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(2-Carbamoylphenoxy)Acetic Acid

    • Product Name (2-Carbamoylphenoxy)Acetic Acid
    • Alias fenfuram
    • Einecs 261-379-6
    • 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

    566880

    Chemicalname (2-Carbamoylphenoxy)Acetic Acid
    Molecularformula C9H9NO4
    Molecularweight 195.18 g/mol
    Casnumber 2418-77-7
    Appearance White to off-white solid
    Meltingpoint 155-160°C
    Solubility Soluble in water, DMSO, and methanol
    Boilingpoint Decomposes before boiling
    Smiles C1=CC=C(C(=C1)C(=O)N)OCC(=O)O
    Inchi InChI=1S/C9H9NO4/c10-8(11)6-2-1-3-7(5-6)14-4-9(12)13/h1-3,5H,4H2,(H2,10,11)(H,12,13)
    Storageconditions Store in a cool, dry place, tightly closed container

    As an accredited (2-Carbamoylphenoxy)Acetic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 100g (2-Carbamoylphenoxy)acetic acid is packaged in a sealed, amber glass bottle with a tamper-evident cap and labeled.
    Shipping (2-Carbamoylphenoxy)acetic acid is shipped in tightly sealed containers to prevent moisture absorption and contamination. It is packaged according to chemical safety regulations, labeled clearly, and typically dispatched as a non-hazardous material. Shipping conditions may include protection from direct sunlight and temperature extremes. Appropriate documentation accompanies domestic or international shipments.
    Storage Store (2-Carbamoylphenoxy)acetic acid in a tightly sealed container, protected from moisture and light, in a cool, dry, and well-ventilated area. Keep away from incompatible substances such as strong oxidizing agents. Ensure good laboratory practices are followed, including proper labeling and restricted access to trained personnel. Avoid exposure to heat or direct sunlight to maintain stability and prevent degradation.
    Application of (2-Carbamoylphenoxy)Acetic Acid

    Applications of (2-Carbamoylphenoxy)Acetic Acid in Industrial Manufacturing

    As a direct manufacturer of (2-Carbamoylphenoxy)acetic acid, we support multiple industrial sectors through supply of high-quality material produced under controlled conditions. This intermediate plays a key role in custom synthesis routes, regulated formulation, and advanced research-driven production environments across several downstream applications.

    1. Pharmaceutical Intermediate for API Synthesis

    The compound is widely used as an intermediate in the synthesis of active pharmaceutical ingredients. Many generic and specialty drug manufacturers integrate it into multi-step synthesis of molecules prescribed in metabolic, cardiovascular, and anti-inflammatory therapies. Our material supports stringent formulation and traceability requirements conforming to each manufacturer's DMF filing. During the process, careful monitoring of batch consistency and impurity profile, as well as reactivity under defined temperature and pH, is essential in the coupling, esterification, or amidation stage.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • European Pharmacopoeia (Ph. Eur.) monographs where intermediate use is referenced
    • US FDA 21 CFR Part 211 for finished pharmaceuticals (traceability in dossier)
    • ISO 9001:2015 Quality Management System for documentation and process control

    Typical usage ratio

    • 30–55% in specific stepwise reactions, depending on API yield target and process optimization
    • Adjustment based on stoichiometric balancing to minimize residuals in final API

    Downstream process integration

    • Incorporated during the stage of molecular backbone formation for APIs
    • Often subjected to subsequent cyclization, condensation, or hydrolysis steps on a multi-hundred liter reactor scale
    • Comprehensive QC of input and output for regulatory submission

    Final product types

    • Finished tablet and capsule APIs for regulated markets
    • Bulk APIs for contract manufacturing organizations (CMOs)
    • API intermediates for custom synthesis

    2. Agrochemical Synthesis for Herbicide Production

    Manufacturers of selective herbicides utilize this molecule as a key intermediate in synthesis of carboxylic acid derivatives and amide-linked products. Efficient process integration allows direct formation of herbicidal agents through carboxylic activation and coupling with amine partners. Our material supports controlled reaction conditions to ensure batch reproducibility and meets trace pesticide precursor content limits.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products (Agrochemical technical requirements)
    • ISO 17025 for analytical quality of pesticide intermediates
    • REACH Regulation (EC) No. 1907/2006 for registration and safety data

    Typical usage ratio

    • 25–40% depending on the desired concentration of target herbicidal agent
    • Fine-tuned by stoichiometry to control end-use product efficacy and regulatory compliance

    Downstream process integration

    • Reacted during early-stage synthesis of acid or ester functions
    • Processed in sealed reactors to limit exposure and maximize yield
    • QC for residual solvent and byproduct specifications prior to final formulation

    Final product types

    • Technical-grade herbicide actives
    • Pre-mixed liquid and dry herbicide formulations
    • Bulk intermediates for downstream blending

    3. Specialty Polymer Modifier in Advanced Materials

    This compound serves as a functionalizing agent in production of specialty polymers, introducing amide and carboxyl side chains for improved adhesion, flexibility, and chemical resistance. Polymer manufacturers leverage its reactivity to graft functional groups onto base materials, supporting high-performance coatings, engineering plastics, and resins for electronics encapsulation. Controlled addition ensures material reproducibility and compliance with strict impurity profiles.

    Industry compliance standards

    • ISO 9001:2015 for process validation and product traceability
    • RoHS Directive (EU) 2011/65/EU for restricted substance content in electronics
    • REACH Regulation (EC) No. 1907/2006 for polymer additives

    Typical usage ratio

    • 0.5–2% addition as a chain modifier or cross-linker relative to polymer backbone
    • Adjusted by desired mechanical and thermal property targets in final composite

    Downstream process integration

    • Mixed into the polymerization reactor at controlled temperature and agitation
    • Can also be grafted during melt compounding on twin-screw extruders
    • Post-integration analysis for gel content and functional group distribution

    Final product types

    • High-performance adhesives for automotive and aerospace
    • Electronics-grade encapsulation resins
    • Modified engineering plastics with improved chemical resistance

    4. Dye and Pigment Intermediate in Colorant Manufacturing

    In the specialty dye and pigment sector, this molecule acts as a precursor for synthesis of specific azo and anthraquinone dyes. Pigment producers use it to introduce targeted functional groups that enhance color fastness and water solubility across textile, paper, and ink applications. Integration requires precise temperature and pH regulation to achieve consistent shade and purity, coupled with in-process analytics to monitor formation of byproducts or residual intermediates.

    Industry compliance standards

    • OEKO-TEX Standard 100 for restricted amines in textile dyes
    • EN 71-3 (Toy Safety Directive) limits for heavy metals in pigments
    • ISO 14001 for environmental control in dye production

    Typical usage ratio

    • 10–25% as a coupling intermediate, varying by target chromophore structure and batch size
    • Determined by reaction kinetics and end-use brightness/fade resistance targets

    Downstream process integration

    • Added during core-coupling phase of dye synthesis with controlled agitation
    • Final pigment purification by recrystallization and filtration
    • In-process spectroscopic QC for hue, saturation, and byproduct content

    Final product types

    • Reactive dyes for cotton and synthetic textiles
    • Water-dispersible printing inks
    • High-stability pigments for plastics and coatings

    5. Fine Chemical Intermediate for Custom Synthesis

    Many fine chemical manufacturers depend on this raw material as a building block for unique low-volume compounds tailored for R&D and pilot-scale production. The main applications span flavor and fragrance synthesis, molecular probes for research, and specialty performance additives. Our controlled supply supports analytical traceability, and customers can specify impurity limits and documentation to meet their own QA and regulatory filing demands at project level.

    Industry compliance standards

    • ISO 9001:2015 for specialty chemical contract manufacturing
    • REACH Regulation (EC) No. 1907/2006 for notification of low-volume use
    • Customer-defined impurity and documentation protocols for project work

    Typical usage ratio

    • Variable: 5–60% depending on target molecule and scale (from gram to multi-kg batches)
    • Determined by custom process route and downstream coupling ratios

    Downstream process integration

    • Introduced at specific synthesis step as directed by customer-provided route
    • Reacts to form new scaffolds, functional groups, or intermediate side chains
    • Documentation for full batch traceability provided upon request

    Final product types

    • Research-grade reference compounds
    • Performance additives for lubricants or surface agents
    • Advanced intermediates for further development in pharmaceutical or agrochemical pipelines
    Free Quote

    Competitive (2-Carbamoylphenoxy)Acetic Acid prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    (2-Carbamoylphenoxy)Acetic Acid: Leveraging Purity and Consistency in Chemical Synthesis

    Understanding the Product from Our Laboratory Experience

    Manufacturing begins with respecting the molecules. Over decades, our technicians and engineers have worked directly with (2-Carbamoylphenoxy)acetic acid—CAS 2765-19-9—handling every batch from reaction flask to finished drum. We know first-hand the challenges facing formulators: unpredictable purity from inconsistent sourcing, limited traceability, or odd material behaviors that disrupt scaling up. No one appreciates a compound that delivers surprises during pilot or production.

    In our own practice, we synthesize (2-Carbamoylphenoxy)acetic acid in dedicated glass-lined reactors, tracking raw materials every step. Every lot receives an independent identity, supported by batch-level HPLC and NMR analysis. Our standard process yields a crystalline powder with an assay greater than 99%, and we publish every major impurity above 0.05% for full transparency. Technicians run both melting point and moisture tests on outgoing orders, because hydroscopic contaminants can throw off reaction outcomes in downstream applications.

    Physical Traits and Model

    We manufacture (2-Carbamoylphenoxy)acetic acid to a fine, free-flowing white or off-white powder. Particle size typically centers around 60–80 mesh, ensuring quick dispersion in most organic solvents or aqueous conditions. Over the years, we’ve found that tighter particle distributions prevent clumping and speed up dissolution, especially critical in time-sensitive blending or automated material handling systems.

    By controlling every variable from reagent grade inputs to purification conditions, our teams offer a standard model with at least 99% purity and a moisture content below 0.2%. Customers appreciate the consistency of these details because it saves troubleshooting later in development or scale-up. Bulk users who need larger formats can request custom pack sizes—our regular offerings run from 1 kg to 50 kg.

    Production Nuances that Set Quality Apart

    We never treat (2-Carbamoylphenoxy)acetic acid as a commodity. Years back, we discovered that marginal differences in solvent recovery temperatures during purification can introduce persistent byproducts. Ever since, our standard operating procedures log every distillation run and require dual oversight for batch filtration steps. Even small traces of certain halide or aromatic residues alter the performance of this chemical in many syntheses.

    Consultations with downstream users revealed that typical commercial lots sourced through commodity channels tend to fluctuate batch to batch—sometimes from off-gassing or improper drying, which can increase the risk of byproduct formation during esterification or coupling reactions. Our R&D chemists designed a multi-stage drying and screening workflow, including forced ventilation and parallel moisture checks, which allows for more reliable use in tightly specified syntheses.

    Applying (2-Carbamoylphenoxy)Acetic Acid Across Sectors

    This compound finds roles in fine chemical syntheses, agrochemical intermediates, and select pharmaceutical research areas. Whether being built into more complex aromatic frameworks, serving as a precursor for biologically active esters, or providing amide-linked functionalities, reliable performance matters at every stage.

    Synthetic chemists working in research settings frequently use our product in small batch trials focused on functional group protection or amide bond formation. They report fewer purification headaches, thanks to both the high purity and stable melting point around 168–172°C. In pilot plants and production lines, engineers depend on its consistent solubility and bulk material handling properties, which support straightforward scale-up with minimal process modification.

    Many agrochemical firms use (2-Carbamoylphenoxy)acetic acid in step-growth processes, forming key intermediates for innovative herbicides and fungicides. As new regulatory frameworks demand ultra-low impurity thresholds in final products, our clean profile helps meet these requirements. The downstream impacts manifest in less burden on final purification, shorter processing cycles, and more robust quality dossiers at regulatory submission.

    Differences That Matter: Experience from the Manufacturer’s Perspective

    Sourcing discussions in the chemical sector often focus on cost or immediate availability, losing sight of longer-term process stability and total cost of quality. We’ve seen customers turn to us after lower-priced imports failed to meet specification or introduced costly shutdowns. The difference comes down to consistency and the willingness to share analytical data from every batch—values that only originate from a manufacturer with skin in the game, not a purely commercial distributor.

    Unlike many suppliers, we offer original chromatograms and impurity profiles upon request, thanks to fully validated analytical methods developed in-house. This transparency prevents problems that can arise from the unknown presence of structurally related byproducts—these can poison catalysts or affect downstream biological profiles. Over many years, clients reported greater process yields and fewer deviations using our material, even in high-throughput or automated systems.

    Another facet that often escapes notice is the adaptability in production methods. We can tune the level of certain trace metals or customize filtration to reduce specific structural analogs, based on end-use applications. We’re not locked into a single process; instead, our teams can adapt based on customer process feedback. This interplay underlies the difference between off-the-shelf chemicals and true manufacturing partnership.

    Gains from Tight Process Control

    Chemistry rewards precision. We keep every batch under direct oversight from senior process engineers, who actively review both environmental records and live reaction parameters. Temperatures, pH, and mixing rates come from documented, replicable SOPs—not last-minute operator judgment. This approach means our product quality remains stable through warm-season humidity swings or raw material changes, reducing variables for everyone downstream.

    Periodically, we invite external partners and client chemists to review our full manufacturing cycle. They see up close how raw input traceability and on-site quality labs shape every kilogram produced. Unlike general commodity players, we design cleaning validation protocols to ensure no cross-contamination, maintaining process integrity for customers in regulated and non-regulated sectors alike.

    Why Reliable (2-Carbamoylphenoxy)Acetic Acid Benefits Advanced Synthesis

    Building blocks like (2-Carbamoylphenoxy)acetic acid matter much more than their direct material cost. Variability in reactivity, moisture content, or untracked secondary components can cascade into costly fixes further down the process chain. Over time, we’ve documented that higher up-front control translates into higher overall conversion rates, more predictable crystallization, and easier downstream isolation of target molecules.

    We listen to firsthand stories from teams using our material in new reaction types, like green chemistry protocols or enzyme-based coupling. Their feedback shaped improvements in both our drying methods and container choices. Today, shipments arrive in vented, moisture-controlled drums or lined bulk sacks, which prevent localized clumping and static buildup. Customers see the results in more reproducible yields.

    Continuous Improvement: Customer Collaboration at Every Stage

    Long-term clients often bring us unique process challenges, which require tailored approaches. For example, a major pharmaceutical client recently shared process bottlenecks stemming from minor levels of residual solvents in purchased starting materials. We responded by implementing a dual-stage vacuum drying protocol for (2-Carbamoylphenoxy)acetic acid. Since introducing this step, customer timelines shortened, and specifications became easier for them to meet.

    Custom requests don’t disrupt our schedule. Over years and batches, our standardization enables minor changes—whether that’s packaging formats for automated systems, or bespoke analytics for regulatory filings. We view every client request as a source of process knowledge, often informing innovations shared across our product range.

    Our chemical engineers track industry trends and publish technical white papers on advances in aromatic ether synthesis or improvements in amide coupling. These aren’t just marketing materials, but reflections of the daily practice and shared learning inside our labs. The lessons learned from hands-on production directly inform how we address customer issues, whether that involves suggestions on alternative solvents for enhanced solubility, or strategies for tighter impurity profiling.

    Challenges and Solutions: Managing the Entire Lifecycle

    Any manufacturer faces unexpected hiccups—supply chain disruptions, evolving purity standards, or new regulations on trace elements. We’ve built redundancy into key process steps to manage these uncertainties. Every critical input arrives with full certificates of origin, and all in-process documentation lives in secure databases, enabling total recall if ever needed.

    More than once, isolated changes in upstream suppliers produced anomalies that would have slipped through less rigorous testing. Our QA teams, using multi-modal analytics, identify these issues before the finished compound ever reaches a customer. Traceability has saved both us and our clients from costly interruptions.

    We take process sustainability seriously. Solvent recovery, waste stream management, and emission monitoring receive continual investment. These steps keep both our workers and downstream customers safer—and help our industry maintain a positive profile with regulators and the public. We publish key environmental impact data, aligning with green chemistry initiatives that matter increasingly in competitive markets.

    Direct Communication and Technical Support

    We value technical dialogue with every user. Project chemists regularly stop by our offices or call into the lab for support addressing tough reaction bottlenecks—whether caused by unusual solubility profiles or issues with scale-up. Our team doesn’t just ship out product and move on: we return to the bench, try new protocols, and share both successes and failures.

    Clients sometimes need rapid turnaround for custom documentation, extended analytical runs, or modified packaging requirements to suit automated powder handling systems. We stay flexible, understanding that the tempo of process research and production rarely aligns with textbook lead times. In the end, our role as a true manufacturer shows in our openness to experiment and problem-solve, day in and day out.

    The Human Side of Chemical Manufacturing

    Plant floors and R&D benches look similar everywhere, but the attention of the people behind the process sets outcomes apart. Our operators call attention to any anomaly—whether subtle color changes or unusual flow rates—before it leads to a downstream issue. This culture of attention and accountability attracts process engineers and QC specialists driven by pride in delivering the right product, not just moving another shipment out the door.

    Technicians routinely collaborate to refine handling practices, share process improvements, and cross-verify analytical data for every outgoing order. Their deep knowledge of (2-Carbamoylphenoxy)acetic acid’s quirks supports applications ranging from standard phase-transfer catalysis to novel pharmaceutical research with high-consequence purity needs.

    Looking Forward: Commitment to Reliability and Quality Enhancement

    Demand for traceable, high-purity specialty chemicals grows as industries advance. We expect customers will increasingly seek not just purity, but strong documentation, prompt responses, and direct problem-solving partnership from their suppliers. This expectation aligns with our company philosophy: hands-on control, transparent analytics, and long-standing investment in technical excellence.

    Innovation, in the chemical industry, often hinges on the basics—tight processes, attentive people, and a commitment to transparency. We welcome the challenge of higher standards in quality, documentation, and safety, and see these as opportunities to deepen the trust our partners place in us.

    We encourage all potential and current users of (2-Carbamoylphenoxy)acetic acid to reach out—share process challenges, request specific documentation, or suggest improvements. True chemical manufacturing is a dialogue, and we look forward to shaping both product and practice together, batch after batch.