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Dimethyl 2-Oxoglutarate

    • Product Name Dimethyl 2-Oxoglutarate
    • Alias Dimethyl α-Ketoglutarate
    • Einecs 224-218-9
    • 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

    296076

    Product Name Dimethyl 2-Oxoglutarate
    Molecular Formula C7H10O5
    Molecular Weight 174.15 g/mol
    Cas Number 518-20-7
    Appearance Colorless to pale yellow liquid
    Boiling Point 120-122 °C at 14 mmHg
    Melting Point -7 °C
    Density 1.23 g/cm³
    Solubility Soluble in organic solvents like ethanol and ether
    Refractive Index n20/D 1.437
    Flash Point 112 °C
    Purity Typically ≥98%
    Storage Temperature Store at 2-8 °C
    Synonyms Dimethyl alpha-ketoglutarate

    As an accredited Dimethyl 2-Oxoglutarate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Dimethyl 2-Oxoglutarate, 25g, is packaged in an amber glass bottle with a secure screw cap and tamper-evident seal.
    Shipping Dimethyl 2-Oxoglutarate is shipped in tightly sealed containers to prevent moisture ingress and contamination. It is typically transported as a liquid under ambient conditions unless otherwise specified. Packaging complies with chemical safety and regulatory standards. Handle with care, avoiding direct contact and inhalation. Shipping documents include safety and hazard information.
    Storage Dimethyl 2-Oxoglutarate should be stored in a cool, dry, well-ventilated area, away from direct sunlight and incompatible materials such as strong oxidizing agents. Keep the container tightly closed when not in use. Store at room temperature, avoiding excessive heat or freezing. Use proper labeling and secondary containment to prevent spills and ensure safe handling.
    Application of Dimethyl 2-Oxoglutarate

    Applications of Dimethyl 2-Oxoglutarate in Industrial Manufacturing

    Dimethyl 2-oxoglutarate plays a significant role as an advanced intermediate across several specialized industrial manufacturing sectors. Drawing on our direct production expertise, we support global markets with consistent quality and supply. Below, you will find key application scenarios, technical integration details, industry standards, and end-use product segments.

    1. Pharmaceutical Active Ingredient Synthesis

    Dimethyl 2-oxoglutarate is widely used in the pharmaceutical industry as an advanced building block for the synthesis of certain active pharmaceutical ingredients (APIs), especially intermediates in anti-tumor, anti-viral, and metabolic regulation drugs. Chemical developers rely on its molecular structure for constructing complex heterocycles and alpha-keto acid derivatives. Accurate control of purity and reaction conditions is essential, especially in large-scale cGMP manufacturing and pilot plant operations.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP–NF, Ph. Eur., JP reference requirements for impurities and residual solvents
    • FDA 21 CFR Part 210/211 for finished pharmaceuticals
    • EU Regulation (EC) No 1907/2006 (REACH Registration)

    Typical usage ratio

    • 5–25% molar ratio in step-wise condensation or alkylation reactions, with adjustment based on target compound structure and reaction yield optimization.

    Downstream process integration

    • Direct addition in stage one synthesis as an alpha-keto intermediate.
    • Integration into coupling or ring-closure steps for heterocycle synthesis.
    • Purification and isolation steps controlled under GMP environment.

    Final product types

    • Anti-cancer compounds (e.g., oxoglutarate-based kinase inhibitors)
    • Antiviral molecules
    • Amino acid analog intermediates
    • Metabolic disorder APIs

    2. Agrochemical Intermediate Manufacturing

    Manufacturers in the agrochemical sector employ this compound as a key precursor in synthesizing functionalized heterocyclic structures used in selective herbicides, plant growth regulators, and pesticide active agents. Controlled conversion rates, impurity profile management, and precise process flow tracking remain central to matching crop protection regulation needs worldwide.

    Industry compliance standards

    • FAO/WHO Specifications and Evaluations for Plant Protection Products
    • ISO 9001-certified process control
    • EU Directive 91/414/EEC (Plant Protection Products)
    • REACH Annex III for environmental and safety assessment

    Typical usage ratio

    • 10–35% by mole in precursor formation, with further dilution or concentration depending on downstream chlorination, amination, or esterification requirements.

    Downstream process integration

    • Charged in the early feed of multi-step synthesis for N-heterocyclic ring systems.
    • Adjustment of solvent system during scale-up to maintain yield and minimize by-products.
    • Followed by in-line quality assurance for process validation batches.

    Final product types

    • Selective herbicide actives
    • Plant growth regulator intermediates
    • Specialized insecticide backbone compounds
    • Novel fungicide candidate molecules

    3. Specialty Polymer Additives and Monomers

    In specialty polymer synthesis, chemists use dimethyl 2-oxoglutarate in high-performance resin production and advanced copolymer design. It enables functional group incorporation for heat-resistant, UV-stable, or biodegradable material grades. The material’s reactivity allows novel copolymerization schemes in precision manufacturing environments, with emphasis on regulatory compliance for indirect food contact and electrical insulation uses.

    Industry compliance standards

    • RoHS Directive 2011/65/EU for polymeric materials
    • FDA 21 CFR 177.2600 (Polymers in Food Contact Applications)
    • UL 94 flammability standard for polymeric parts
    • EN 60216 for polymer insulation testing

    Typical usage ratio

    • 2–8% by weight in reactive extrusion or batch copolymerization, dependent on required functional group density and property specifications.

    Downstream process integration

    • Added at monomer blend stage before polymerization initiation.
    • Can be grafted onto backbone during melt processing or solution blending.
    • Process includes real-time monitoring of conversion and viscosity profiles.

    Final product types

    • High-performance engineering plastics
    • Photostabilized resin systems
    • Specialty biodegradable copolymers
    • Polymer-based insulation sheets

    4. Fine Chemical and Flavor Synthesis

    This compound serves as a selective precursor in the fine chemicals industry, notably in the manufacturing of certain aroma chemicals as well as in specialty surfactant synthesis. Reliable ester hydrolysis and transamination make it useful for constructing aliphatic and cyclic esters found in complex flavor formulations, requiring tight control over batch consistency to satisfy food-grade regulatory audits and analytical certifications.

    Industry compliance standards

    • FCC Food Chemicals Codex regulations
    • EU Regulation (EC) No 1334/2008 on flavorings
    • US FDA 21 CFR 172 – Food Additives Permitted in Food for Human Consumption
    • ISO 22000 Food Safety Management System

    Typical usage ratio

    • 1–5% by mass relative to primary alcohol or amine reactants, optimized for target organoleptic profile and regulatory thresholds on residuals.

    Downstream process integration

    • Selective esterification or amidation step following distillation of base volatiles.
    • Removal of trace impurities by short-path distillation or preparative chromatography.
    • Validated batch sampling and documentation for food-grade lot release.

    Final product types

    • Complex fruit or dairy-derived flavorings
    • Aliphatic and cyclic esters for beverage or confectionery applications
    • Surfactant intermediate blends for food emulsifiers
    • Fragrance precursor components
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    Certification & Compliance
    More Introduction

    Dimethyl 2-Oxoglutarate: Advancing Chemical Synthesis with Precision

    Direct From the Manufacturer—A Practical Introduction

    Every day in our facility, we witness firsthand the value Dimethyl 2-Oxoglutarate brings to chemists and formulators across industries. This compound—model #DM2OG-99—is more than just a line item in a lab inventory. We manufacture it with a clear purpose: to empower researchers, pharmaceutical developers, and fine chemical producers who demand purity, reliability, and performance in every reaction.

    Purity at the Core of Performance

    Throughout our years sourcing and producing esters, nothing frustrates a chemist more than variability in composition. That’s why we zero in on analytical precision with every batch. For our standard model, DM2OG-99, we achieve a purity of at least 99%, a degree only consistent filtration, distillation, and analytical QC can deliver. We discard any lot that does not meet tight NMR and GC criteria. It takes more effort, but we refuse to cut corners. In process chemistry, trace aldehydes, unexpected moisture, or side ester formation can bring an entire route to a standstill. So quality in, quality out remains our mantra.

    Applications That Drive Innovation

    From our side of the process, the compound’s versatility plays out daily. Most of our customers use Dimethyl 2-Oxoglutarate as a synthon in pharmaceutical research, specialty polymer development, and flavor intermediate production. Because our material flows easily—clear, slightly viscous, and colorless—it streamlines metering into continuous or batch reactors. Fine chemical manufacturers have shared that, with our compound, step yields often improve simply due to predictable reactivity and fewer extraneous peaks in product runs. This level of consistency helps scale reactions from pilot to commercial lots without loss in performance or unexpected byproducts.

    Take peptide synthesis for example. Dimethyl 2-Oxoglutarate provides the backbone in key condensation and peptide cyclization strategies where even minor impurities shift product profiles or introduce troublesome side reactions. We have seen biocatalysis teams come back to us year after year, noting their enzymes remain more active and retention times more stable with our ester than with off-spec supplies. Consistent supply enables uninterrupted research—projects avoid delays, and resources stay focused on real breakthroughs.

    Efficient Pathways for Synthesis

    Researchers often tell us why Dimethyl 2-Oxoglutarate lifts a bottleneck in their workflows. Its clean reactivity profile reduces the need for extensive purification post reaction. The ester groups activate key positions for nucleophilic attack or reduction, widening the synthetic toolbox for complex molecules. Compared to other α-ketoglutarate derivatives—such as the simple acid or monomethyl esters—our dimethyl variant balances solubility and reactivity. The esterification here doesn’t impede hydrolysis where desired, but it does reduce sensitivity to bench moisture, so benchtop-to-scale runs become much more forgiving. Workups get finished faster, product losses drop, and multi-step chemistry feels less like a gamble.

    Handling and Storage Wisdom—Straight from Experience

    With any ester, storage history leaves its mark. Over the last decade, we’ve overhauled our drum and flask protocols so our Dimethyl 2-Oxoglutarate leaves the line with negligible water content. Stainless vessels, nitrogen blankets, and amber glass all factor in. We learned the hard way that merely sealing a drum isn’t enough—transit and warehouse humidity can sneak in contaminants. With each outbound shipment, we triple-check seals and use data loggers to spot unexpected temperature spikes that cause hydrolysis or evaporation.

    In research settings, the attention to storage detail pays off. Chemists can count on consistent quality from bottle to bottle, even after weeks on the shelf. Customers tackling complex synthetic schemes have told us that reduction in peroxide or alcohol side impurities translates directly into higher yields. It’s the little details that make or break a campaign.

    No Substitute for Molecular Specificity

    Customers sometimes ask why not just use dimethyl glutarate, dimethyl oxalate, or other esters for the same roles. The answer comes down to the unique structure of Dimethyl 2-Oxoglutarate. The presence of a central ketone between the carboxylate esters imparts different reactivity: It unlocks access to five-carbon dicarbonyl chemistry essential for diverse transformations. Glutarate lacks this function; oxalate brings only two carbons and introduces instability in many organic media. The ketone lets researchers build heterocycles, modify side chains, and assemble advanced intermediates with fewer steps and lower waste generation.

    Through years of process improvement, we’ve confirmed that alternative esters just don’t confer the same selectivity or reaction control. That’s especially critical in pharmaceutical development, where a single step’s inefficiency cascades down the line—wasting solvent, pH adjustments, or extended purification cycles. Dimethyl 2-Oxoglutarate stands apart not for being more expensive, but for shaving unpredictable variables from tight project timelines.

    Supporting the Needs of a Changing Chemical Industry

    Global demand for advanced building blocks like Dimethyl 2-Oxoglutarate keeps rising as pharmaceutical and materials science continues to innovate. To keep pace, our team invests directly in reactor upgrades, solvent recycling, and process analytics. No two batches are identical, but real control at every stage ensures consistent output—no surprises during synthesis or scale-up. Years ago, we learned that spec sheets look the same across catalogs, but only measured, repeated process discipline delivers on those promises.

    Partnerships forge the path ahead. We frequently collaborate with in-house project chemists, offering insight and technical support based on our long record of ester production. Custom applications such as chiral intermediate synthesis or controlled-release material design have surfaced just from these conversations. By focusing on outcome—not just sales—we position our team as a trusted asset for your innovation, not merely a supplier.

    Environmental Responsibility from Start to Finish

    The wider chemical industry faces real challenges in reducing emissions, solvent loads, and hazardous waste. In our own production line, we’ve upgraded distillation trains with closed-loop solvent recovery and in-line quality controls to minimize off-spec batches that would otherwise become waste streams. By improving overall yield and reclaiming process solvents, we’ve observed a positive shift—less environmental impact, and more efficient production cycles.

    We encourage partners to set up similar reclamation or solvent cascade systems to handle unused Dimethyl 2-Oxoglutarate, lowering total process risk. For heavy users, we provide reusable packaging options and support drum return to further reduce carbon footprint. Our technical staff stands ready to support safe handling guidelines and best practices, drawn from years of practical experience managing esters in a large-scale setting.

    Challenges and Solutions in Scaling and Supply

    No chemical building block comes without hurdles. With Dimethyl 2-Oxoglutarate, tight control of storage time and environmental factors determines shelf life and on-spec quality. Our solution has always been logistical discipline: tracking batch movements, temperature variation, and shipping intervals via real-time monitoring. Each supply chain disruption becomes a lesson in risk management, helping us refine handling and stock protocols so customers receive material ready to perform.

    A recurring customer concern deals with global supply disruptions—raw materials, port slowdowns, or regulatory changes. Rather than just react, we’ve incorporated alternate sourcing strategies and inventory buffers, absorbing shocks so research and production flows don’t stall. Feedback loops with users drive real adjustments—if a scale-up reveals a subtle impurity not caught at smaller scales, our QC department investigates, resolves root causes, and adapts control points on the next runs. Real transparency about challenges and fixes keeps trust high and partnerships resilient.

    Safety Backed by Practice, Not Just Procedure

    Every chemical brings its own handling needs. We provide product support based on practical lab and plant experience, not just regulatory paperwork. Our safety protocols—PPE, proper ventilation, controlled handling—grow from day-to-day routines in a busy synthesis environment. Dimethyl 2-Oxoglutarate responds predictably under ordinary temperatures, but long-term stability and reactivity call for clear, consistent respect for standard laboratory and industrial precautions.

    By openly sharing lessons learned—ranging from chemical compatibility issues during bench tests to larger-scale, real-world incidents—we add an extra layer of user assurance. It’s easy to overlook minor hazards, but our history in bulk suppliers has taught us vigilance, not complacency, keeps operations smooth and people protected.

    Direct Service and End-to-End Support

    Purchasing directly from us means more than receiving a drum of Dimethyl 2-Oxoglutarate at your dock. It means tapping into a continuous stream of feedback, troubleshooting, and improvement. Because we know every batch from synthesis to filling line, we can answer technical questions, supply comparative samples, and offer on-site support for scale-up challenges. Our chemists understand which analytical methods best flag potential impurities or degradation products and work directly with users to customize test points to their workflows.

    We thrive on transparency. Issues arise, no supplier remains immune—but resolving them together, without shortcuts, sets the standard for best practices across our industry. That’s grounded in the daily work of our plant teams and QC analysts, not in glossy brochures or generic online claims.

    Looking Forward: Dimethyl 2-Oxoglutarate’s Role in Tomorrow’s Chemistry

    As research evolves, the demand for higher-purity intermediates like Dimethyl 2-Oxoglutarate keeps rising. With new synthetic pathways in development, efficiency, reliability, and safety take center stage. By partnering with manufacturers who control both the product and process, researchers gain advantages in every step—higher confidence in results, reduced waste, and streamlined process development.

    We continually refine our approach because we see the impact every lot has on customers’ timelines and budgets. For us, the challenge is not just producing a commodity, but enabling progress in drug development, biomaterials engineering, and green chemistry innovation. New uses for Dimethyl 2-Oxoglutarate already appear in custom catalysts, advanced polymers, and biomedical research—a testament to the compound’s versatility when paired with manufacturing discipline and support.

    Key Lessons Learned from Real-World Manufacturing

    A few takeaways guide our work with Dimethyl 2-Oxoglutarate. Quality control at every stage—from reagent selection to final drum fill—makes all the difference. Communicating directly with chemists and process engineers sharpens our understanding of actual application needs. Logistics matter as much as chemistry: short lead times and careful packaging protect both schedules and compound performance.

    Above all, embracing continuous improvement fuels our business and our industry. Customer feedback, rigorous batch testing, and openness to process change keep our Dimethyl 2-Oxoglutarate offering relevant. As chemistry becomes more demanding and timelines tighten, direct collaboration positions us to meet new challenges head-on—one batch, one project, one innovation at a time.