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Ethyl 2,4-Dimethylthiazole-5-Carboxylate

    • Product Name Ethyl 2,4-Dimethylthiazole-5-Carboxylate
    • Alias 2,4-Dimethyl-5-thiazolecarboxylic acid ethyl ester
    • Einecs 'EINECS 412-010-0'
    • 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

    473294

    Chemical Name Ethyl 2,4-Dimethylthiazole-5-Carboxylate
    Cas Number 89805-49-4
    Molecular Formula C8H11NO2S
    Molecular Weight 185.24
    Appearance Yellow to brownish crystalline solid
    Melting Point 40-45°C
    Solubility Soluble in organic solvents (e.g., ethanol, chloroform)
    Purity Typically >98%
    Storage Conditions Store in a cool, dry place; keep container tightly closed

    As an accredited Ethyl 2,4-Dimethylthiazole-5-Carboxylate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, 25 grams, sealed with a screw cap and tamper-evident seal, labeled with chemical identity and hazard warnings.
    Shipping Ethyl 2,4-Dimethylthiazole-5-Carboxylate is shipped in tightly sealed containers to prevent moisture and contamination. Packages are clearly labeled and comply with international chemical transport regulations. Shipments are handled with care, stored in cool, dry, and well-ventilated areas, and protected from direct sunlight and incompatible substances during transit.
    Storage Ethyl 2,4-Dimethylthiazole-5-carboxylate should be stored in a tightly sealed container, away from direct sunlight, heat, and sources of ignition. Keep it in a cool, dry, and well-ventilated area, preferably in a dedicated chemical storage cabinet. Ensure compatibility with other stored chemicals and avoid contact with strong oxidizing agents. Properly label storage containers for easy identification and safe handling.
    Application of Ethyl 2,4-Dimethylthiazole-5-Carboxylate

    Applications of Ethyl 2,4-Dimethylthiazole-5-Carboxylate in Industrial Manufacturing

    Ethyl 2,4-Dimethylthiazole-5-Carboxylate serves as a precision-input raw material in specialty chemical, flavor, fragrance, agrochemical, and pharmaceutical intermediates sectors. The following sections highlight detailed downstream applications, focusing on actionable usage information, integration points, compliance considerations, and definitive final goods production.

    1. Flavor Ingredient Formulation for Food and Beverage Manufacturing

    Our material acts as a high-impact flavor precursor for compound flavors targeting roasted, nutty, and savory profiles. Multinational food additive blenders and beverage compounders depend on its controlled volatility and aroma characteristics to refine finished taste matrices, especially in coffee, snack, and culinary product lines. Dedicated QC protocols address compliance with residual solvent limits and uniform blending during batch production. Manufacturers fine-tune dosage to target sensory impact while ensuring regulatory approval for both domestic and international market entry.

    Industry compliance standards

    • US FDA CFR 21 §172.515 (Food Additives Permitted for Direct Addition to Food for Human Consumption)
    • EU Regulation (EC) No 1334/2008 on flavorings and certain food ingredients with flavoring properties for use in and on foods
    • China GB 2760-2024 Standards for the Use of Food Additives

    Typical usage ratio

    • 0.05–5 ppm in finished consumer foods, adjusted based on sensory trials and targeted flavor strength

    Downstream process integration

    • Added post-emulsification during flavor compounding, before final dilution, and homogenization in food additive plants

    Final product types

    • Compound flavors for beverage syrups, snack coatings, instant soups, and savory seasonings

    2. Fragrance Intermediate in Fine Fragrance and Personal Care Manufacturing

    Leading fragrance houses incorporate this compound in specialty accord construction, valued for subtle roasted, nutty, and slightly meaty notes. Aroma chemists select this raw material for top and mid-note layering, maximizing olfactory persistence in body care, perfumes, and deodorants. All fragrance batches receive rigorous IFRA conformity and undergo direct analytics for trace impurities. Formulators adjust inclusion ratios according to target application and market-specific IFRA Amendment code lists.

    Industry compliance standards

    • IFRA Standards and Amendment Guidelines (current as per IFRA 52nd Amendment)
    • Cosmetic Ingredient Review (CIR) Panel safety evaluations
    • EU Regulation (EC) No 1223/2009 (Cosmetics Regulation)

    Typical usage ratio

    • 0.1–10 mg per kg in fragrance core compounds, tailoring intensity for perfume, body spray, or functional deodorant end products

    Downstream process integration

    • Dosage measured before the oil phase blending step during fragrance creation in compounding and batch expansion lines

    Final product types

    • Fine perfumes, functional deodorant bases, luxury hand cream fragrances, shower gel scent blends

    3. Pharmaceutical Intermediate for Thiazole-Structure Drug Synthesis

    Pharmaceutical manufacturers source this compound for use as a building block in the synthesis of advanced thiazole-based APIs. Medicinal chemists and process engineers integrate it at specific condensation steps in active pharmaceutical ingredient production flowcharts, optimizing yields and impurity profiles. Facilities monitor compliance across GMP frameworks, trace batch genealogy, and analyze for residuals during scale-up. Product specification and permitted impurity thresholds align with established pharmacopeia requirements and customer synthesis protocols.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP/NF monographs for thiazole derivatives if used in qualified reference pathways
    • EU EudraLex Volume 4 GMP requirements

    Typical usage ratio

    • Stoichiometric input levels as determined by specific API synthesis design, generally ranging from 1 to 1.5 molar equivalents in coupling reactions

    Downstream process integration

    • Charged as a defined intermediate at the core thiazole ring formation and subsequent functionalization stages in API synthesis

    Final product types

    • Thiazole-based pharmaceutical APIs (e.g., anti-infectives, CNS actives), API intermediates, R&D reference substances

    4. Agrochemical Active Substance Precursor for Crop Protection Manufacturing

    Agrochemical formulators utilize this raw material as a versatile scaffold for designing crop protection actives within thiazole-based compound portfolios. Synthesis teams incorporate the product during heterocyclic structure formation, where robust traceability, batch control, and agrochemical regulatory compliance are required. Qualified use depends on target molecule structure-activity relationship studies and regulatory approval for environmental and food safety. Each final active passes residue and degradability testing as mandated by regional agrochemical authorities.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • OECD Principles of Good Laboratory Practice (GLP)
    • EU Regulation (EC) No 1107/2009 on Plant Protection Products
    • US EPA Pesticide Registration Guidelines

    Typical usage ratio

    • Exact ratios reliant on downstream target molecule; thiazole input for active ingredient synthesis typically calibrated from 0.2 molar to full molar equivalents per batch

    Downstream process integration

    • Charged at the initial thiazole core construction stage or in late-stage side-chain modification units within technical-grade agrochemical manufacturing

    Final product types

    • Chemical intermediates for fungicides, insecticide synthesis, growth regulator technical concentrates, registered crop protection actives

    5. Specialty Chemical Intermediate for Heterocyclic Compound Synthesis

    Chemical manufacturers incorporate this compound in the manufacture of advanced heterocyclic-based materials, targeting fine chemical markets such as dyes, polymer additives, and electronic chemicals. Process engineers add the product at controlled reaction steps where high electron density and functional group compatibility accelerate yield or novel material performance. Each facility maintains quality monitoring per international chemical management guidelines and customer analytical specifications, ensuring product purity and reliable batch performance.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems
    • REACH Registration, Evaluation, Authorisation and Restriction of Chemicals (where applicable in EU supply)
    • Responsible Care® Global Charter (for bulk chemical producers)

    Typical usage ratio

    • Batch-specific ratios from 0.5% to 10% weight/weight, set according to precise downstream synthesis targets and material compatibility requirements

    Downstream process integration

    • Fed as a core reactant at the heterocycle-forming or functionalization step during synthesis of complex organic intermediates in fine chemical production

    Final product types

    • Colorfast dyes for textile use, specialized photoinitiators, auxiliary chemicals for plastics modification, electronic grade coatings
    Free Quote

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    Certification & Compliance
    More Introduction

    Ethyl 2,4-Dimethylthiazole-5-Carboxylate: Experience from the Manufacturer’s Perspective

    Understanding Our Product, Beyond the Data Sheet

    Ethyl 2,4-Dimethylthiazole-5-Carboxylate doesn’t always get much limelight, but after years of synthesizing specialty thiazoles, a story forms around each batch we create. This molecule, known for its subtly complex aroma and specialized utility, brings together chemistry’s precision with industry’s practical demands. Thiazole derivatives, especially those with this unique ring substitution pattern, attract attention in technical, flavor, and fragrance fields, but there’s always more to uncover when you’ve spent years seeing what it really does in your customers’ labs and mixing tanks.

    Lab-grade purity makes a difference not only for account managers reading specs but more so for the teams trying to drive selectivity in reactions or tune a flavor note in a consumer product. Our Ethyl 2,4-Dimethylthiazole-5-Carboxylate (CAS 6952-99-6) has become preferable in both sectors because we consistently control its purity above 98%, and minimize batch-to-batch variations that creep in with excessive water content or residual solvents. Producing at industrial scale has taught us that small contaminants in this molecule can trigger bigger problems than many other thiazoles, especially in flavor work or when used as an intermediate in agrochemical synthesis.

    Real-World Manufacturing Considerations

    Some manufacturers jump into thiazole chemistry with a focus on throughput. We’ve learned that this approach leads to run-ins with unplanned byproducts and inconsistent reactivity down the line. Sticking with reliable feedstocks, using closed-system reactors for critical steps, and integrating vacuum distillation set our product apart from a lot of low-quality material found through trading channels. It makes a noticeable difference for customers who don’t want their QC managers calling us about color shifts or off-odors appearing a month after delivery.

    Maintaining low residual moisture protects the compound’s integrity, especially since thiazole esters break down easily in water-rich environments. Over time, we’ve refined drying and stabilization steps so that customers working on pharmaceuticals or high-end fragrances don’t get hit by hydrolysis or shelf-life worries. There’s no substitute for these details when buyers expect results, not excuses.

    Controlling Specifications for Downstream Performance

    Most factories think a certificate of analysis tells the full story. In our experience, the end-use impact depends on process discipline. For instance, isomeric purity keeps side reactions in check for specialty chemicals. In flavor houses, trace impurities matter for regulatory filings and consumer safety. We haven’t just relied on legacy methods from the 1990s; each customer base pushes us to continuously update analytical protocols—think GC-MS, advanced titration, and ongoing feedback loops with R&D partners.

    One ongoing discussion with technical buyers has focused on the faint, yet distinct scent this molecule contributes in livestock feed flavoring, fruit essence, and meat analog development. Our control over impurity profiles gives consistent aromatic results, batch after batch. Some factories cut corners and skip headspace analysis or oxidative stability testing. Too often, these shortcuts lead to failures on the customer’s production line or, worse, consumer complaints about off-flavors or premature spoilage.

    Distinctive Features Compared to Similar Chemicals

    Competitors sometimes offer 2,4-dimethylthiazole or its carboxylic acid variant, but the ethyl ester changes both physical handling and downstream incorporation. This ester brings better solubility in common solvents, reduced volatility, and a balance of reactivity tailored for ester-to-acid conversion or further esterification. Our clients in the fragrance industry appreciate this; compounders gain better dispersal and more predictable top notes during blending. In agrochemical synthesis, using the ester saves steps, especially when a non-hygroscopic intermediate supports higher yields in the following couplings.

    Technical teams have reported clumping or excessive oily residues when using underpurified material from traders. That’s not a vague concern—it means more downtime scraping reactors or lost yield during solvent switches. We’ve built enough evidence with bulk users in flavor, pharmaceutical, and specialty chemical markets to see how these apparently minor details set our manufacturing approach apart. Regular conversations clarify that a tailored process, close attention to storage conditions, and a network of engineers passionate about troubleshooting collectively improve performance far beyond the spec sheet.

    End Uses: What Years in the Field Teach Us

    Chemical catalogs talk about general application, but practical stories come from project feedback and real-world troubleshooting. This compound’s main utility lies in three areas: aroma formulation, advanced intermediates for organic synthesis, and as a contributor to complex agricultural blends. Each area carries its own challenges.

    In flavor, especially in savory or meaty notes, 2,4-dimethylthiazole esters bring the nuance required to create mouthfeel and depth. We’ve supported startups testing plant-based foods trying to match conventional flavors and noticed even trace off-odors derail product launches. Our ongoing support and willingness to run extra stability studies made a difference, as clients often shift product directions based on the compound’s behavior during cooking or extrusion.

    For pharmaceuticals or agrochemical intermediates, strict impurity profiles make or break the downstream reactions. There’s a temptation to settle for “good enough” purity when cost control is king. Over the last decade, more companies audit supply chains and demand process traceability. We invite them to our site; following the entire flow from sourcing thiazole cores, taking small-lot pilot material and then seeing wide-scale runs reassures teams that our protocols deliver each time. Some clients have modified their synthesis route to accommodate the improved performance from our ethyl ester. Whether it’s higher yields or fewer purification headaches, these real shifts in production efficiency support long-term partnerships.

    Addressing Challenges with Direct Manufacturing Experience

    Not every batch runs smoothly. Stubborn precipitation, aging-related changes, or logistic issues (especially in humidity-prone regions) taught us to avoid cutting corners. Our best insights often come from fielding technical service requests. Teams in hot regions count on material that ships reliably and stays as specified upon arrival. We use stabilized packaging and often schedule deliveries to minimize transit times in peak seasons.

    Sometimes, well-meaning buyers get burned by resellers offering lower prices. Unfortunately, these brokers rarely guarantee consistency, and customers suffer when reactive impurities sneak through. Direct communication with our technical staff brought improvements like batch tracking through blockchain, digital delivery of spectral data, and clear lines for troubleshooting beyond one-off purchases. We learned that education about correct storage, correct transfer techniques, and dangers of cross-contamination reduce nearly half of the avoidable QC headaches.

    Customer Needs Driving Continuous Improvement

    Over years of process development, we noticed end users want more than just “high purity.” Food and pharma audits demand transparency throughout the supply chain and consistent safety documentation. We keep detailed records on raw materials, in-process checks, and post-shipment stability to help customers meet global compliance. Few things build trust better than opening our doors for customer audits or assisting with regulatory filings.

    Custom solutions have emerged from our ongoing relationships. Some partners asked for tighter particle size control for direct application in encapsulation; others required amped-up odor threshold measurements to fine-tune regulatory flavor descriptions. These challenges helped us refine our analytical capabilities and push for tighter process control, which benefits not only the client putting in the request but also the wider pool of companies using the product.

    One food company’s experience stands out. Their new product launch was delayed after receiving inconsistent batches from a general distributor. Our technical team stepped in, tracked anomalies to specific storage failures, and redesigned both the packaging and transit protocols. This case validated our belief that involvement in post-shipment life cycle isn’t an extra service—it’s part of responsible manufacturing.

    Supply Chain Reliability—What It Really Means

    Supply chain interruptions transform wish lists into reality checks. Pandemics and global logistical shocks reinforced the role of reliable manufacturing partnerships. We mitigated many supply chain risks by investing in local feedstock, keeping buffer inventory, and using diversified transportation options. Real-world disruptions taught us that having extra lots doesn’t only buffer demand, it also allows faster recovery from local plant issues, force majeure events, or customs delays.

    End users in regulated sectors rely on supplier continuity. Certifiable audit trails don’t just satisfy paperwork—they allow customers to confidently update their own SDS, product documentation, and risk assessments. Our relationships with long-term logistics partners ensure traceable, predictable deliveries rather than surprise outages. Some clients have switched from multinational traders to us due to this level of supply assurance, especially after experiencing stalled production lines.

    We also recognized that communication matters; regular updates on inventory status, up-to-date region-specific compliance information, and forecasts for upcoming regulation changes help buyers plan beyond their current batch needs. International teams in food and fragrance often lean on our proactive notification when a feedstock faces volatility or new customs rules take effect.

    Technical Support and Collaboration: More Than a Call Center

    No two users of Ethyl 2,4-Dimethylthiazole-5-Carboxylate are exactly alike. Our support comes from real manufacturing and R&D experience. Teams running continuous reactors or scaling a batch process will send detailed technical requests or ask for on-site support. We routinely run joint product development trials, sharing not just data, but practical advice on reaction optimization, impurity management, and environmental performance.

    In conversations with both large food clients and university researchers, the dialogue brings forward new challenges—sometimes about solvent-limited processes, sometimes about how to maximize shelf stability under tough conditions in tropical regions. We've learned to be as transparent as possible, sharing not only what goes right in the plant, but also what can go wrong, and how we address it. Success in these conversations means anticipating not just problems, but solutions that fit each end user's real-world constraints.

    Collaboration doesn’t start or finish with a PO. Years of repeat business have come not from aggressive sales, but from technical troubleshooting, method development, and honest feedback about what works and what needs improvement. Whenever we can, our teams participate in industry consortia that advance quality standards for thiazole-based chemicals and share knowledge across the network. The mutual benefit is clear: new research inputs, process upgrades, and shared insights on regulatory changes that impact all sides of the industry.

    Why Direct Manufacturing Matters

    We've watched how the marketplace commoditizes several fine chemicals, but direct manufacturers can offer a level of transparency, process improvement, and post-shipment support unattainable by generic traders and brokers. With Ethyl 2,4-Dimethylthiazole-5-Carboxylate, this manifests as a tighter impurity profile, consistent aroma, and a product that delivers on the promise reflected in its technical documentation.

    Every product we ship carries high expectations: regulatory scrutiny, reliability in high-volume production lines, or performance in precise flavor and fragrance applications. The people making and testing each batch know that a bland certificate of analysis isn’t enough. We’ve built our business by focusing on the practical realities facing our users—less downtime, fewer quality complaints, better compliance with global food safety or pharma norms, and the agility to adjust specs when application needs shift.

    Looking ahead, an ongoing investment in process automation, advanced analytics, supply security, and regulatory expertise will keep influencing the product’s value for all stakeholders. By integrating real-world feedback into every improvement cycle, we've transformed technical challenges into know-how, constantly reinforcing the trust customers put in us.

    Conclusion: Manufacturing Ethyl 2,4-Dimethylthiazole-5-Carboxylate with Purpose

    Real quality doesn’t just trace back to tight process control. It depends on an ongoing conversation between makers and users. Years of manufacturing Ethyl 2,4-Dimethylthiazole-5-Carboxylate has taught us that the unexpected often matters more than what’s obvious on a TDS. From managing volatility in global markets to field complaints about off-note batches, the connection between our team and users everywhere shapes the ongoing evolution of this unique thiazole ester.

    We stay committed to transparency, technical innovation, and forging deeper partnerships that stretch from our reactors to the final products in which this molecule plays a critical role. Every batch shipped embodies more than a line item on an order; it reflects knowledge, care, and the shared goal of raising industry standards together.