away from sources of ignition and incompatible materials like strong oxidizers. Keep it protected from light and moisture. Store at room temperature, away from heat and open flames. Ensure that suitable spill containment and labeling are in place to prevent accidental exposure or environmental release.
    Application of 2,6-Dimethylfluorobenzene

    Applications of 2,6-Dimethylfluorobenzene in Industrial Manufacturing

    As a direct manufacturer of 2,6-Dimethylfluorobenzene, we support advanced production facilities worldwide with high-purity material that meets rigorous industrial and regulatory requirements. This product’s unique molecular structure enables its use in specialized fields where selectivity, chemical stability, and traceable quality assurance are critical. Below, we outline verified downstream application tracks, process integration insights, and compliance requirements for 2,6-Dimethylfluorobenzene in B2B manufacturing environments.

    1. Pharmaceutical Intermediate Synthesis

    Pharmaceutical producers worldwide utilize 2,6-Dimethylfluorobenzene as a functional building block, especially for synthesizing advanced fluorinated heterocycles found in active pharmaceutical ingredients (APIs) targeting CNS disorders and oncology therapy. Its ortho-substitution pattern offers unique electronic and steric properties necessary for precise ring construction steps in multi-stage syntheses.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • United States Pharmacopeia (USP) NF for raw materials
    • EU EudraLex Volume 4, Part II GMP requirements
    • China Pharmacopoeia compliance for starting materials

    Typical usage ratio

    • Stage-wise batch incorporation between 0.2–1.1 molar equivalents, adjusted per specific transformation step and API yield optimization targets

    Downstream process integration

    • Introduced during initial or intermediate reaction stages for nucleophilic aromatic substitution, aryl coupling, or Suzuki–Miyaura cross-coupling reactions leading to key drug intermediates

    Final product types

    • Synthons for CNS-active APIs (antipsychotics, antidepressants)
    • Precursor structures for kinase inhibitors in oncology drugs
    • Fluorinated benzimidazole derivatives
    • Aryl amine intermediates for pharmaceutical research pipelines

    2. Agrochemical Active Ingredient Manufacturing

    Leading agrochemical companies employ 2,6-Dimethylfluorobenzene to introduce selective fluorine motifs in crop protection compounds. Its meta-oriented methyl groups aid in achieving desired metabolic stability and field persistence in modern herbicide and fungicide discovery programs, especially where resistance management is critical.

    Industry compliance standards

    • FAO and WHO Specifications for Pesticides
    • REACH (EC No 1907/2006) Registration, Evaluation, Authorisation, and Restriction of Chemicals
    • OECD Data Requirements and GLP (Good Laboratory Practice)
    • National agrochemical registration guidelines (US EPA FIFRA, Korea BPR)

    Typical usage ratio

    • Precursor addition between 3–7% by mass in the active ingredient synthesis reaction, with precise dosing determined by target molecule and conversion efficiency

    Downstream process integration

    • Applied in fluorination, nitration, or amination reaction steps at early stage agrochemical A.I. synthesis, prior to downstream esterification or formulation blending

    Final product types

    • Fluorinated herbicide actives (e.g., pyridine- and triazole-type molecules)
    • Novel systemic fungicides for cereals and fruits
    • Advanced insecticidal intermediates
    • Crop protection R&D screening candidates

    3. Liquid Crystal Compound Preparation

    Major electronic and display panel manufacturers use 2,6-Dimethylfluorobenzene as an intermediate for synthesizing specialty fluorinated biphenyls and terphenyls—crucial for high-performance nematic and smectic liquid crystal mixtures. Its precise substitution profile improves the dielectric anisotropy and temperature stability of final LC formulations deployed in advanced thin-film transistor (TFT) and organic LED (OLED) displays.

    Industry compliance standards

    • IEC 61249-2-41 (Materials for printed boards and other interconnecting structures – Part 2-41: Reinforced base materials, halogen-free)
    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances)
    • JEITA standards for display materials (Japan Electronics and Information Technology Industries Association)
    • ISO 9001 and ISO 14001 certified supply chain requirements

    Typical usage ratio

    • Intermediate consumption between 2–10% within the molecular structure assembly steps for LC pre-compounds; actual mass ratio refined according to target mesogen properties

    Downstream process integration

    • Integrated during aromatic coupling and fluorination stages for building custom biphenyl and terphenyl units, followed by purification and blending with other mesogenic components

    Final product types

    • Advanced nematic and smectic liquid crystal mixtures
    • TFT-LCD display fluid blends
    • Organic LED (OLED) alignment layers and matrix formulations
    • Specialty display-grade liquid crystal intermediates

    4. Specialty Polymer Monomer Sourcing

    Producers of high-performance specialty polymers and engineering plastics use 2,6-Dimethylfluorobenzene as a starting monomer or comonomer, benefiting from its electron-deficient aromatic ring and tailored hydrophobicity. The compound’s unique architecture facilitates custom polymer backbones for membranes, coatings, and advanced fiber applications, especially where thermal resistance and low dielectric loss are required.

    Industry compliance standards

    • ISO 9001 for Quality Management Systems
    • ISO 14001 for Environmental Management Systems
    • UL 94 (Standard for Safety of Flammability of Plastic Materials)
    • REACH registration for polymer substances

    Typical usage ratio

    • Incorporated at 1–6% by mole during copolymerization or chain extension, depending on desired thermal, chemical, or barrier characteristics in the final polymer matrix

    Downstream process integration

    • Entered at the monomer stage of solution or melt polymerization, especially for aromatic polyimide, polyether, and polyarylate preparations, followed by post-polymerization purification

    Final product types

    • High-temperature film and sheet materials
    • High-barrier specialty membranes
    • Low-loss dielectric components for electronics
    • Intermediate fibers for technical textiles

    5. Fine Chemical Synthesis & Custom Reagents

    Producers in the fine chemical sector rely on 2,6-Dimethylfluorobenzene as a selective fluorinated precursor for the synthesis of reagents, ligands, or custom analytical markers. Its ortho, ortho methylation ensures controlled regioselectivity for processes such as ligand tuning, derivatization reactions, and functional unit attachment in contract R&D services.

    Industry compliance standards

    • ISO 17025 Laboratory Quality Accreditation
    • REACH and TSCA (Toxic Substances Control Act) chemical inventory compliance
    • Responsible Care management systems
    • GHS (Globally Harmonized System) labeling and transportation standards

    Typical usage ratio

    • Added between 0.5–2.5 equivalents per synthetic step, adjusted for specific molecular design and reactivity profiles in multi-component reactions or marker synthesis

    Downstream process integration

    • Assimilated during cross-coupling, derivatization, or direct fluorination steps for advanced laboratory and industrial reagent creation

    Final product types

    • Custom organofluorine ligands
    • Isotopically labeled reference standards
    • Analytical chemistry building blocks
    • Specialized fine chemicals for research and diagnostics
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    Certification & Compliance
    More Introduction

    Introducing 2,6-Dimethylfluorobenzene: A Manufacturer’s Perspective

    The Craft and Purpose Behind 2,6-Dimethylfluorobenzene

    Sometimes a molecule reshapes entire stretches of the value chain, not with fanfare but with the steady reliability that industry expects. From our position as a direct chemical manufacturer, 2,6-Dimethylfluorobenzene stands out as a product we build from the ground up. Chemists look for consistency, confidence in origin, and a thorough understanding of the underlying process. We expose every batch to rigorous scrutiny—analytical purity, targeted yields, exacting control over side-products—because every customer and subsequent reaction depends on this foundation.

    2,6-Dimethylfluorobenzene, often abbreviated as DMFB, brings simplicity to complex synthetic routes. The molecule holds a benzene ring substituted with two methyl groups in the ortho positions and a fluorine atom para to those methyls. This configuration doesn’t happen by chance or convenience. Instead, careful selection governs the choice of starting toluene derivatives, catalysts, and reaction conditions, each influencing hydrodehalogenation resistance, reactivity, and downstream product profile.

    In our hands, the control achieved during halogenation and alkylation defines the integrity of DMFB. Routine inspection cannot catch all quality points; we go beyond, using gas chromatography for purity, water determination protocols, and monitoring trace ionic residues. Applications rely on this painstaking attention to detail, since most customers use DMFB as a key intermediate for further fluorination, coupling, or polymerization reactions.

    DMFB in Industry: Uses Rooted in Chemistry

    Our clients rarely see this product on the evening news, yet within pharmaceutical and agrochemical development, DMFB marks a common link between basic building blocks and advanced targets. Protection and functional group compatibility emerge as the major drivers here. The methyl groups shield positions 2 and 6 from unwanted side reactions, while the fluorine brings electronic effects that steer coupling partners into their correct spots.

    Clients call for DMFB for a variety of reasons. Many aim to introduce a fluorine atom within a restricted aromatic framework, taking advantage of the unique reactivity that the 2,6-dimethyl pattern allows. Others value the molecule for its ability to withstand harsh conditions—its methyl groups deflect nucleophiles, while the fluorine remains selectively reactive to certain catalysts. Contract research organizations lean on DMFB when seeking novel API scaffolds, especially for small-molecule discovery where every aromatic substitution matters. The industry’s push for fluorine-rich molecules with drug-like properties practically guarantees steady demand for this compound.

    Our process engineers receive feedback from formulation scientists and synthetic chemists every month. DMFB’s boiling point, vapor pressure, and solubility curves affect storage decisions, process throughput, and choice of safe packaging. Small improvements—an extra chromatographic polish here, a re-optimized temperature ramp there—add up to years of reliability for customers who cannot afford uncertainties in starting materials.

    What Sets Our DMFB Apart: Manufacturing Depth and Technical Know-How

    Supplying a catalog item is not the same as shaping a solution through experience. We began producing 2,6-Dimethylfluorobenzene in response to direct requests from the synthesis community frustrated by inconsistent purity and sourcing headaches. From the outset, we configured our lines to minimize halogen cross-contamination and ensure each tank holds only sibling materials. Nitrogen blanketing, stainless-steel reactors, and carefully dried solvents reduce the risk of unwanted hydrolysis—a small water ingress can ruin days of work downstream.

    Material selection means we avoid off-flavors in the product. Not every run is the same—at scale, subtle factors like stirrer geometry, local pressure, and even day-to-day fluctuations in raw material purity can affect outcomes. Years of listening to customer complaints about batch variation, haze from unknown byproducts, or strange odor notes led us to install dedicated in-line sensors and sample points. Operators track these in real time, not merely at the final QA step.

    Customers notice the difference most when scaling up or designing a continuous process. Standard DMFB grades can suffice for R&D. When the next stage requires multi-kilo or multi-ton throughput, many distributors flinch. We treat these as opportunities to review distillation cut points, solvent recycling logic, and pack-out atmosphere. We work to compress downtime for clients—no one wants a reactor line idle while waiting for raw materials—and our logistics team intervenes directly to keep deliveries in sync with customer production plans.

    Typical Specifications and Analytical Guarantees

    Our 2,6-Dimethylfluorobenzene remains uncompromised due to a strict adherence to real-world parameters. R&D project managers demand not only stated purity percentages, but also low levels of trace water (measured by Karl Fischer titration), halide impurities documented by ion chromatography, and organic volatility fingerprints examined by GC-MS. Our methodology doesn’t allow for variance in color, viscosity, or odor outside narrow bands—our own experienced analysts catch outlier lots before a product ever leaves the line.

    Clients ask for a minimum 99% purity for DMFB, and we certify lot-by-lot compliance. Residual starting materials and side-products merit a special focus, so our in-house labs keep a database of known and expected contaminants. Users synthesizing pharmaceutical-grade entities trust us to provide supporting documentation tracing every input, each analytical checkpoint, and outbound testing. For users in flavor or polymer applications, we maintain dedicated lines that prevent cross-talk between classes of chemicals.

    Shipping partners must handle DMFB in tightly sealed drums or specialty containers that prevent loss due to volatility or contamination. The product’s modest reactivity reduces risk, though temperature and humidity swings during storage deserve respect. Technical support staff can advise on special packaging or stabilization additives, based on years spent working directly with clients on critical process bottlenecks.

    Differentiating 2,6-Dimethylfluorobenzene from Close Chemical Relatives

    Fluorinated aromatics come in many flavors—ortho-, meta-, or para-methyl groups, mono- or di-fluorination, and even more elaborate substitutions. Some clients ask, why not use 2-Fluorotoluene or 2,4-Dimethylfluorobenzene instead? The answer comes from chemistry’s practicalities. The 2,6-dimethyl arrangement in DMFB imposes steric hindrance that blocks ortho and para attack, promoting selective reaction sites for cross-coupling or nucleophilic substitution. This restrictiveness opens up synthetic strategies impossible with 2-fluorotoluene or with para-substituted isomers.

    Within convergent synthesis schemes, minor substituent placement differences have profound downstream consequences. Experience taught both our teams and our partners that the predictability of DMFB enables streamlined regulatory filings, scale-up protocols, and impurity profiles. In pharmaceutical work, small structural imperfections can invalidate months of optimization. We act as more than material suppliers—we troubleshoot isolation steps, gas evolution issues, and incompatibilities with downstream reagents.

    Some manufacturers prioritize sheer output or cost. We focus instead on robust reproducibility and traceability, knowing that a poorly controlled process undermines the quality of every subsequent step. Ready access to our technical team means users can consult on not just the main DMFB lot, but also candidate isomers or custom grades, based on application feedback or regulatory changes. Over time, this approach produces fewer surprises and more value for the client.

    Realities of Quality Control from a Producer’s Viewpoint

    Few customers experience the firefighting that goes into stabilizing process variables or “debugging” a batch that veers toward an off-spec range. Our team appreciates that most users want not only documentation but a sense of trust built from accumulated consistency. No QA batch report can replace a phone call between our lab specialists and client chemists, tackling questions about unusual GC peaks or phase separation in a peculiar formulation. We compile lessons from these calls to adjust our quality protocols in real time.

    Over the years, we retooled purification to remove low-level byproducts, including isomeric contaminants and traces of higher fluorinated aromatics. That effort doesn’t just aim for a cleaner certificate—it supports high-yield coupling, clean NMR spectra, and true-to-expectation reactivity for users running complex multi-step syntheses. Every metric—color, GC area percent, water content—gets measured because a small miss in one area may signal a much larger failure waiting to show up in a critical downstream process. Quality is not a checklist to complete at the end, but a constant process of improvement.

    Other facilities talk about flexibility in their offerings, but our kind of flexibility comes from owning every step of the process. A phone call on a Friday afternoon may turn into an expedited micro-batch, an abnormal drum size, or support for a scale-up campaign with a hard launch date and a small window for learning on the fly. These real-world scenarios shape our response—a willingness to pause routine runs, to accommodate custom requests, and to train staff on specific packing, inerting, or even analytical method development as clients’ needs evolve.

    Process Innovation and Environmental Stewardship

    Producing DMFB reliably cannot come at the cost of environmental shortcuts. Regulatory requirements grow tougher every year, and responsible manufacturers must look at not only emissions and waste profiles, but also the supply chain for raw materials. Our engineering department invests in closed-loop solvent systems, high-efficiency scrubbers, and waste minimization. Not only does this limit discharge and environmental risk, it shields customers from later compliance headaches—whether through unexpected impurities or residue issues.

    Synthetic aromatics, including DMFB, historically relied on halogenation steps with significant salt and halide byproduct streams. We formalized tight controls on reagent delivery, recovery, and remediation, ensuring minimal exposure for both personnel and the environment. Each improvement in waste reduction, whether by reusing solvents or capturing vented gases, repeats at scale to produce cumulative benefits. End-use customers discover fewer headaches later on, and regulatory reporting becomes a straightforward task rather than a scramble.

    Medical and agricultural users often face strict audits concerning residual solvents, trace elements, and lifecycle environmental impact. Our record keeping and in-lab assessment routines provide easy certification for users aiming to comply with national and international standards. Beyond compliance, this approach means users receive material that integrates seamlessly with modern green chemistry paradigms—supporting sustainable synthesis as much as technical performance.

    Adapting to Customer Process Needs: More than Just Raw Material Supply

    Supporting innovative chemistry means engaging with the particulars of how DMFB performs under true process conditions, not just supplying vials with promised purity levels. Our feedback loop extends beyond manufacturing to hands-on collaboration. During early onboarding, we help users validate the molecule’s solubility in custom blends, monitor shelf-life in new container systems, or address unexpected storage and handling questions that crop up during plant trials.

    For advanced API synthesis, industrial users need clarity on every parameter—peroxide levels, residual actives, UV/vis absorption characteristics—since regulatory filings and patent strategies rely on predictable reference material. Others, working in high-throughput settings, request assurance for continuous runs or high-shear mixing. We believe that real support means standing by as customers tackle scale-up hiccups, formulation incompatibilities, and critical path challenges that can de-rail even well-validated projects. Sometimes fast consultation or direct delivery tips the balance between a successful process and a costly delay.

    Feedback from these engagements enriches how we prepare, test, and package future DMFB batches. We learn which impurities disrupt palladium-catalyzed couplings, which packing geometries withstand aggressive solvents, and how small tweaks in particle size or handling protocols unlock process improvements in specific customer contexts. That detail doesn’t show up on a data sheet, yet defines our day-to-day priorities.

    Serving as a Strategic Partner in the Supply Chain

    The wider chemical supply chain depends on reliability—not just of certificates, but of insight and willingness to troubleshoot. DMFB stands out among aromatic fluorinated intermediates because its use cases reward predictability across every scale, from discovery to commercial supply. We serve not just process chemists ordering jars or drums, but manufacturing engineers grappling with line shocks, downtime, and documentation nightmares that inevitably shadow complex procurement cycles.

    Direct relationships with customers expose us to the realities facing both small companies with lean in-house capacity and global giants managing complex multi-country regulatory expectations. Our own production challenges—planned maintenance, raw material volatility, and even transport disruptions—mirror the headaches faced by our customers. Sharing this context lets us plan more intelligently, buffer inventory, and communicate honestly about lead times and flexibility.

    While traders and resellers treat DMFB as a commodity with standardized pricing, to us each order tells a story: a new drug candidate under review, a specialty polymer line transitioning to greener processes, or a crop protection firm racing to meet seasonal deadlines. By manufacturing in-house, we translate feedback into next-generation process updates, deeper technical documentation, and real-world advice that endures beyond any single project or campaign.

    Addressing Future Needs: Evolving with Chemistry Itself

    Chemistry evolves with new discoveries but also with shifting regulatory and technological terrain. DMFB’s importance as a molecular building block places it within a network of innovation, from bioconjugation research to material science exploration. As a producer, we forecast demand based on more than sales data; we analyze patent trends, formulation requests, and feedback from global partners working at the leading edge of applied chemistry. Continuous investment in process control, analytical capability, and operator training maintains the stability our customers expect.

    Industry partners demand more than mass-produced chemicals—they require adaptability, mutual trust, and hard-won expertise. Our production reflects this: every batch, every container, every technical file represents an investment not only in quality, but in the continuity of each customer’s program. For many, DMFB is not just a supply issue, but a stepping stone to future-proofing entire manufacturing lines, new molecular classes, and regulatory-driven innovations that define tomorrow’s products.

    The Value of Direct Manufacturing Experience

    Manufacturing DMFB doesn’t just mean producing a chemical—it’s about guiding customers through evolving complexity, reacting as processes shift, and learning on every iteration. Everything from plant maintenance to analytics, from shipping compliance to technical wrap-up, involves boots-on-the-ground expertise. Decades of hands-on work taught us that only transparent operations, open communication, and a willingness to adapt meet the high standards demanded by today’s advanced industries.

    Every customer conversation counts—those raising concerns about a tricky impurity spike, exploring a novel application, or requiring an unusual container size. We know that what’s promised on a specification sheet often falls short in practice, and we seek ongoing feedback. This dialogue shapes not only future DMFB offerings, but also our broader approach to specialty intermediate production. The people blending, reacting, and measuring at our site aren’t invisible—they’re the knowledgeable partners who keep the chemical value chain moving smoothly.

    Through this lens, DMFB is more than a product line item; it’s a marker of reliability between maker and user, backed by daily choices and tested experience. Reliable production, candid problem-solving, and steady process improvement remain central to how we support users who demand more than mere access to a building block. For those pushing technical and regulatory boundaries, the direct line to the people who produce and refine 2,6-Dimethylfluorobenzene brings peace of mind, technical confidence, and a trusted foundation for what comes next.