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HS Code |
663406 |
| Chemical Name | 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine |
| Molecular Formula | C9H7N3O2S |
| Molecular Weight | 221.24 g/mol |
| Cas Number | 1577-89-9 |
| Appearance | Yellow crystalline powder |
| Melting Point | 220-224°C |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Purity | Typically ≥98% |
| Storage Temperature | Store at room temperature, away from light and moisture |
As an accredited 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle, sealed cap, labeled with compound name, hazard symbols, and batch details; contains 25 grams of 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine. |
| Shipping | 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine is shipped in tightly sealed containers, protected from light and moisture. Packaging complies with regulations for hazardous chemicals. During transit, it is handled with appropriate safety measures, including labeling and documentation for chemical hazards. Ensure storage in a cool, dry place upon arrival. |
| Storage | Store **4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine** in a tightly sealed container, protected from light and moisture, in a cool, dry, and well-ventilated area. Keep away from incompatible substances such as strong oxidizing agents. Ensure the storage area is secure, properly labeled, and accessible only to trained personnel, following all relevant chemical safety regulations and guidelines. |
Applications of 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine in Industrial Manufacturing4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine serves as a specialty intermediate in several advanced chemical sectors. Our long-standing expertise in its production enables precise control over critical impurity profiles, particle size, and analytical consistency, supporting its integration into regulated market segments. Below, we outline its authentic downstream application fields, focusing on sector-specific standards, inclusion ratios, process stages, and the types of finished products manufactured by our industrial customers. 1. Pharmaceutical Active Pharmaceutical Ingredient (API) SynthesisKey pharmaceutical manufacturers utilize this compound as a heterocyclic intermediate in the multi-step synthesis of thiazole-based drug candidates, especially in anti-inflammatory and antimicrobial research pipelines. Formulators often require detailed quality documentation to support regulatory drug filings, while process engineers closely monitor impurity levels and yield reproducibility at scale. Industry compliance standards
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2. Dye and Pigment Intermediate ManufacturingSpecialty pigment producers incorporate this nitrophenyl thiazole derivative to introduce high-chroma color strength and enhanced lightfastness in azo and thiazole pigment synthesis. Reactivity and solubility make it a favored intermediate for vivid yellow and orange shade formulations, where trace impurity removal prevents downstream color shift or bleed. Industry compliance standards
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3. Agricultural Chemical Synthesis (Herbicide and Fungicide Intermediates)Major agrochemical formulators incorporate this compound at precursor stages when building thiazole-linked heterocycles, enabling potent herbicide or fungicide mode-of-action frameworks. Precise specification on residual solvents, secondary amine content, and nitro group integrity is essential for field-ready formulation. Industry compliance standards
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4. Photographic Chemical Ingredient ManufacturingProducers of specialty imaging chemicals select this thiazole derivative to modify electron donor/acceptor profiles in silver halide emulsion sensitizers. Reaction precision and photopurity control at this step prove critical for performance in professional film, X-ray plates, or archival photographic papers. Industry compliance standards
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5. Specialty Polymer Additive ProductionIn polymer chemical manufacturing, this aromatic thiazole derivative functions as a chain-modifying additive or reactive dye anchor point used in engineering polymers for advanced optical or mechanical response. Quality assurance teams monitor incorporation for controlled molecular weight distribution and thermal performance. Industry compliance standards
Typical usage ratio
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We make 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine in our own facilities, relying on years of process improvement and feedback from both our own labs and industrial users. This chemical features a thiazole ring with a nitro-phenyl group, resulting in a compound prized for its versatility. We produce it with the model designation internally referenced as NPTZ-94, a mark we developed after refining our synthetic route for better purity and reliable scale-up.
Quality doesn’t only rely on measuring purity by conventional standards, although we regularly meet or exceed 98% assay as validated through HPLC and NMR. Our batch records and in-process controls play just as important a part. In practice, small impurities or physical inconsistencies can cause headaches later. A consistent yellow powder may not sound remarkable, yet minor changes in appearance, moisture content, or crystalline habit can complicate the next synthesis step for our customers. That’s why our team tracks and records each lot’s data, including melting point and elemental analysis spot checks. Our experience shows that firms who use these advanced heterocyclic amines in technical manufacturing value not just chemical grade, but real lot-to-lot consistency.
We interact regularly with research institutions, formulation specialists, and pharmaceutical companies. 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine finds its place in projects such as anti-infective lead optimization, synthetic methodology development, and pigment synthesis. Labs choose this scaffold for its reactivity profile and the possibilities that the functional groups provide. Its nitro group, for example, opens the door to reduction and further derivatization, or acts as an electron-withdrawing anchor for further coupling reactions. The thiazole moiety brings bioactive potential and aromatic stability, both hallmarks of this class.
As a manufacturer, we face ongoing challenges ensuring this molecule’s performance under various end-use conditions. Our clients mention the difficulties they face sourcing thiazole derivatives elsewhere. Many processors offer the same compound, but attention to controlled drying, avoidance of caking, or particulate size rarely receives much detail. We tuned our protocols, both through trial and collaboration, to address these points. Drying conditions make a big difference: too aggressive, and trace decomposition starts up, as seen in off-odors or a slight fading of the intended yellow; too lax, and excessive moisture invites issues in subsequent reactions.
Our experience contrasts with what’s seen from bulk commodity sources, where incoming lots can vary. Many traders rely on outsourced facilities, focusing on cost reduction rather than traceability. We manage each synthesis sequence, starting materials, and environmental controls ourselves. This hands-on approach means any deviation from the norm carries a clear history. If a customer’s route needs micropurities below 0.5%, or a bulk lot sized to a kilogram rather than a handful of grams, we can tailor the batch details. We adapt particle size distribution for formulation work or scale up by demand rather than holding oversized stockpiles.
The difference comes through in technical support as well. Because our chemists handle each stage, we’re able to answer questions about by-products, the best solvent choices for dissolution, or tips for downstream reaction compatibility. Our feedback loop works both ways: we document which lots present quirks under certain conditions, such as unexpected color change if heated above 180 Celsius or stability shifts under low-pH storage. Over time, this collective knowledge builds a real data-driven foundation, helping both manufacturer and customer minimize surprises in development.
We’re keenly aware that a long list of technical data can seem exhaustive but not necessarily helpful. In our work, attention to a few practical specifications regularly surfaces as most valuable. Consistent moisture content, for example, stays below 0.5%—a point often overlooked, but critical for those coupling thiazole compounds without delays in drying or risk of hydrolysis. Particle size remains controlled to within a defined micron range, avoiding excessive fines that complicate weighing or dispersal in solvent workups.
Solubility data holds particular value for our customer base. We benchmark every lot in DMSO and DMF and also check compatibility in polar aprotic and protic media. We find that this approach lets researchers rapidly integrate our material into high-throughput screens or scale up their own reactions without encountering unexpected insolubility or gel formation. Actual observations—such as a faint bitter odor at higher temperatures or a tendency to cake under humid conditions—also make their way into our feedback reports. These touchpoints not only assist repeat purchasers but guide newcomers in how to store and handle the product most effectively.
In our own experiments and through direct collaboration, 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine stands out for its robust performance as an advanced intermediate. Synthetic organic labs have found its nitro group can undergo selective reduction or cross-couplings with boronic acids, opening new synthetic routes. Pigment and dye companies utilize its chromophoric structure to impart hues that resist fading or photo-bleaching. It’s even surfaced as a tool in preclinical screens for enzyme inhibition or cell-labeling, thanks to its core aromatic stability and reactivity.
We took feedback from one pharmaceutical research group, who highlighted a problem with competitors’ lots failing to dissolve fully, leaving visible particulate in solution that complicated column purification. Upon testing, we traced incomplete drying and trace sodium contamination as culprits. By tightening our process and integrating additional filtration and purity control, later batches we supplied ran cleanly through both synthetic and analytical phases.
Our feedback cycle is ongoing, both internally and through direct customer dialogue. Each return, complaint, or technical question shapes the next campaign. Take for instance recent demand for higher purity to suit kinase inhibitor synthesis—a market where even low-grade side products can interfere with bioactivity assays. We reran specific lots under stricter temperature and time controls, tightening both product dry-down and packaging to minimize contamination. This level of engagement lets us meet specialty needs, rather than assuming every customer works under identical conditions.
We’ve learned over years that many buyers care more about reliability and openness than lowest absolute price. Academics and process chemists alike expect not only a Certificate of Analysis, but real answers if something goes wrong. As actual producers, we keep all batch data, protocols, and analysis on file, ensuring that questions receive honest, experience-based answers. With every order, our customers gain access to people who’ve worked hands-on with the material, aware of what can change due to temperature swings, humidity shifts, or long-term storage.
We see a trend where companies value clear root cause analysis. If a batch shows shift in melting point or yellowing after extended transit, we can access historical protocols, run a side-by-side retest, and cross-check our starting materials. This transparency builds not only technical credibility but confidence that future runs meet the expectations set by the first successful project.
Production of thiazole-derived compounds carries obligations beyond analysis sheets. Waste minimization, careful handling of nitro-aromatics, and clean disposal remain top priorities. We’ve installed on-site air scrubbers and waste neutralization tanks specifically to address byproduct management. Our in-plant training extends to personal protective equipment and safe handling, giving workers confidence when synthesizing or packaging the product.
Externally, storage and shipment practice reflect these priorities. Controlled temperature packaging prevents product degradation, and reinforced containers minimize breakage risk. Shipment documentation provides not only batch analysis but real advice on handling and local regulatory procedures, all based on our own observed shipment and storage scenarios.
A frequent error in the market is assuming that all 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine sources are equivalent. We hear reports of material failing chromatography, changing color after a few weeks, or containing hard-to-detect metallic traces. Some suppliers offer attractive prices, but often off-the-shelf lots come with mixed quality, poor transparency on origin, and little support after delivery. Our direct synthesis closes these gaps. Every lot’s origin is verifiable, and technical support doesn’t point to an outside party: it’s handled by our own chemists who ran the batch from start to finish.
For projects demanding reliable purity, controlled particle morphology, and precise recordkeeping, such as in regulated pharmaceutical research or dye formulation, this level of manufacturer accountability pays off. Routine updates—such as adapting crystalline form for better processability, or tailoring reaction workups for solvent compatibility—come directly from our production experience. Feedback builds cumulative know-how, reducing uncertainty and wasted effort on both sides.
A manufacturing approach offers freedom to adapt over time. One recent innovation involved a shift in purification sequence, exchanging a slow, high-solvent column step for a multi-stage crystallization. Not only did this change cut solvent use, but it improved isolation yield by five percent and enhanced purity. The ability to iterate and test on-site revealed impurities missed by standard TLC but detected through mass spectrometry. These nearly invisible contaminants could trip up a sensitive downstream synthesis or poison a catalytic process. Our team developed custom monitoring methods, checking for critical thresholds and feeding these learnings back into daily production routines.
If a customer proposes a new synthetic route using our compound, we can test performance in advance and share practical data on compatibility with diverse reagents or reaction conditions. This proactive exchange is possible only when the chemistry happens in our own labs, with detailed oversight and control at each setup. In one case, we supported a textile dye producer switching to water-based processing—a step requiring precise particle size adjustment for even color dispersion. Our chemists worked alongside the client’s team, modifying grinding and sieving parameters, until the finished product performed reliably, batch after batch.
The significance of working with an actual chemical manufacturer rather than a middleman shows up in flexibility, problem-solving, and long-term reliability. Customers with questions about scale-up, solvent compatibility, or unexpected reactivity can talk to chemists who make the compound daily, rather than submit questions through a distributor’s portal. This direct line brings faster, more relevant response and unlocks more creative solutions for challenges in bench chemistry, pilot plant operations, or industrial expansion.
Quality control integrates into every phase, from receipt of starting materials to shipment of finished product. Reliability stems from hands-on monitoring, established work instructions, and a culture of open problem-solving. Unexpected events—such as a solvent shortage or an equipment malfunction—get addressed on the spot, without waiting for third-party approvals. Our direct manufacturing environment makes for shorter feedback loops, more nimble adaptation, and documentation that reflects actual laboratory realities.
Tracing product from batch to batch matters more than ever. Regulations focus on data integrity, origin tracking, and transparent supply chains. Our plant maintains all synthesis, purification, and testing records, linking back to starting raw materials and every point of worker intervention. Traceability reduces the risk of off-specification shipments, ensuring both internal accountability and peace of mind for buyers focused on reproducibility.
We provide customers with full supporting documents, responding to auditing needs and helping fulfill regulatory or reporting requirements. Raw data, instrument calibration logs, and retention samples stand available to those who request them for critical reviews, especially in regulated sectors. Our approach establishes not only operational soundness, but trustworthiness over the long term.
Working as an actual manufacturer, we’ve seen what matters in practice for users of 4-(4-Nitro-Phenyl)-Thiazol-2-Ylamine. Chemical purity and process control establish a strong foundation, but it’s people, adaptability, and honesty that turn a product into a reliable tool for research, manufacturing, or novel development. By controlling each part of production, responding directly to user challenges, and continuously evolving based on firsthand feedback, we deliver more than molecules: we deliver robust solutions, built on hard-won experience.