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HS Code |
874870 |
| Product Name | 2-Amino-4,5-Dimethylthiazole Hydrobromide |
| Cas Number | 1153-43-7 |
| Molecular Formula | C5H9N2S·HBr |
| Molecular Weight | 213.12 g/mol |
| Appearance | Off-white to light yellow powder |
| Melting Point | 220-222°C (decomposes) |
| Solubility | Soluble in water |
| Purity | Typically ≥98% |
| Storage Conditions | Store at 2-8°C, protect from light and moisture |
| Synonyms | 2-Amino-4,5-dimethyl-1,3-thiazole hydrobromide |
| Sensitive | Hygroscopic |
As an accredited 2-Amino-4,5-Dimethylthiazole Hydrobromide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Sealed amber glass bottle labeled "2-Amino-4,5-Dimethylthiazole Hydrobromide, 25g," with hazard symbols, batch number, and storage instructions. |
| Shipping | 2-Amino-4,5-Dimethylthiazole Hydrobromide is shipped in tightly sealed, chemical-resistant containers to prevent moisture exposure. Packages are labeled according to regulatory standards and handled with care to avoid damage. Shipping is conducted under standard temperature conditions via certified carriers, complying with all relevant safety and transportation regulations for laboratory chemicals. |
| Storage | 2-Amino-4,5-Dimethylthiazole Hydrobromide should be stored in a tightly closed container in a cool, dry, and well-ventilated area, away from moisture and incompatible materials. Protect it from light and strong oxidizing agents. Store at room temperature, ideally between 15–25°C (59–77°F). Follow all relevant safety protocols and ensure proper chemical labeling to prevent accidental misuse or exposure. |
Applications of 2-Amino-4,5-Dimethylthiazole Hydrobromide in Industrial ManufacturingAs an original manufacturer of 2-Amino-4,5-Dimethylthiazole Hydrobromide, we supply this specialty intermediate to core sectors requiring reliability, consistency, and regulatory documentation in every batch. Below, we outline established industrial application routes, downstream processing methods, and final output products as demanded by leading OEMs and contract manufacturers. 1. Pharmaceutical Intermediate Synthesis for Thiazole-Based APIsOur material functions as a critical intermediate in multi-step syntheses of thiazole-containing active pharmaceutical ingredients, especially within anti-infective, anti-inflammatory, and anti-tumor drug projects. Pharmaceutical manufacturers employ this intermediate at defined stages of their GMP-compliant workflows, integrating it after standard reaction work-up and prior to final condensation or cyclization steps, and execute robust analytical and impurity profiling to meet global regulatory expectations. Industry compliance standards
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2. Agrochemical Synthesis for Fungicide and Pesticide FormulationsLeading agrochemical integrators use this raw material as an essential building block in synthesizing thiazole-based active ingredients for systemic fungicides and broad-spectrum pesticide actives. It is introduced into core condensation reactions upstream of formulation, ensuring precise control of structure-activity relationships, and undergoes batch-specific quality control analysis covering both active strength and impurity ceilings as stipulated by crop protection authorities. Industry compliance standards
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3. Dye and Pigment Intermediate for Specialty Textile ColorantsThiazole derivatives synthesized with our raw material underpin manufacturing of specific azo and sulfur dye families used in mass textile colorant production. Large-scale dye manufacturers integrate this compound into diazotization or coupling stages, followed by sulfonation or further reduction, achieving stable molecular architectures that deliver wash-fastness and unique chromatic properties to synthetic fibers in technical textile lines. Industry compliance standards
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4. Advanced Chemical Research and Custom Synthesis PlatformsSpecialty chemical research centers and contract R&D providers source this material to construct a range of thiazole analogues directed at lead discovery projects and structure-activity relationship studies. The compound is introduced into multi-step synthetic campaigns, often employing parallel synthesis reactors or automation-based high-throughput experimentation. Analytical departments attach detailed certificate-of-analysis and impurity profiling data, catering to the stringent documentation requirements of regulated research pipelines. Industry compliance standards
Typical usage ratio
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From years behind the reactor glass and the challenges met in our own labs, we’ve worked hand in hand with chemists searching for reliability and straightforward results. 2-Amino-4,5-Dimethylthiazole Hydrobromide, a compound we’ve run through every corner of our plant, serves a unique role in today’s research and manufacturing environments. Living in the world of heterocyclic building blocks, this material steps up in advanced synthesis, where accuracy and process cleanliness keep entire projects on track.
We run every batch with one idea in mind: consistent purity. The compound forms as white to off-white crystals, and we monitor every step from raw input to finished product. Decades of running controlled crystallizations, filtration, and drying put us on top of particle control and impurity thresholds. The hydrobromide form helps with stability and ease of handling, especially compared with alternative salts or free bases that pick up moisture or present dosing headaches. If you’ve handled thiazole derivatives in the past, you’ll notice far less clumping and much smoother incorporation into aqueous and polar organic systems, all owed to the way we pin down residual solvents and salt formation.
Thoughtful process controls make this compound suitable for direct medicinal chemistry. We confirm its purity using HPLC and NMR, methods familiar to our analytical chemists because they use the same data for downstream reaction planning. Typical lots reach greater than 98% purity, but our senior chemist keeps a close watch for micro impurities that can trip up late-stage coupling or derivatization. Moisture content sits below 0.5% thanks to vacuum drying and careful packaging. We use high-clarity polyethylene liners and nitrogen flushing straight from the drying oven—an extra step that cuts down any surprises during shipment or storage. Granule size works for both development and scale-up, which means quick dissolution, whether you’re running milligram-scale conditions or planning for multi-kilogram pilot work.
Every few months, interns ask why we persist in making the hydrobromide, when freebase options seem cheaper on paper. The answer comes down to safety and shelf life. Freebases of thiazoles tend to absorb water and degrade under normal warehouse air; as a result, weighing gets messy, and dosing accuracy slips. Hydrobromide salts sidestep those issues. Handling stays straightforward, spill incidents drop, and your benchmark data won’t drift between lots. We’ve upgraded our packaging lines to avoid any glass ampoules, since past breakages taught us that crystalline material holds up best in shatter-proof, tamper-evident pouches. Customers running scale-up batches or storing for long periods appreciate fewer degraded or caked raw materials—and this reduces laboratory downtime.
We offer our 2-Amino-4,5-Dimethylthiazole Hydrobromide mainly as model number ADTH-4509. This naming grew out of practical necessity, not a marketing agenda. A clear label means less confusion at receiving docks and a faster track from storeroom to bench. We use clear, embossed batch numbers and tamper-evident seals to maintain traceability, which helps in both pharmaceutical QA workflows and academic procurement. Standard packs range from 25 grams up to large-scale 5 kg kraft drums, always lined to eliminate outside contamination. If your process needs a specific fill size or secondary packaging, we listen; we’ve retooled line runs more than once to fit special projects or cleanroom specs.
2-Amino-4,5-Dimethylthiazole Hydrobromide draws attention for its role in creating libraries of potential pharmaceutical agents. Some of the top academic and CRO labs visit us to source small batches for SAR (structure-activity relationship) work. Early-phase synthesis counts on sharp reactivity of the amino thiazole moiety, which offers a platform to build up side chains, activate for coupling, or introduce ring substitutions. Many who use the product in medicinal chemistry comment that our salt form gives them sharper melting point reproducibility and cleaner intermediate NMRs.
Electronics R&D teams occasionally use this product as a precursor in sulfur- or nitrogen-doped organic semiconductors. They’re drawn by the high purity level, which prevents trace ionic contamination—a must in device applications. Our internal supply chain team learned, after more than one feedback session, to synchronize lot reservations for tech-sector orders, where device performance and reproducibility matter more than the bottom line. By listening, we’ve cut lead times and wastage, delivering batches with tighter spec windows than seen in commodity markets.
Chemists often compare our compound to other thiazole derivatives—say, simple 2-aminothiazole or the free base of 2-amino-4,5-dimethylthiazole. Our hydrobromide version stands apart for its physical stability and workability in lab settings. Free bases sometimes smell or retain slight solvent traces, complicating sensitive reactions. Some thiazole derivatives show broad melting transitions or contain sticky tars. With the hydrobromide, melting behavior stays crisp, and our process team roots out odorous byproducts.
Logistics professionals see real benefit, too. Hydrobromide salt doesn’t fluctuate in bulk density from batch to batch, so orders pack and ship smoothly. No more leeching or resinous clumping from humidity exposure. Past experience showed that thiazole free bases degrade into colored or oily masses after cross-country shipping in summer, leading us to lock in the salt form as standard. This reduces customer complaints and lowers shelf losses. Over the years, batch records show hydrobromide returns at less than a quarter of the rate for unprotected analogs.
We have refined our synthetic pathway to produce 2-Amino-4,5-Dimethylthiazole Hydrobromide to save our customers headaches down the line. Our route takes advantage of controlled oxidation and precise bromide delivery, which leaves no residual bromine or halide byproducts—a detail that analytical chemists often request, as stray halides sometimes affect downstream reactivity. Our nitric acid oxidation facilities run continuously under fume-scrubbed conditions, minimizing environmental burden and letting us recycle and repurify spent acid and water. All waste streams undergo controlled neutralization and monitoring, something that’s become non-negotiable from our regulatory team and local partners.
Our in-house teams run parallel crystallization experiments, tuning the hydration state and crystal growth parameters to match application needs. This reduces the formation of needles or fines that complicate weighing or packing. We’ve learned that a little attention to pH and seeding saves hours of filtration, meaning we deliver a product with less ash and trace contaminants. Downstream, users say our product integrates directly into both aqueous coupling and non-polar solvent regimes without solubility surprises.
Listening to customer labs guides every batch release in our facility. More than one biotech group asked us to check for a byproduct you’d never spot in a basic QC check. We added in routine mass spec scans to catch those hidden peaks. On the other end, a university project requested a scaled-down, micro-packed version to avoid repeated exposure during compound screening. That led us to develop smaller, single-use vials pre-weighed in a dry box. These details build trust and help us keep our offerings grounded in the realities of day-to-day laboratory work.
Medicinal chemists run multi-step syntheses that put product quality to the test. With 2-Amino-4,5-Dimethylthiazole Hydrobromide, endpoints hit expected TLCs and HPLC traces hold steady across lots. A few years ago, a pharma group using our compound for kinase inhibitor discovery called out the value in being able to trust melting point and spectral data without retesting every lot. In agricultural chemistry, teams exploring fungicidal scaffolds leverage the molecule’s reactivity without worrying about latent side-products or non-reproducible salt forms.
Our compound finds a secondary use as a research reagent in the electronics sector, especially in the development of sulfur and nitrogen heterocycle components for organic field-effect transistors. There, consistent particle size and purity translate into more stable thin films and fewer device failures. Even a handful of government labs have issued orders for defense and environmental monitoring projects that need predictable, reliable thiazole intermediates.
The specialty and fine chemicals space runs into bumps all the time, including rogue off-spec materials that disrupt entire production schedules. Inventory control, analytical headaches, and contaminated material waste real time and budgets. For a product like 2-Amino-4,5-Dimethylthiazole Hydrobromide, we deal with these issues up front. We set batch specifications by running trend analysis on every production set, so data informs every release. If anomalies turn up, we cycle back into process review before a single drum leaves our dock.
Shipping and storage create challenges, too, especially with global climate shifts making warehouse humidity and heat an ongoing headache. We upgraded our shipping standards after a partner in Southeast Asia reported caking after a summer transport. The answer was adding multi-layer moisture barrier liners, plus more robust carton construction. The rate of product complaints in tropical markets dropped by more than 70% after this change.
We take transparency as more than a slogan. We share production logs and analytics with customers, so auditors and research teams see traceability at every lot. No one enjoys fighting opaque supply chains. Our approach still uses old-school batch books—physical ledgers checked and signed—while maintaining digital logs for real-time tracking. If a customer proposes a spec tweak for a novel research program, we collaborate instead of stonewalling. This came up two years ago when an academic partner needed an HPLC-specialized grade. Our R&D team shifted purification gear and worked to match pilot batches to the new analytics.
We field a small group of technical folks who answer questions about handling, solubility, and integration into multi-step routes. Whenever a researcher hits a snag with downstream transformations, our chemists open up reaction logs and suggest tweaks using the same notes we kept during scale-up. This continuous dialogue bridges the usual disconnect between supplier and scientist, and it builds confidence that we stand behind the material through the entire development cycle.
Some users seek support to move from milligram experiments to kilogram pilot work. Our operations group supplies detailed data on dissolution rates and compatibility in different solvents. We also keep on hand spectral libraries for both identity and impurity matching, letting users skip redundant analytical work. This resource gets passed from lab to lab, giving new teams a foundation built on authentic production data instead of arm’s length literature reports.
Price swings, regulatory shifts, and sudden supply chain hiccups shape every calendar quarter. Over the past decade, we experienced enough force majeure events and tariff shocks to plan for real resilience. Instead of skate-by raw material sources, we lock into multiple, long-term agreements with feedstock suppliers for the core thiazole starting materials. We keep production buffers on hand and cross-train staff to avoid surprise downtimes. The result is visible in fill rates and real shipping timelines—our order delays track under 5% even during port backlogs or market spikes.
We stick close to regulatory shifts, updating SDS and TDS documentation alongside lot shipments. Auditable trails and quick turn on compliance issues became the norm, especially for groups feeding our material into clinical routes or regulated market studies. We don’t treat traceability or disclosure as an extra, and we supply necessary compliance certifications without tacking on extra charges or documentation headaches.
We base improvement goals not on slogans, but on observed issues and requested tweaks. Process chemists flag slow-dissolving lots, and we respond by revisiting granulation and drying protocols. Users who spot minor color inconsistency receive adjusted material, and process analysis logs inform plant-side changes, not marketing pitches. We cycle through each part of our line every six months for both preventive maintenance and process update.
As new synthetic routes emerge and users tackle unexplored fields, we overhaul test protocols and refresh analytical libraries. Our plant R&D team meets with frequent users to explore the frontiers of what this compound can deliver, investigating novel applications where thiazole moieties might open new research doors.
Every barrel of 2-Amino-4,5-Dimethylthiazole Hydrobromide represents more than just a chemical transaction. In our shop, it stands as a record of attention, adaptation, and a direct answer to the daily hurdles of scientists and engineers around the globe. We source, process, pack, and stand behind this product because it remains indispensable in pushing the front edge of chemical discovery and process reliability.