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2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid

    • Product Name 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid
    • Alias MCOP
    • Einecs EINECS 431-030-2
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    460956

    Productname 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid
    Molecularformula C7H8ClNO6
    Molecularweight 237.60 g/mol
    Casnumber 102342-03-6
    Appearance White to off-white solid
    Solubility Slightly soluble in water
    Purity Typically ≥ 98%
    Storagetemperature 2-8°C

    As an accredited 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging is a sealed amber glass bottle containing 25 grams of 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid, labeled with hazard and handling instructions.
    Shipping 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid should be shipped in tightly sealed containers under cool, dry conditions. It must be protected from light and moisture, and transported in compliance with local, national, and international regulations. Proper labeling and documentation, including handling and hazard information, are required to ensure safe transit of this chemical.
    Storage 2-Methoxycarbonylmethoxyimino-4-chloro-3-oxobutyric acid should be stored in a tightly sealed container, protected from light, moisture, and incompatible substances such as strong oxidizing agents. Store it in a cool, dry, and well-ventilated area, preferably at room temperature or as specified by the manufacturer. Proper chemical labeling and appropriate personal protective equipment (PPE) are recommended when handling.
    Application of 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid

    Applications of 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid in Industrial Manufacturing

    As a manufacturer specializing in advanced intermediates, we supply 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid to downstream industries that demand stringent quality control and functional integration. This material supports high-performance synthesis where molecular precision and regulatory compliance are critical to safety, efficiency, and end-use consistency. Below are the main verified industrial application scenarios, with each section detailing usage practice, industry standards, technical entry points, and real-world product endpoints.

    1. Agrochemical Active Ingredient Synthesis

    This intermediate is routinely incorporated during the synthesis of modern herbicidal and fungicidal ingredients within the crop protection sector. It acts as a platform for building key oxime ether and pyrimidinone structures demanded by high-selectivity agrochemical actives. Formulators carefully adjust addition rates according to the target molecular architecture, with the raw material typically introduced at condensation or cyclization stages. Both the identity and purity of intermediates impact the safety data set for regulatory dossiers and registration.

    Industry compliance standards

    • ISO 9001:2015 Quality Management for chemical synthesis
    • FAO/WHO Specification for Pesticide Active Ingredients
    • REACH Regulation (EC No 1907/2006, Title II-Title IV for substance registrations)
    • BPR (EU Biocidal Products Regulation) when destined for biocidal formulation integrations

    Typical usage ratio

    • 0.8–1.2 molar equivalents relative to core scaffolding reagents; subject to the desired yield and conversion for the target active

    Downstream process integration

    • Charged during initial condensation or as a coupling intermediate under controlled-temperature batch reactors (60–90°C); solvents and acid scavengers are selected based on downstream requirements for impurity profiles

    Final product types

    • Pyrimidinone-based selective herbicide actives
    • Oxime ether fungicides for cereal and fruits
    • Premix technical concentrates for field formulation

    2. Pharmaceutical Intermediate for Beta-Lactam Antibiotics

    Pharmaceutical manufacturers incorporate this compound as a keto-oxime intermediate for constructing beta-lactam core or non-beta-lactam scaffolds in advanced antibiotics. Critical to its adoption are strict control over trace impurities and the ability to participate in regioselective acylation or ring closure reactions. It often links to a multi-step sequence under cGMP facilities, where traceability and reproducibility directly affect API quality filings, including drug master file (DMF) submissions.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP-NF (United States Pharmacopeia–National Formulary) for precursor identity on API synthesis chain
    • EDQM (European Directorate for the Quality of Medicines) suitability for CEP files
    • CFR Title 21 Part 211 for finished pharmaceutical manufacturing

    Typical usage ratio

    • 20–30% w/w relative to other keto intermediates within stepwise reactions; the exact input is based on reaction stoichiometry and scale-up results validated by pilot batches

    Downstream process integration

    • Fed into acylation or ring-closing reactors after solvent adjustment and pH control; ultra-fine filtration may follow to meet pyrogen-free requirements before entering API coupling phases

    Final product types

    • Semi-synthetic beta-lactam and non-beta-lactam antibiotic APIs
    • Parenteral bulk actives for sterile injectables
    • Oral dosage form precursor intermediates

    3. Chemical Synthesis Building Block for Fine Chemicals

    Chemical manufacturers leveraging advanced fine chemical synthesis routes use this material as a reactive acylating and nitrile-forming agent. The flexible electron distribution of the molecule facilitates highly selective ring transformations and functional group insertions, required in specialty pigments and complex chiral ligand production. This building block enters process lines under high-purity conditions, with focus on minimizing isomeric by-products to enable efficient downstream purification, directly influencing batch yields and cost management.

    Industry compliance standards

    • ISO 14001:2015 for Environmental Management of chemical operations
    • Manufacturing site inspections under national chemical producer regulations (e.g., China GHS, US OSHA Process Safety Management)
    • Product stewardship as per ICCA Responsible Care Initiative
    • EU Chemical Agents Directive 98/24/EC for worker exposure control

    Typical usage ratio

    • 5–15% w/w of total input in target transformation steps; ratio is fixed by downstream crystallization recovery and color index endpoints

    Downstream process integration

    • Metered into closed reactors during ring-closure, nitrile insertion, or selective reduction steps; the precise dosing relies on in-line GC monitoring

    Final product types

    • Specialty organic pigments for plastics and coatings
    • Chiral ligands for catalytic asymmetric synthesis
    • Photoinitiator intermediates for UV-curable resins

    4. Intermediate in Advanced Polymer Additive Manufacturing

    Producers of high-performance polymer additives incorporate this compound as an intermediate to prepare molecular fragments that enhance thermal stability or anti-yellowing properties in engineering thermoplastics. It enters process routes where maintaining the integrity of sensitive oxime and carboxy groups is necessary to achieve downstream additive-matrix compatibility. Both the batch traceability and compliance with end-use plastics regulatory frameworks are critical for the acceptance of finished goods in demanding industrial applications.

    Industry compliance standards

    • ISO 9001:2015 Quality Management for polymer intermediates
    • REACH Annex XIV/Annex XVII substance restrictions for polymer additives
    • RoHS 3 (EU Directive 2015/863) for electronic and electrical end-use compatibility
    • FDA 21CFR177 (for food-contact plastics, if applicable)

    Typical usage ratio

    • 0.3–3.0% w/w depending on polymer type and additive loading targets; lower in copolymer blends, higher in heat-aging resistant applications

    Downstream process integration

    • Introduced during additive precursor synthesis, often prior to extrusion compounding of masterbatches; monitored for thermal decomposition and color stability during melt processing

    Final product types

    • Anti-yellowing and anti-oxidation masterbatches
    • Polymer stabilizer additives for polyamide and polyester engineering plastics
    • Composite materials for automotive and electrical enclosures
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    Certification & Compliance
    More Introduction

    2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid: Real-World Observations From the Factory Floor

    Our Experience Crafting 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid

    As chemists dedicated to the backbone of agrochemical innovation, we recognize the constant call for reliable intermediates. In our daily operation, few compounds attract as much careful attention as 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid. Each batch we produce comes from years of refining our process design, raw material sourcing, and environmental management. Our lab benches have seen countless adjustments to solvent ratios and purification methods, aimed at meeting the demands of direct end users—often formulation scientists and R&D experts chasing superior synthesis routes.

    In our workshops, we mix, distill, filter, and crystallize with close observation. Every shift, operators make decisions based on the reaction’s pace and the quality of reagents. It takes a trained hand and an experienced eye to judge optimal temperature and pressure ranges. Not all facilities can sustain these critical process conditions or track impurities so closely. We feel a responsibility to reduce batch-to-batch variation, minimize waste, and prevent contamination in a way that simply isn’t possible at sites focused on quick turnaround and small volume custom work.

    Understanding the Model and Specifications

    Every bag and drum labeled 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid from our production line tells a story about consistency and attention to detail. Over many cycles, our engineers have maintained strict controls over the physical and chemical profile. Material pours as a light yellow to off-white powder, reflecting high purity and an absence of residual by-products that could complicate downstream synthesis. We measure contaminants and residual solvents using validated analytical methods. Moisture content always sits below one percent since anhydrous conditions matter for further transformations.

    Using gas chromatography and high-performance liquid chromatography, our QC laboratory documents purity at scale—always targeting values upwards of 98 percent, knowing customers deserve clear data for compatibility decisions. Clients do not have to ask for typical particle size or solubility in the most common organic solvents. We learned long ago which ranges suit major agrochemical reactions, and our process maintains these specifications batch after batch on a multi-ton scale.

    Demand often includes special packaging or custom volumetric blends, especially where safety or shelf life depends on container migration or exposure. By adapting our filling and sealing protocols, our team preserves both stability and integrity during transport—whether shipments travel across town or continents by sea.

    Practical Usage: How Real Producers Apply This Intermediate

    People frequently seek out 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid as a key building block for a family of selective herbicides. In our workflow, it rarely stands alone. Instead, production schedules see it involved in multiple reaction stages—through condensation, cyclization, or amidation steps that underpin patented active ingredient structures. Chemists in our partner organizations don’t want uncertainty at these stages. Unwanted traces, water, or unidentified organics at this step will echo down the line, increasing purification costs or reducing yield. As such, our specifications aim beyond simple purity—they support predictable reactivity.

    In some synthesis routes, customers react our intermediate with nitrogenous bases or introduce coupling agents under controlled-temperature environments. Even minor shifts in melting point or trace impurities connected to process drift can interfere with downstream protection or functionalization. Our own synthetic chemists have faced the pain of off-specification intermediates, leading to yield drops, lost time, and regulatory bottlenecks. We emphasize root cause analysis and feedback with our customers after every campaign, learning what truly matters for reactivity, crystallization, and safe handling at the bench scale and in flow chemistry set-ups.

    Scale is not just a number for us; with larger volume contracts, we pay extra attention to the sausage-making, investing in cleaning protocols, vessel liners, and process analytics. There’s a culture among our operators: don’t let the little faults go unchecked. Our teams have modified crystalline stabilization agents, tested different drying cycles, and re-optimized anti-static measures to keep powder flow reliable and dust to a minimum—especially important in modern semi-automated formulation lines.

    Differences From Other Intermediates: Lessons From Our Portfolio

    Comparison to other intermediates isn’t just a matter of catalog pages or chemical names. From our perspective as manufacturers, common differences fall into process safety, impurity profiles, reactivity, and storage demands. While many intermediates share carboxyl or keto groups, the combination of the methoxycarbonylmethoxyimino moiety with a chloro- and oxo-substituted butyric acid gives this compound a unique reactivity fingerprint.

    Compounds lacking the oxime and chloro substituents in this specific arrangement behave quite differently under nucleophilic substitution, ring closure, or coupling conditions. For example, using simple esterified carboxylic acids or unsubstituted oxime intermediates often results in sluggish reactions or side-product formation, forcing the downstream user to adjust reaction times and purification strategies. Experience in our pilot plant has taught us that minor tweaks in molecular structure produce macro differences in yield and selectivity at ton-scale output. The unique substitution pattern here streamlines synthetic design, letting users follow more direct and efficient conversion routes, which matters for commercial viability.

    Storage and stability set this acid apart from some more reactive or hydrolytically sensitive analogs. Our finished material resists moisture uptake and stays non-hygroscopic under normal industrial conditions, so it doesn’t require the highest-end barrier packaging. In two decades of year-round shipping across several climate zones, we’ve seen remarkably low rates of caking, clumping, or breakdown. These practical details, easily overlooked by third-party handlers, make the difference between wasted inventory and on-time in-plant supply.

    Comparing our process to other manufacturers, differences show up in both input sourcing and downstream treatment. Some sites rely on recycled solvents without thorough purification, generating more colored or odorous by-products that complicate environmental management and downstream use. Our insistence on high-purity solvents and closed-loop control limits both batch contamination and downstream neutralization steps. At the end of each campaign, we compare analytically what enters and leaves the process, closing gaps and identifying sources of unwanted by-products.

    Production Challenges: Lessons Learned and Ongoing Solutions

    The journey to reliable manufacturing for this intermediate came with lessons and setbacks. Early campaigns met temperature-dependent side reactions that complicated isolation. New hires sometimes need months to develop the judgment for balancing yield against safety margins. There’s considerable skill in adjusting distillation and drying to avoid decomposition, especially during summer humidity spikes or winter cold snaps. Each seasonal shift teaches us something new.

    Quality bottlenecks can stem from upstream variability in raw starting materials. We monitor our suppliers using in-house analytics, running capacity checks and random audits. Should a batch hint at inconsistent performance in our in-process tests, we don’t wait to quarantine it—and, if necessary, switch to standby contracts with trusted long-term partners. Supply chain continuity never comes free; we build redundancy and buffer stocks by reflecting on last year’s lessons, not just hoping for the best.

    On the environmental front, the by-products from this chemistry demand thoughtful management. Wastewater treatment, emission controls, and solvent reuse call for balanced investment in infrastructure and process redesign. Our site engineers have trialed closed-loop solvent recovery, tailored neutralization, and water reuse instead of older disposal methods. That journey remains ongoing. We share our emissions reduction data with local regulators and industry groups, building a record beyond claims in marketing brochures. This compound class pushes us to act on both compliance and broader stewardship.

    Worker safety extends beyond equipment. Everyone on our floor handles full PPE, but with certain intermediates, lingering dust or aerosols pose more risk than obvious bulk spills. Over the years, we’ve installed local exhaust and adjusted cleaning schedules based on real exposure records, not what the handbook says. A safe shop floor produces better material, year after year.

    Customer Feedback: Learning With Formulators and Researchers

    We hear stories from scientists who struggled with poorly sourced intermediate, forcing them into repeated recrystallization or additional clean-up that burned valuable project time. Pharmaceutical and agrochemical groups using our material have reported sharper and more reproducible yields, and fewer downstream headaches from off-spec shipments. They tell us that our in-process documentation and batch-specific analysis gives them confidence beyond what they see from trading houses or bottlers working off generic stock.

    Our technical support isn’t abstract. Engineers and chemists share contact at every campaign’s start, trading raw data and process advice in real time. Simple honest dialogue with users helps fine-tune parameters—temperature profiles, reagent ratios, mixing rates—based not just on theory, but on years of what actually works. Each failed campaign teaches both ends of the supply chain, so we’re honest about our real-world challenges. Our best partners are those who invite us into their troubleshooting, not just to point fingers but to talk about root causes and next steps.

    We recognize that the information available on site about this acid tends to be limited—open literature rarely covers the practical problems found at thousand-liter scale. Our site scientists have published some process notes and support ongoing benchmarking against emerging methods, aiming to give our customers the real details behind reliable scale-up. Whenever new regulatory standards shift, or downstream process needs change, we adapt our process targets before problems snowball in the field.

    Working With Regulatory Shifts and Future Demands

    Regulations continue to evolve, especially concerning environmental impact and permitted residue levels on final products. Our on-site compliance team tracks draft guidance and stays ahead of deadline pressure. Reformulating the process in response to new allowable limits or permitted solvents often means real investment and downtime for upgrades. We make those choices in advance, weighing long-term trust in customer relationships above cheap shortcuts. Compliance costs less than recalls or delayed market launches, something learned both in our plant and from our partners' experience.

    Both new and mature markets demand traceability and documentation that follow intermediate chemicals from first reaction to the last shipment. We keep lot-level records, integrating everything from barcoding to electronic batch data linked to our central quality management system. This helps our partners satisfy audits, trace deviations, and secure third-party certifications—whether for ISO standards or Good Manufacturing Practices. Internal validation trials spot issues before they affect broader supply, supporting reliable planning for seasonal production campaigns.

    Looking toward the future, we expect more customers to ask for versions of this intermediate with even tighter control of metal residues, residual solvents, and potentially detectable genotoxic impurities. Our process redesign teams are working on cleaner catalysts and new purification benches to respond to these conversations before they force widespread change. We see it as our duty, not just a passing expectation.

    Technical Support and Ongoing Collaboration

    The fastest projects in this industry link suppliers and users from the earliest development phase. We make ourselves available for joint troubleshooting and experiment with process optimization at both bench and industrial scale. Our support team doesn’t route users through endless paperwork—answering questions directly, with chemists who have run, scaled, and fixed the actual reactions in question.

    Over the years, our collaborations uncovered not just shared problems but unexpected solutions. Tailored drying times, alternative crystallization solvents, and even minor tweaks in agitation speed can bump overall yields and simplify production—these aren’t laboratory curiosities, but the details that define margin and regulatory acceptance. Honest reporting of process incidents and ongoing improvement cycles shape our workflow, instead of settling for “good enough.”

    As external research advances, some partners request modifications—alternative counter-ions, blended intermediates, or customized particle morphology. Our team responds, drawing on internal data and hands-on testing to set reasonable expectations for feasibility, timeline, and risks. We don’t treat every request as an upsell or custom order; real partnership comes from shared risk-taking and long-term investment in practical outcomes.

    What Sets True Manufacturers Apart

    Direct manufacturing delivers advantages traders or pure distributors can’t provide. Our full control over supply and production insulates customers from abrupt shortages, inconsistent documentation, and shipment delays that undermine project timelines. This means fewer surprises, fewer interruptions, and a clearer picture of what the next batch will deliver. Rather than marketing claims, this reputation comes from customer feedback and the operational stability visible in our daily routines.

    Full disclosure on batch data, change logging, performance history, and troubleshooting reports gives users unmatched transparency. We see ourselves as stakeholders in our customers' success, not just suppliers. Progress for both sides comes from facing facts, owning shortcomings, and building confidence with every delivery.

    Working within a manufacturing mindset, every team member—from the initial R&D chemist to the bulk-loading operator—owns the output of our process. We actively review every campaign for missed targets, lessons learned, and roadblocks overcome, giving ourselves and our partners the confidence that synthetic work never happens in a vacuum.

    Summary Observations From Inside the Factory

    Thirty campaigns in, 2-Methoxycarbonylmethoxyimino-4-Chloro-3-Oxobutyric Acid has taught us that process rigor, honest collaboration, and continuous learning yield both better product and better customer relationships. The compound may read like just another line in a chemical directory, but it proves itself daily as a linchpin for reliable synthesis, safety, and process economy. By centering real-world experience, detailed quality control, and a service ethic before transactions, we aim to deliver more than a product—a dependable tool in the hands of those building tomorrow’s molecules.