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HS Code |
789054 |
| Cas Number | 1758-45-4 |
| Molecular Formula | C4H7N3S2 |
| Molecular Weight | 161.24 g/mol |
| Appearance | White to off-white crystalline powder |
| Melting Point | 105-108°C |
| Solubility In Water | Slightly soluble |
| Purity | Typically ≥98% |
| Storage Temperature | Store at room temperature, away from moisture |
| Iupac Name | 2-amino-5-ethylsulfanyl-1,3,4-thiadiazole |
| Smiles | CCSC1=NN=C(N)S1 |
As an accredited 2-Amino-5-Ethylthio-1,3,4-Thiadiazole factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The packaging for 2-Amino-5-Ethylthio-1,3,4-Thiadiazole (25 grams) is a sealed amber glass bottle with a secure screw cap. |
| Shipping | **Shipping Description:** 2-Amino-5-Ethylthio-1,3,4-Thiadiazole should be shipped in tightly sealed containers, stored in a cool, dry place away from oxidizing agents. Ensure packaging complies with local, national, and international regulations for chemicals. Include appropriate hazard labeling and documentation. Handle with care to prevent leaks or contamination during transit. |
| Storage | **2-Amino-5-Ethylthio-1,3,4-Thiadiazole** should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from sources of ignition and incompatible materials. Protect it from light, moisture, and strong oxidizing agents. Use appropriate personal protective equipment when handling. Store at room temperature and label the container clearly to prevent accidental misuse. |
Applications of 2-Amino-5-Ethylthio-1,3,4-Thiadiazole in Industrial ManufacturingAs a direct manufacturer specializing in advanced heterocyclic intermediates, we supply 2-Amino-5-Ethylthio-1,3,4-Thiadiazole to high-tech industries where precision and compliance are essential. Below, we detail its established applications across strictly vetted downstream sectors, based on integration in commercial-scale manufacturing and validated regulatory contexts. 1. Pharmaceutical Intermediate for Thiadiazole-Based Active Pharmaceutical IngredientsAPI manufacturers frequently utilize this compound as a core building block in the synthesis route of select antifungal, antibacterial, and CNS-active pharmaceuticals, exploiting the thiadiazole ring’s capacity for bioisosteric design. It enters multi-step organic synthesis, where careful process control and analytical validation are standard at each coupling and cyclization stage to meet ICH Q7 GMP and regional pharmacopoeia monographs. Downstream users adjust the equivalency based on the desired API yield and impurity profile required by global regulatory filings. Industry compliance standards
Typical usage ratio
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2. Crop Protection Synthesis: Precursors for Fungicides and BactericidesAgrichemical formulators exploit this material’s heterocyclic framework to construct active moieties in modern thiadiazole-type pesticides. Manufacturing lines introduce it during early-phase condensation with haloacids and advanced aryl substitution, later forming the active ingredient core prescribed for cereal, vegetable, and fruit treatment. Careful ingredient proportioning optimizes yield and controls legacy S-containing byproducts per regional pesticide safety rules. Industry compliance standards
Typical usage ratio
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3. Dye and Pigment Intermediate for Industrial ColorantsSynthetic dye manufacturers depend on this material as a core feedstock to build sulfur-containing chromophores, especially in disperse and direct dyes for textiles and specialty pigment sectors. The additive is charged during the nucleophilic substitution phase, interacting with azo or anthraquinone derivatives under controlled pH and temperature, producing vivid, wash-fast colors. The use of this precursor is managed under sectoral chemical control regimes and undergoes batchwise QC for color consistency and environmental acceptability. Industry compliance standards
Typical usage ratio
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4. Specialty Polymer Modification for Electronic MaterialsPolymer compounders utilize this compound to incorporate nitrogen and sulfur atoms into engineered plastics, targeting enhanced dielectric, anti-static, or flame retardant properties. The intermediate is reacted within condensation polymerization schemes or used as a chain extender in polyimide and polythioether matrices. Industrial integration adheres to strict compound traceability and process validation requirements suited to semiconductor and electronic packaging manufacture, with ongoing QC by FTIR and GPC per sector process audits. Industry compliance standards
Typical usage ratio
Downstream process integration
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On our shop floor and in our labs, 2-Amino-5-Ethylthio-1,3,4-Thiadiazole is much more than just a name on a barrel. Those of us in chemical manufacturing know this compound for its reliability in specialty synthesis. Our experience with this molecule spans years of hands-on production and countless QC checks, so we pay attention not only to its performance but also to how it stacks up against similar compounds in the thiadiazole family.
The product comes off our reactors as a white-crystalline powder, offering a purity that meets strict quality baselines—our process does not tolerate shortcuts. We don’t chase shortcuts; we monitor each step closely, from raw material intake through to crystallization and drying. Consistency doesn't happen by accident. Each batch is manually sampled and documented, not just for paperwork’s sake, but because the labs downstream depend on uninterrupted quality.
Customers and partners tell us they value products that don’t bring surprises. Over the years, we’ve rooted out variables that used to creep in—particle size drift, incomplete conversion, contamination from aged equipment. 2-Amino-5-Ethylthio-1,3,4-Thiadiazole punishes the careless, so we respect it with robust plant management and routine kettle inspection. The result is a dependable product we use confidently in our own specialty syntheses.
Most of the calls we get about 2-Amino-5-Ethylthio-1,3,4-Thiadiazole focus on synthetic value. Pharmaceutical chemists look at thiadiazole rings as a gateway to novel bioactive compounds. This particular molecule stands out for its ethylthio and amino substituents, which often provide structural diversity in drug research pipelines. The weight it carries in the world of medicinal chemistry comes from the way it donates to—or threads into—larger, more complex molecules.
In some cases, colleagues in the agrochemical field use 2-Amino-5-Ethylthio-1,3,4-Thiadiazole to fashion new active agents. The base structure carries through several reaction schemes and usually behaves well under milder conditions compared to related amino-thiadiazoles. We hear about it forming part of candidate molecules aimed at disease management in crops, where sulfur and nitrogen content can bring unique advantages.
Our own process engineers work on adapting its synthesis for custom needs. Over the years, academic and industrial researchers reach out to us for unique derivatives—some want modified alkylthio groups, others ask for isotope-labeled versions. The amine position offers an entry point for direct substitution, while the ethylthio group brings in additional flexibility for downstream work. The balance between reactivity and stability in this compound drives creative application.
Manufacturers grinding out large-scale production of thiadiazoles know small differences grow over time. Compare 2-Amino-5-Ethylthio-1,3,4-Thiadiazole to the more commonly ordered 2-Amino-1,3,4-thiadiazole. You’ll see distinct handling characteristics because that ethylthio group influences solubility and how the molecule partitions in extraction steps. Internal data from our techs shows that switching to the ethylthio version trims away some solvent loss in the recovery stage, ultimately reducing downstream waste.
Besides the operational details, 2-Amino-5-Ethylthio-1,3,4-Thiadiazole typically produces fewer off-odor complaints during synthesis than alkyl-free relatives. Most of what we hear from line workers reflects practical concerns: If it seizes in the filter or vents pungent by-products, it slows down the entire line. With this model, we don’t get those headaches. In multi-ton output, even marginal improvements turn into significant time savings and improved morale on shift.
Chemical compatibility matters, too. Engineers working on API intermediates often ask for profiles based on stability in protic and aprotic solvents. In this case, we’ve tracked strong performance in acetonitrile and DMSO, lending flexibility for chemists scaling up from bench to pilot plant. That added versatility means fewer process changes as you scale, translating into real cost management for our customers and ourselves.
Producing 2-Amino-5-Ethylthio-1,3,4-Thiadiazole calls for vigilance. Incoming raw materials—starting from thiourea, standard sulfur sources, specialty halide donors—all undergo verification. Out-of-spec input means downtime and the risk of recall, both of which hit the bottom line and our reputation. We’ve responded by investing in better supplier evaluation and by demanding COAs match our in-house findings. Auditors see our records—they know we don’t fudge results or accept sample swaps.
In the plant, we emphasize control of airborne powder and proper storage. 2-Amino-5-Ethylthio-1,3,4-Thiadiazole isn’t categorized as a highly hazardous substance, but its functional groups call for gloves, goggles, and scrupulous attention to dust collection. Those lessons come from experience. You can’t ignore near-misses, and our shop keeps a running log of safety talks. From warehouse to packout, everybody signs off on product integrity.
Over the years, training sessions have cut back accidents and time lost due to improper handling. Our people get involved in planning those sessions, and we hear directly about design tweaks or protocol changes that help. Those feedback mechanisms have kept our incident rates low and helped us retain skilled workers long-term, a rare situation in a competitive labor market.
Regarding the grade, we ship only high-purity 2-Amino-5-Ethylthio-1,3,4-Thiadiazole. Drying and sieving steps lock down specifications, with HPLC and NMR confirmation as routine. We’ve found that variability comes mostly from improper drying or packaging, so we stomp these problems with robust SOPs. The lab reports back to the floor every shift. On the rare occasion that a batch falls short, we pull it before it reaches the drum line, not after.
Model designation usually comes down to lot number and batch characteristics unique to our runs. We don’t create confusion with generic “technical” and “analytical” terms that float around in catalogues. Partners simply order by purity or by end-use grade for scale or pilot work, and they get a sample for verification before committing to larger buys.
Batch history tells a story every time. Over the years, we’ve developed a feedback loop between customer requests, laboratory trials, and the guys in boots turning the valves. This isn’t a process that gets automated away. Direct communication with those who actually use our product—chemists, engineers, QA managers—brings up points that pure spec sheets miss.
Cases arise where a customer wants faster dissolution, or reduced by-product peaks. We trial adjustments to feed ratios, recrystallization temperature, even grind profiles. If the end-user can draw material straight from the pack without extra tweaks, that saves time and money both here and downstream. That’s key to us, not selling catalog copy but shipping a product ready for real-world challenges.
Even logistics play a part. If the powder cakes after a few days sitting on a loading dock, the problem comes to light quick. We invested in packaging upgrades, working with input from end-users and our own warehouse staff. Desiccant use, internal liners, and closure types all made for better shelf life, less product loss in shipment, and fewer complaints sent up the supply chain.
Environmental pressures on the chemical sector aren’t just buzzwords in our boardroom; they show up in compliance audits, in water testing results, and sometimes in neighbors knocking at our gate. Our plant meets, and in several cases exceeds, local and national regulations on emissions and effluent control. We recycle process solvents with an in-house distillation loop, which didn’t come cheap but pays for itself by cutting down waste hauls and raw input needs.
Waste acid and base streams from 2-Amino-5-Ethylthio-1,3,4-Thiadiazole production can have downstream impacts if mishandled. We neutralize and treat every batch, not just those sampled for external testing. For solid residues, our waste characterization has led to reclaiming some by-products for use in low-grade industrial applications, closing some material loops.
By learning from previous emissions slips—a few compliance warnings in the early years—changes in scrubber setups and routine stack analyses helped us get back on track. The regulatory field won’t ease up, so we keep open books when authorities or clients come knocking. We invest in third-party audits and welcome them, seeing them as proof to our partners that engineering diligence runs throughout our process.
Global supply chain pain points hit everyone. The thiadiazole supply chain is not immune, especially sourcing high-quality precursors like specialty amines or sulfur sources. After living through logistics chaos—container blockages, pandemic shutdowns, rail strikes—we learned flexibility matters more than just-in-time dreams. We keep buffer stock of critical inputs and maintain more than one raw supplier for crucial materials.
It’s tempting to chase the cheapest input on offer, but bad experiences with inconsistent batches have shown us the downside. We stick with trusted partners, even when prices fluctuate. Our supplier relationships run deep. We’ve visited plants, shared audit protocols, and kept open lines with upstream producers. These efforts mean our production schedule runs tighter and our customer promises stand up.
Shipping isn’t left to chance, either. All finished 2-Amino-5-Ethylthio-1,3,4-Thiadiazole leaves our plant traceable to the minute it passes final inspection—every shipper barcode ties back to the batch record. When a hiccup happens anywhere in the supply chain, it’s often the transparency of our records that resolves things quickly.
We don’t see 2-Amino-5-Ethylthio-1,3,4-Thiadiazole as just another line item. Our teams put in the hours, face the setbacks, and take pride every time a new batch clears QC and ships on time. For us, these molecules aren’t abstractions. They are the result of practical chemistry, cumulative improvements, and day-to-day commitment.
Customers and collaborators come back not for flash, but for a reliable supply of genuine material they can put to use right away. Many times, a researcher or process chemist has told us they’d switched to our material after facing recurrent failures or inconsistencies elsewhere. That feedback reinforces our decisions and keeps us pushing for better turnaround, documentation, and guidance with every delivery.
We stand by our process because we built it ourselves, not just from textbooks or SOPs, but experience. Our plant leaders started on the floor, guided new hires, and watched how small changes affected months’ worth of output. Every success story attributed to our product reflects the scrutiny, adaptation, and resilience built into the company culture.
Looking ahead, pressures will increase—from compliance, customers, and resource constraints. As a manufacturer, adaptability stays at the forefront of our plans. We continue to upgrade monitoring systems, invest in upskilling for our workforce, and strengthen our feedback channels with customers. On-site R&D feeds directly into process upgrades, meaning new products and derivative compounds aren’t just pipe dreams, but rooted in real bench-scale trials.
Automation plays a part, but it doesn’t replace the eyes, judgment, and hands-on craft of experienced technicians. Our shift supervisors still walk the lines, cross-check reports, and demand more than just numbers from their teams. If raw material quality dips, or if a subtle color change appears during a batch, that gets flagged and acted on, not ignored.
We see opportunity in renewed demand for traceable, high-quality specialty chemicals. Producers who treat every lot like it matters—and who learn from every complaint—will drive progress and trust across the sector. 2-Amino-5-Ethylthio-1,3,4-Thiadiazole remains a solid example in our portfolio, shaped as much by real-world challenges as by ambition.
Making specialty chemicals isn’t romantic. You get hit with problems daily—breakdowns, raw price spikes, revised customer specs. But that’s manufacturing. We keep our heads down, push through complications, and make sure our product reaches the customer as promised: ready for their next breakthrough, not for their headache bin. That’s what we’d want if we were on the receiving end, and it’s what we aim to deliver, every single drum.