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2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide

    • Product Name 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide
    • Alias DFP-THZ-4-AM
    • Einecs 814-366-4
    • 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
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    Specifications

    HS Code

    741634

    Chemical Name 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide
    Molecular Formula C10H6F2N2OS
    Molecular Weight 240.23 g/mol
    Cas Number 168328-69-6
    Appearance Solid
    Purity Typically >98%
    Solubility DMSO, DMF, partially in methanol
    Smiles C1=CC(=C(C=C1F)F)N2C=CSC2C(=O)N
    Inchi Key OHXKJPUHRAJWIR-UHFFFAOYSA-N

    As an accredited 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 25g of 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide is supplied in a sealed amber glass bottle with a tamper-evident cap.
    Shipping 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide is shipped in tightly sealed containers, protected from moisture and light. It is handled in accordance with all relevant safety regulations, including proper labeling and documentation. Temperature and environmental controls are maintained as required, and packaging complies with international regulations for chemical transportation.
    Storage 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide should be stored in a tightly sealed container, protected from light and moisture. Keep at a cool, dry place, ideally at 2-8°C (refrigerator) unless otherwise specified by the manufacturer. Ensure storage area is well-ventilated and away from incompatible substances such as strong acids or oxidants. Properly label the container to prevent mix-ups or accidents.
    Application of 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide

    Applications of 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide in Industrial Manufacturing

    As a direct manufacturer of 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide, we supply this advanced intermediate to specialized sectors with tightly controlled processes. The compound’s unique structure supports high-value syntheses, particularly where stringent purity, traceability, and process stability determine the final product quality. The following applications outline authentic downstream industrial use cases, each driven by real compliance requirements and practical technical integration.

    1. Pharmaceutical Active Pharmaceutical Ingredient (API) Synthesis

    Major pharmaceutical manufacturers adopt this thiazole derivative as a privileged scaffold in the synthesis of kinase inhibitors and antifungal agents due to its electron-withdrawing fluorine substituents, which enhance metabolic stability and target selectivity. Our material meets strict impurity thresholds required for incorporation as a late-stage intermediate in multi-step API synthesis, where it enters as a key coupling partner during heterocycle assembly. Downstream QC relies on HPLC and NMR monitoring for every batch, and process adjustments account for batch-to-batch substrate purity and particle size.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • 21 CFR Part 210/211 (US FDA cGMP)
    • European Pharmacopoeia (Ph. Eur.) 10.0, relevant monographs
    • Chinese Pharmacopoeia (ChP), chemical drug substance standards

    Typical usage ratio

    • 0.05–0.3 molar equivalents per batch, adjusted based on target API molecule and overall route yield optimization

    Downstream process integration

    • Intermediate introduction during late-stage coupling steps
    • Pre-functionalization before final salt formation or crystallization
    • Direct use in semi-batch synthesis for preparation of active core scaffolds
    • In-line monitoring for critical impurity tracking

    Final product types

    • Small-molecule kinase inhibitor APIs (e.g. oncology therapeutics)
    • Medical antifungal actives in finished dose form
    • Intermediates for CNS-active pharmaceutical agents
    • Research-grade reference standards

    2. Agrochemical Active Ingredient Synthesis

    Agrochemical companies incorporate our thiazole carboxamide derivative in the route to novel fungicides and advanced crop protection compounds. The molecule serves both as an acylating agent and as a functional core for SAR (structure-activity relationship) optimization, facilitating resistance management strategies in new product lines. Large-scale users demand low-residual solvent and metal contamination profiles, as well as stability under extended storage, aligning with regulatory data requirements for field performance evaluations.

    Industry compliance standards

    • FAO/WHO Joint Meeting on Pesticide Specifications (JMPS) guidelines
    • EU Regulation (EC) No 1107/2009 on Plant Protection Products
    • US EPA 40 CFR Part 158 (Data Requirements for Pesticides)
    • ISO 17025 for analytical quality assurance

    Typical usage ratio

    • 0.1–0.5 equivalents, with adjustment depending on final product active concentration and desired spectrum of field efficacy

    Downstream process integration

    • Condensation with arylamines in protected atmosphere reactors
    • Direct acylation for formation of fungicidal actives
    • Integration into pilot-scale and commercial batch processes for co-formulation
    • Reaction monitoring and final crude QC to ensure consistent actives content

    Final product types

    • Broad-spectrum fungicide technical concentrates
    • Pre-emergence herbicidal intermediates
    • Custom agricultural chemical pilot lots
    • Crop protection R&D active libraries

    3. Specialty Chemical Synthesis for Electronic Materials

    Producers of specialty chemicals for the electronics sector utilize this compound in the synthesis of charge-transport and organic semiconducting materials for advanced device applications, including OLED and photovoltaic cells. Users require ultrapure material with tightly controlled fluorine content to support electronic performance parameters. QC integration includes trace metal and halide analysis by ICP-MS and ion chromatography, meeting device reliability needs.

    Industry compliance standards

    • JEITA/JIS C 0904-2006 (Standards for Electronic Chemicals)
    • ISO 9001:2015 for Quality Management Systems in chemical manufacturing
    • RoHS Directive (2011/65/EU, restricting hazardous substances)
    • REACH (EC) No 1907/2006 for SVHC substance registration

    Typical usage ratio

    • 1–5% by mass in final specialty electronic precursor blends, with precise adjustment for device function and downstream yield

    Downstream process integration

    • Incorporation as monomer or building block in spin-coating and casting resins
    • Reaction with electron donor materials during pre-polymer formation
    • Purification by sublimation, distillation or column chromatography
    • Batch-release QC for trace impurity profile mapping

    Final product types

    • Organic light-emitting diode (OLED) emissive layers
    • Photovoltaic absorber and transport materials
    • Electroactive imaging chemical intermediates
    • High-purity organic thin film transistor (OTFT) materials

    4. Fine Chemical Building Block for Medicinal Chemistry and High-Throughput Screening

    Contract research organizations and in-house pharmaceutical R&D teams rely on this thiazole carboxamide as a vital heterocyclic building block in fragment-based drug design and high-throughput lead generation. The compound's dual fluorine substitution enables library expansion for kinase, protease, and receptor modulator programs. Key formulation partners request precise mass spectrometry documentation, tight storage controls, and assurance of identity with 1H NMR and HPLC retention time matching.

    Industry compliance standards

    • GLP (Good Laboratory Practice) for preclinical research compounds
    • Sigma-Aldrich Research Chemicals Quality Standards
    • ISO 17034 for reference material producers
    • US FDA IND-enabling research chemical documentation

    Typical usage ratio

    • 10–50 μmol scale per well plate, or 0.05–2 mmol per reaction batch, tailored per molecule and screening platform requirements

    Downstream process integration

    • Early-stage parallel synthesis for lead compound libraries
    • Fragment coupling for SAR exploration in automated platforms
    • Solid-phase and solution-phase diversification
    • Direct dilution and transfer for plate-based bioactivity screening

    Final product types

    • Screening-ready small molecule libraries
    • Novel chemical entity (NCE) fragments
    • Early-phase hit-to-lead candidate compounds
    • SAR pathway analog research sets

    5. Intermediate for Advanced Material Science Research

    Advanced material laboratories and industrial research centers employ this compound for the rational design of fluorinated heterocycles used in surface modification coatings, anti-corrosion agents, and sensor interfaces. Researchers favor this structure due to its tunable intermolecular interactions and stability in aggressive chemical environments. Quality assurance requires consistent melt point, minimal water content, and high reliability over multi-gram pilot runs.

    Industry compliance standards

    • ISO 17025 for test laboratories
    • ASTM E260/E285 for organic elemental analysis
    • Internal corporate R&D material qualification standards
    • Environmental Health and Safety (EHS) documentation for laboratory chemicals

    Typical usage ratio

    • 0.2–1.0 equiv. in coupling and polymer grafting reactions, adjusted per matrix and desired end-properties

    Downstream process integration

    • Direct monomer inclusion during copolymerization or surface functionalization
    • Integration into solution-phase or vapor-phase coating processes
    • Post-synthetic modification of polymeric substrates
    • Analytical verification after each synthetic stage

    Final product types

    • Anti-fouling and anti-corrosive coatings
    • Functional sensor membranes for gas/liquid detection
    • Specialty fluorinated polymers
    • Surface-activated composite materials
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    Certification & Compliance
    More Introduction

    Introducing 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide: Practical Insights From Our Factory Floor

    A Look At 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide From Direct Manufacturing Experience

    Years of hands-on production have taught us that every molecule brings its own set of behaviors and quirks. 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide stands out the minute we move beyond theory into the work of synthesis, handling, and shipping. Unlike a catalogue page, our process reveals the tangible character and real-world challenges behind every batch. The chemistry on paper only takes you so far before the practical lessons of scale-up, batch consistency, purity, and local compliance take over.

    The structure of this compound – fused thiazole ring with a difluoro-substituted phenyl and a carboxamide anchor – creates a molecule both versatile and durable. Observing it form under the reactor jacket, watching the color change, seeing the crystallization seed out—it’s a real experience that puts into perspective the exacting standards needed for each drum we send out. The two fluorine atoms on the benzene add more than just mass; they bring real functional impact, influencing solubility and how this molecule interacts within more complex synthesis chains.

    Specifications Rooted in Real Production

    We prepare this thiazole derivative by closely controlling the reaction temperature, solvent polarity, and reagent rates. Every stage, from starting materials to post-reaction filtration, gets tracked and archived. In our shop, quality isn’t a buzzword—it’s a system with paper trails, solvent audits, and regular instrument calibration. We see purity shift when solvent quality drops or when raw materials change hands, so we don't cut corners sourcing precursors. Batches are analyzed by HPLC and NMR right off the line. Impurities with similar structures to thiazoles can show up if process parameters drift, especially during work-up or if someone rushes the filtration. Our team has learned to recognize subtle signals—color hues, filter clogging, minor shifts in TLC plates—that help catch issues before they leave R&D.

    2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide comes to our buyers in white to off-white powder, high in bulk density with particle size distribution tuned during final grinding and sieving. Typical specification on assay exceeds 98 percent, and we always confirm moisture content and melting range—not just for a tidy lab notebook, but so chemists at the next step don’t get inconsistent weighs or unexpected side reactions. Even humidity in the warehouse gets tracked to avoid hidden problems in storage or transport.

    A strong, stable packaging method matters. Oxygen- and moisture-barrier drums, nitrogen purging for bigger shipments, and robust labeling all ensure the end users get what we promised, regardless of distance and season. Having shipped this molecule in winter blizzards and summer heat, we tailor packing based on long-haul transit risks. Many distributors skip these steps; by doing it ourselves, we see far fewer complaints and less product loss.

    Practical Usage: What Chemists Actually Do

    2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide rarely stays on a shelf for long. Medicinal chemists often use this structure as a scaffold for building advanced pharmaceutical molecules. The difluorophenyl group proves attractive for its metabolic stability and ways it can affect biological activity. In our experience, one key reason for the popularity of this starting material is the predictable behavior it offers during downstream transformations. The carboxamide can be easily functionalized while the thiazole ring resists harsh conditions, which lets synthetic teams work through multi-step routes without constant remixing or error correction.

    This compound has featured in kinase inhibitor libraries and as a building block for research into antimicrobial agents. Development groups care about how well starting materials handle coupling reactions, chlorinations, or condensation steps. Our customers tell us that with many aromatic thiazoles, yield drops or undesirable isomers pop up if the fluorine groups don’t sit exactly at the intended positions. We’ve invested time in refining our routes to favor the right substitution pattern and keep out meta- and para-fluoro byproducts.

    Scale-up staff and QC alike benefit when impurities remain low and product melts within a half-degree range. R&D teams value purity and particle reproducibility, not only because of regulatory filings but also for day-to-day reliability. Our technical support staff often fields calls from researchers seeking tips to dissolve, derivatize, or purify this molecule, since handling quirks can cost days in an otherwise well-planned campaign.

    Comparing With Other Thiazole Derivatives

    There’s no shortage of thiazole products on the market, but comparing the 2,4-difluorophenyl version with others reveals strengths and weaknesses that matter far outside the lab. For instance, single-fluoro analogues tend to grant less lipophilicity and can shift their electronic character enough to alter binding modes in medicinal chemistry screens. Products lacking the carboxamide group often struggle with solubility in polar organic solvents—making them harder to manage in downstream coupling or protection strategies. We’ve tested competitors’ lots and seen bigger swings in melting range, which signals impurities or inconsistent crystallinity.

    Many suppliers offer thiazoles without stringent QC, shipping brownish powders that betray iron, silica, or leftover halides from synthesis. We run extra purification steps because any residual iron or copper will poison a broader range of transition-metal-catalyzed couplings, making the user’s life harder and throwing off subsequent analytics. It’s a practical fact: rushed batches mean more callbacks and dissatisfaction for whoever manages the purchasing.

    With supply disruptions or variable overseas quality, we have learned to value steady, repeatable output. Shortages elsewhere often show up in requests for expedited orders and troubleshooting from downstream researchers. Knowing our own supply pipeline and enforcing tight controls has shielded us from the quality dips we hear about from customers using unvetted imports. Price matters, but losing a compound to a failed reaction—especially with limited grant funding—costs more in lost labor and missed opportunities.

    Production Insights and Quality Commitments

    Every set of drums tells its own story. Our facility runs on clear SOPs for all production lines, including thiazole derivatives. In the workshop, flexibility means nothing if the basics aren’t respected: glassware must be clean, pressure gauges checked daily, and reagents titrated to known concentrations. Batch sheets follow each lot from start to finish, and everything goes through a two-person signoff. This isn’t just paperwork—it’s the way to catch subtle deviations that otherwise show up as poor solubility or low purity down the line.

    We perform stability and shelf-life studies for every batch. Our staff tracks changes in appearance, free acid, and moisture, even for materials known for their physical stability. One winter, a box got stuck in an unheated warehouse and we found a marginal loss in apparent solubility for the entire drum. Rather than hide it, we reported the finding and worked with the client to replace it immediately. Over the years, transparency in issues has paid off with serious loyalty from advanced buyers, some of whom carry out projects that fundamentally depend on hard-to-make intermediates like this.

    Lead times depend on actual raw material stocks and reactor downtime. With unpredictable supply chain snags since the pandemic, sourcing specialty halides or thiazole precursors can test even seasoned veterans. We maintain buffer stocks, track upstream quality, and qualify all alternate raw suppliers with the same thoroughness as any pharma group. It’s tempting to accept low-priced, unverified inputs, but we have witnessed the headaches down the chain—crystallization failures, gassy off-odors, or color fouling in reactors—even small mishaps add up.

    We lab-test every incoming drum and keep records traceable for regulatory review. Beyond compliance, this attitude reduces recall risk and minimizes off-spec waste. No system is bulletproof—learning from every near-miss helps us evolve. The company culture emphasizes speaking up: operators are encouraged to report any anomalies, and the technical team steps up at once if yields look off or if data doesn’t fit.

    Serving Specialized Needs—Why The Little Things Matter

    Many customers arrive with complex questions—about reactivity, about final crystallization, about compatibility in proprietary formulations. We answer from firsthand testing, not speculation or copying another sheet. For a compound like 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide, small tweaks to synthesis—choice of base, water content, addition rate—often affect yield and purity. Sometimes, a brand-new customer wants just a few hundred grams with extreme impurity requirements for regulatory submission, while larger groups order multi-kilo lots monthly. Customization isn’t just about scale—it’s about matching grade, packaging, and shipment speed to each project.

    There’s no universal answer to what “best quality” means. Drug discovery teams prize purity and analytical transparency above all; process chemists need robust, chunkier lots with consistent flow in automation. Some large pharma partners request additional documentation: full traceability for every precursor, details on reactor exposure history, validation of absence of residual metals, and detailed moisture studies. Others phone in last-minute to discuss dissolution at scale. Our technical advisors run test reactions, share solvent recommendations, and troubleshoot failed scale-ups, all from the perspective of makers, not middlemen.

    Lessons Learned From Shipping, Storage, And Feedback

    Experience proves that good packaging often prevents frustration later. Water ingress through even a minor leak can lead to troublesome mixing or caking after months on the shelf. Some end-users notice mild deliquescence if left uncapped overnight, so we always double-bag and include desiccants for certain overseas routes. Tempered containers, with inert gas flush for larger shipments, show their value in protecting sensitive materials from seasonal or transport-induced shifts.

    More than once, we’ve received comments from research teams surprised by the clarity of our certificates and our willingness to discuss failures and deviations. Being open about analytical results and the occasional nonconformance has actually built more trust than following a no-news, no-response approach. We adjust packaging or batch process parameters based on recurring customer feedback—what worked for one formulation specialist in the EU gets relayed to our Asian team so lessons travel. Supply is no longer one-size-fits-all; as regulatory and user expectations climb, so must our responsiveness and creativity.

    Why Origin Matters—Direct Manufacturer Perspective

    Selling what you make and making what you sell means responsibility for every container that leaves our facility. Unlike traders or resellers, we face the full exposure—order fulfillment, technical support, trace documentation, and batch recalls if problems do arise. Repeat orders come from a track record of reliability, but any slip is remembered. Our operation’s size lets us be nimble on small-lot customization while investing in larger production lines for bigger projects. Customers notice the difference; being able to speak straight with those who run the reactors engenders confidence.

    Some competitors emphasize cost above all else, but we’ve seen project after project derailed by contaminated or marginally impure intermediates. Price tells only half the story. Both startups and global leaders regularly share their war stories of lost weeks due to a single poorly QC’d shipment. Our answer isn’t a promise—it’s a system based on watching every phase of synthesis, packaging, and shipping with the care of people who know their own name is attached to every lot.

    Supporting Innovation And Sustainability Without Sacrificing Quality

    The future of specialty molecule manufacturing will depend on walking a careful balance between the need for rapid innovation and the necessity of sustainable, clean chemistry. Environmental imperatives mean every gram of solvent, all process emissions, and even small leaks deserve full attention and remediation. For thiazole production, we monitor solvent recycling rates and update process flows to minimize waste and energy use. Implementation isn’t always glamorous—sometimes it means increasing cycle time to clean glassware better, or optimizing filtration to reduce landfill.

    Phasing out harsh solvents, switching to lower-impact energy sources, or using better process controls adds more front-line labor and R&D investment. In our experience, every serious manufacturing group feels this tension. Some buyers request “green” synthesis routes or lower-waste footprints; others only care about speed or price, but regulatory and social pressures are mounting. We experiment in pilot reactors to validate changes before rolling out new methodologies, all while maintaining traceability and batch consistency.

    Many customers, especially academic collaborators, ask about the origins and credentials of inputs. They want to ensure everything stands up to scrutiny from procurement auditors and regulatory inspectors. European and North American buyers regularly request evidence of sustainable practices; their confidence grows when we share audit reports or waste logs. We see wider adoption of these demands and anticipate further tightening as regulatory standards climb.

    Technical Know-How Meets Reality—Problems And Solutions

    Challenges pop up at every step, from synthesis to delivery. Not every issue sits in the books—sometimes a pump starts leaking during scale-up, or a batch turns out fine analytically but clumps after two weeks in storage. Our crew has learned to expect, rather than fear, these headaches. Consistent monitoring and honest reporting help identify root causes before they become headaches downstream. Routine audits, weekly team meetings, and open lines of communication have proven more useful than any off-the-shelf management system.

    Problem-solving in real time—like reprocessing off-color material or chasing down an unexplained analytical peak—relies on a skilled, experienced crew. Grumblings about extra time or shifts every now and then pale next to the peace of mind that comes from knowing a shipment meets spec. Our process chemists are quick to confer with their synthetic colleagues or seek out outside consultation where needed. This network of knowledge, built from years of troubleshooting, stays alive through investment in training, regular tech sessions, and cross-departmental transparency.

    Why Commit To Direct Manufacturing?

    The promise to deliver high-quality 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide goes far beyond a list of specifications or a glossy advertisement. For us, it’s about the discipline and pride that come with sending out each lot, the lessons recorded from every batch, and the candid fixes to problems when they arise. Genuine commitment means seeing every container as both a scientific and personal statement—that what we ship reflects the standards we live by.

    Customers trust direct manufacturers over middlemen because they seek authenticity and technical authority on every question, whether about handling, compliance documentation, or trace impurity troubleshooting. Our approach pairs scientific accuracy with a respect for timelines, budgets, and regulatory hurdles. With every challenge, from a new impurity peak to a batch clogging during transfer, we reflect, adapt, and improve not because it’s written as a rule, but because it’s how real progress happens in chemical manufacturing.

    Final Perspective—What Sets Our 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide Apart

    Day after day, we realize there are no shortcuts in specialty chemical production. Our version of 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide strikes a balance between chemical innovation, high quality, and reliability of service. The product’s design—marked by distinctive fluorine substitutions and carboxamide functionality—draws out performance in advanced pharmaceutical and research applications, while the manufacturing discipline behind it keeps it trustworthy for repeat orders.

    The detail, the adjustments, and the feedback loops we rely on build a foundation that no distributor or broker can replicate. Whether it’s technical support for a critical synthesis, rapid customization for scale-up, or the honest reporting of a hiccup, our experience as direct manufacturers adds value from lab bench to full-scale application. We take every comment, every returned drum, and every technical request not as a burden, but as a guide to how we can do better with each and every lot. In today’s complex market landscape, standing by what you manufacture means providing not just a molecule, but a relationship built on expertise, credibility, and day-in-day-out proof of reliability. 2-(2,4-Difluorophenyl)Thiazole-4-Carboxamide may just be one compound among thousands, but the way we make, support, and deliver it remains the difference that builds true customer confidence.