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2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid

    • Product Name 2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid
    • Alias Bensulfuron
    • Einecs 603-236-5
    • 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

    544291

    Chemical Name 2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid
    Molecular Formula C13H12N2O4S
    Molecular Weight 292.31 g/mol
    Cas Number 85787-05-9
    Appearance White to off-white solid
    Solubility Slightly soluble in water; soluble in organic solvents such as DMSO and methanol
    Purity Typically ≥98%
    Storage Temperature Store at 2-8°C, protect from light and moisture
    Iupac Name 2-[(4,6-dimethoxypyrimidin-2-yl)sulfanyl]benzoic acid
    Smiles COC1=NC(=NC(=N1)SC2=CC=CC=C2C(=O)O)OC

    As an accredited 2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The chemical is packaged in a sealed, amber glass bottle containing 25 grams, labeled with compound name, structure, quantity, and safety information.
    Shipping **Shipping Description:** 2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid is shipped in sealed, chemical-resistant containers to prevent contamination and moisture exposure. It is transported according to chemical safety regulations, with labeling indicating its identity, hazards, and handling instructions. Standard shipping is via ground or air, depending on destination and urgency, with proper documentation included.
    Storage 2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizing agents. Protect it from light and moisture. Store at room temperature, and avoid excessive heat. Proper labeling and secure handling are recommended to ensure safety and preserve chemical stability.
    Application of 2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid

    Applications of 2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid in Industrial Manufacturing

    As a specialized manufacturer of 2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid, we supply this advanced intermediate exclusively to select downstream industries. Through stringent product traceability and technical support, we ensure our material delivers precise functionality and value in each customer’s production environment. Below we provide a structured overview of its main industrial applications, focusing on real market uses, unique technical requirements, and typical processing practices as encountered by leading global producers.

    1. Herbicide Active Ingredient Synthesis

    2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid plays a critical role as a key intermediate in the multi-stage synthesis of selective post-emergence herbicides, particularly in the sulfonylurea and thiadiazole families. Our customers introduce this raw material during the heterocyclic coupling step, ensuring high molecular purity before downstream sulfonylation and formulation. The input ratio depends on target molecule yield calculations and reaction efficiency, typically adjusted with respect to expected batch scale and crop application requirements. Final products integrate this intermediate into granules, water-dispersible powders, and suspension concentrates used by agriculture input suppliers.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • China GB 2763-2021 Maximum Residue Limits for Pesticides
    • EU Regulation (EC) No 1107/2009 (authorisation of plant protection products)
    • ISO 1107:2011 Pesticides – Guidelines for the quality control of technical material

    Typical usage ratio

    • Used at 1.10–1.25 molar equivalents relative to downstream sulfonylation reactant
    • Adjusted according to target molecule purity (95–98%) and batch scale

    Downstream process integration

    • Introduced during initial condensation and cyclization stages of herbicide A.I. synthesis
    • Subjected to QC on melting point and UV-Vis purity before proceeding to sulfonylation

    Final product types

    • Technical-grade sulfonylurea herbicides
    • Formulated water-dispersible granules (WDG)
    • Wettable powders (WP) and soluble concentrates (SL)

    2. Agrochemical Intermediate for Rice Selectivity Enhancers

    Major agrochemical formulators utilize 2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid to manufacture synergists that raise selectivity and crop tolerance in rice herbicide systems. The intermediate enters amidation or esterification routes to generate auxiliary molecules which modulate enzymatic pathways in rice, improving field safety margins. Plants employing closed-loop synthesis lines for active ingredient and enhancer co-production integrate this material at a controlled stoichiometry, impacting conversion rates and product stability. End products are supplied as premix additives to regional agricultural cooperatives and rice farming groups.

    Industry compliance standards

    • SANCO/10597/2003 (Guidance document on regulatory requirements for plant protection products in the EU)
    • China National Agrochemical Standards GB 20629-2006
    • JMAFF (Japan Ministry of Agriculture, Forestry and Fisheries) agrochemical registration protocols

    Typical usage ratio

    • 0.5–0.8% w/w of total batch input for selectivity enhancer intermediates
    • Proportion regulated by yield efficiency and desired enhancer concentration in finished product

    Downstream process integration

    • Fed into the batch during functional group derivatization, before final neutralization and drying
    • Monitored for reaction endpoint with titration and spectroscopic verification

    Final product types

    • Rice herbicide selectivity enhancers
    • Premix adjuvant blends for paddy rice

    3. Fine Chemical Synthesis for Custom Pyrimidine Derivatives

    Research-based specialty chemical manufacturers employ this compound to access tailored pyrimidine derivatives for R&D and niche agrochemical markets. The benzoic acid moiety enables various downstream functionalizations, such as halogenation or etherification, optimizing structural attributes without compromising core pyrimidine features. The addition ratio closely aligns with molecule design and pilot-stage experiment planning, and purity/impurity profiles are managed with advanced analytical instrumentation throughout process development. Batch outputs typically serve as sample lots or small-scale targets for subsequent application evaluations.

    Industry compliance standards

    • ISO 9001:2015 Quality Management for Fine Chemical Production
    • REACH (EU Regulation 1907/2006) for new chemical substances notification
    • US EPA PMN (Pre-Manufacture Notification) under TSCA for novel intermediates

    Typical usage ratio

    • 0.1–2.0 equivalents based on target pyrimidine derivative structure
    • Adjusted in optimization cycles for yield, purity, and functionalization efficiency

    Downstream process integration

    • Inserted in initial batch reactor prior to halogenation, amidation, or etherification transformations
    • Process includes close in-process control and route scouting for structure–function optimization

    Final product types

    • Novel substituted pyrimidines for research and development
    • Custom intermediates for specialty agrochemical trials

    4. Contract Synthesis Starting Material for Agro-Active Compound CDMO Projects

    Contract development and manufacturing organizations (CDMOs) routinely request this intermediate as a defined starting point in multi-step contract synthesis campaigns targeting market-specific agro-actives. The ability to introduce the material prior to key ring-closure or sulfur bridge formation allows for efficient route divergence tailored to global customer requirements. Input ratios are calculated directly from project-specific synthetic routes and PO-based batch scales, with sampling for spectral confirmation at each critical milestone. Deliveries are made in compliance with customer CMO and GMP directives, and the resulting intermediates serve as raw stock for proprietary formulators.

    Industry compliance standards

    • ICH Q7A Good Manufacturing Practice for Active Pharmaceutical Ingredients (applied to high-purity crop-protection intermediates)
    • ISO 14001:2015 for Environmental Management Systems in contract synthesis sites
    • Customer-specific CDMO quality standards and audit protocols

    Typical usage ratio

    • Used per customer specification sheets, typically 1.0–1.3 molar equivalents to batch input
    • Dosing adjusted based on reagent quality audits and final active technical profile

    Downstream process integration

    • Added as an initial reagent for stepwise synthesis in multipurpose reactors
    • Integrated with GMP documentation for batch tracking, QC analysis, and shipment clearance

    Final product types

    • Precursor intermediates for patented and generic agrochemicals
    • Technical concentrates for further active ingredient synthesis
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    Certification & Compliance
    More Introduction

    2-[(4,6-Dimethoxypyrimidin-2-Yl)Thio]Benzoic Acid: Precision, Reliability, and Purpose for Modern Synthesis

    Connecting Chemistry to Application

    Talking about 2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid in a practical way means getting past catalog numbers and focusing on the real reasons customers, researchers, and manufacturers demand this compound. As direct manufacturers, we walk through the entire process, from sourcing raw materials—always qualified by batch analysis—to the work on the production floor where each reaction is carefully monitored.

    Chemists who specify this compound usually come from fields such as agrochemical synthesis, pharmaceuticals, or functional material research. The structure itself, combining the benzoic acid head with a pyrimidine unit, creates a valuable way to introduce both aromatic character and heteroatom flexibility into more complex molecules.

    How Our Production Experience Shapes Product Strengths

    We have spent years refining the synthetic route to 2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid. At scale, controlling methoxy group integrity becomes a main concern, as minor deviations can trigger side reactions or degradation. In our plant, acid-catalyzed steps get special attention; reaction temperatures, solvent ratios, and post-reaction purification determine if the final powder meets the expected benchmarks. Our specifications for this product include appearance, melting point range, water content, and purity (tested by HPLC and NMR), all verified batch-by-batch. Typical purity stands at 98% or higher, and we keep residual solvents below tight limits.

    Unlike third-party agents or repackagers, we guarantee traceability back to every production lot. We log each quality control measurement and retain split samples for shelf-life evaluation. For clients in regulated industries—such as agrochemicals—demonstrating consistent control over the synthesis and documentation of intermediates like this one supports approval in downstream applications. We see recurring orders and long-term contracts from partners who care about these exact points.

    Real Uses and the Function of Structure

    In daily practice, 2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid carries most value as a building block for herbicide and plant growth regulator development. Its distinctive thioether linkage provides reactivity; downstream functionalization introduces either new aryl groups, alkyl substituents, or further heterocycles. In pharmaceutical research, this scaffold opens the door to lead optimization—altering the acid or pyrimidine moiety fine-tunes biological activity. Developers can test binding properties across a range of targets, knowing our material meets consistent analytical specifications.

    Experience counts in how we preserve the delicate methoxy groups during storage and shipping. Moisture can hydrolyze or degrade active groups, so every drum or package is flushed and sealed under dry nitrogen. We have seen the negative effects from careless handling: batch-to-batch discoloration, off-odors, inconsistent particle size distribution. These are not mere cosmetic problems, but can upset downstream reactions or breach strict impurity profiles. Our fail-safes—such as rapid filtration, immediate drying, and multi-point quality checks—have reduced these risks in shipping practices.

    Why This Compound Differs from Similar Structures

    Benzoic acid derivatives and pyrimidine-based building blocks stretch across the synthetic landscape. Many intermediates resemble each other, but subtle differences create meaningful impacts in synthesis. As colleagues in process chemistry recognize, the choice between a methyl versus a methoxy group, or a sulfur versus oxygen linkage, can change how efficiently a coupling proceeds or alter how a final active ingredient behaves.

    In direct comparison, 2-[(4,6-dimethoxypyrimidin-2-yl)thio]benzoic acid holds certain advantages. Alternatives lacking the dual methoxy protection have greater susceptibility to hydrolysis or oxidation. Substituting an oxygen for the thioether (O- instead of S-linkage) often leads to lower reactivity toward nucleophilic additions required in late-stage elaborations. These small changes reflect widely in the lab: reduced side product formation, fewer purification steps, and, for process engineers, higher overall yield. Our long-term supply partnerships developed from these kinds of measurable differences.

    Sourcing Matters: Lessons from Experience

    Over decades of operation, we learned which supply chain variables truly affect chemical reliability. Access to fresh, high-grade pyrimidine sources—verified by our in-house GC-MS—matters as much as clean benzoic acid streams. Shortcuts in solvents, reagents, or process water can quickly spoil the entire batch. Over time, trace contaminants accumulate across recycles if not controlled.

    By holding direct manufacturing responsibility, we commit to frequent line cleaning and regularly scheduled maintenance shutdowns. Our plant operates under ISO-aligned procedures, and we continuously review feedback for both complaints and positive reports. Sometimes pre-shipment samples are requested for experimental validation. Our technical staff always tracks back to same-lot production and analytical records for full transparency. These steps convert routine chemical supply into trusted partnerships.

    Meeting Regulatory and Market Demands

    2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid has drawn attention from regulatory authorities, especially in jurisdictions with strong oversight over endemic herbicide and pharmaceutical production. We supply full certificates of analysis and transparency into our synthetic path, process flow diagrams, and contaminant controls. Documentation clarity is not just a formality in this market: decision-makers require this information to achieve crop protection registration or pharmaceutical validation.

    Every year brings adjustments to international compliance rules. Reach pre-registrations, import notifications, and hazardous goods labels all depend on both actual purity and declared safety data, which we internally review according to the latest updates. Sometimes, a customer pushes for a slight twist in the specification—lower moisture or a particular particle size for solid formulation blending. Our technical group works directly with labs and plant floor staff to implement new protocols, run validation batches, and update the paperwork that supports market expansion.

    Supporting High-Tech Development Beyond Research

    Synthetic specialists from startups and global multinationals both rely on scalable, consistent intermediate supply. For them, 2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid forms part of the toolkit leading to bigger, more sophisticated end products. We often supply researchers exploring next-generation herbicides, where changes to the pyrimidine ring or to benzoic acid substitution pattern produce new activity spectra. Responsibility for these innovations rests heavily on reliable access to core building blocks.

    Returning project teams notice when supply fluctuations impede critical experiments. Downstream, contract manufacturing lines can stall mid-campaign when inferior material leads to fouled reactions or difficult purifications. Direct communication and willingness to revisit process parameters have been our answer. We actively share best-practice advice about handling, storage, and real-world process experience built up over hundreds of campaign runs. Sometimes this even includes site visits for troubleshooting, reviewing reactors, or collaborating on new technical approaches.

    Reducing Waste and Environmental Impact

    Years of work refining our own approach has shown where most environmental strains originate—inefficient raw material usage, excessive solvent consumption, lingering side products, and energy-intensive post-treatments. In manufacturing this compound, we focus on reaction yield and waste minimization. We operate energy recapture systems, recycle and reuse solvents, and neutralize waste water streams. Routine LC-MS screening and VOC emission controls safeguard both the work environment and the community around our plant.

    Clients in the modern chemical sector pay attention to the environmental profile of their supply chain. They want to know not just the composition of a product, but also how it was made. With years of investment into cleaner synthesis, we present verifiable improvements—reduced carbon footprint, audited water usage statistics, reduced steel drum waste by expanding reusable container programs. These updates are not abstract goals, but measured steps logged and reported on-site.

    Facilitating Smoother Scale-Ups

    Lab-scale success does not always translate into seamless production on the industrial scale. We have seen experienced teams struggle with batch consistency, filtration difficulties, or unexpected impurity formation during kilo expansion. By working directly with end users, we provide detailed process notes, offer sample batches, and adapt production as needed. This has meant adjusting drying times, reevaluating crystallization conditions, or suggesting changes in purification solvents based on downstream compatibility.

    These incremental improvements stem from understanding our material’s actual behavior during transfer, handling, and storage. Having walked the factory floor ourselves, we know the subtle warning signs—a sluggish filtration, a slight shift in melting point, even an unexpected clumpiness in the powder. Stripping away theoretical assumptions and trusting real-world evidence, we troubleshoot collaboratively with our customers. Together, we push forward project timelines and generate better end results.

    Building Trust Through Reliability and Technical Expertise

    Trust does not come from glossy packaging or catalog promises, but from demonstrable reliability and technical feedback. Over many years, we have invested in continual upgrade of both our people and equipment: analytical chemists proficient in NMR, HPLC, GC-MS, and IR, and operators trained for immediate troubleshooting on the lines. We run both manual and automated instrumentation to cross-check purity, identity, and critical quality attributes.

    Clients often bring up practical concerns in communications—questions about shelf life, stability under different temperatures, compatibility with formulation processing, or residual catalyst content. Because we work with these issues daily, we respond from firsthand knowledge. If a formulator in Europe requests detailed metal contaminant data or an R&D group requires a sample with tighter-than-normal impurity specs, our in-house team runs extra testing and provides full datasets. Every tweak or adjustment builds new technical insight, strengthening the next round of product shipments.

    The Evolution of Market Demand

    Demand for 2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid has grown with the expansion of next-generation agrochemicals and custom pharmaceutical ingredients. We have experienced surge years—periods where requests rapidly double, driven by new discoveries or regulatory approvals in major markets. Keeping pace with these jumps means agile production planning and honest communication when lead times extend or constraints appear.

    Unlike inventory-based traders, we manage cycle planning directly, holding surplus lots for urgent demand or scheduling campaigns to optimize both capacity and cost efficiency. Clients who value transparency and direct supplier access find this arrangement reduces risk. They see us as partners not only for the compound itself, but for the technical advice that allows their projects to progress smoothly, even as commercial realities shift.

    Quality Built from End-to-End Experience

    Every production campaign reinforces the importance of start-to-finish quality. Reliable analysis—not just at final release, but at each stage—minimizes surprises and supports regulatory documentation downstream. Never a day goes by without some fresh challenge: a lot whose initial IR fingerprint flattens unexpectedly, or an anomalous spot on the HPLC trace. These results prompt real-time investigations, cross-checks against retained reference samples, and, if needed, a full process audit.

    Such rigor grows from lived experience; shortcuts eventually cause project delays or regulatory flags. Over the years, we have learned that success comes from keeping lines of communication open, with honest reporting on both setbacks and achievements. Our team members revisit customer feedback, revalidate control points, and embrace continuous training—looking not at problems as blame, but as prompts for deeper understanding and more robust future supply.

    Customization and Technical Collaboration

    Some partners bring challenging requests: specialized polymorphs, non-standard particle sizes for suspension applications, or additional stability testing before bulk shipment. By controlling the process ourselves, we can adapt as needed—running pilot batches for formulation trials, or incorporating alternative drying steps to provide a product more compatible with advanced delivery systems.

    Collaborative dialogue fuels real progress. We have long worked side-by-side with customers’ process engineers, formulation chemists, and regulatory officers to tune our manufacturing process to match each project’s requirements. Shared problem-solving has resulted in co-developed SOPs, sample exchanges, and, often, the generation of new specifications that set benchmarks for the broader sector.

    The Long-Term View: Sustainable Progress

    Sustainable manufacturing rarely comes from isolated actions; it requires commitment from sourcing, through synthesis, to final delivery. In producing 2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid, we constantly review reaction routes for opportunities to reduce waste, select renewable reagents, and further cut energy use. By coordinating with raw material suppliers aligned with our own standards, we help build a supply chain that respects both client expectations and environmental realities.

    Routine environmental audits measure not just emissions and residue, but also water use and packaging recovery rates. Partners value this detailed approach; it translates into shared sustainability reports, lower audit risk, and positive recognition in their own responsible sourcing programs. These are tangible improvements that become visible throughout the value chain.

    Final Thoughts: Why Direct Experience Matters

    Producing and supplying 2-[(4,6-Dimethoxypyrimidin-2-yl)thio]benzoic acid at scale is a continual learning process. It brings technical challenges, teamwork, and the requirement to respond rapidly to both opportunities and setbacks. Quality does not arise from generic promises but from hands-on synthesis, thorough quality assurance, and honest feedback between supplier and end user.

    Working in-house, we see up close how one lot’s consistency can make a downstream process straightforward—or, if mishandled, create costly delays. Our value rests in shared knowledge, technical skill, careful listening, and constant adaptation. This is the practical reality behind each batch, shipment, and technical data sheet that reaches the customer. In the end, strong supply does more than deliver a compound: it clears the way for scientific discovery, market expansion, and continuous innovation in some of the most challenging markets on earth.