|
HS Code |
362347 |
| Productname | 4-Amino-4H-1,2,4-Triazole-3-Thiol |
| Casnumber | 13983-27-0 |
| Molecularformula | C2H4N4S |
| Molecularweight | 116.15 |
| Appearance | White to off-white powder |
| Meltingpoint | 215-218°C |
| Solubility | Slightly soluble in water |
| Purity | Typically ≥98% |
| Boilingpoint | Decomposes before boiling |
| Storagetemperature | Store at room temperature |
| Synonyms | 4-Amino-1,2,4-triazole-3-thiol; 3-Mercapto-4-amino-1,2,4-triazole |
As an accredited 4-Amino-4H-1,2,4-Triazole-3-Thiol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White plastic screw-cap bottle, labeled with "4-Amino-4H-1,2,4-Triazole-3-Thiol, 25g," hazard warnings, batch number, and storage instructions. |
| Shipping | 4-Amino-4H-1,2,4-Triazole-3-Thiol is shipped in tightly sealed containers to protect from moisture and light. It is packed with appropriate cushioning to prevent breakage and labeled according to chemical safety regulations. Transportation follows all applicable guidelines for hazardous materials to ensure safe handling and delivery. |
| Storage | Store **4-Amino-4H-1,2,4-Triazole-3-Thiol** in a tightly sealed container, in a cool, dry, and well-ventilated area away from moisture and incompatible substances such as strong oxidizing agents. Protect from light and avoid exposure to excessive heat. Clearly label the container, and comply with local regulations for hazardous chemicals. Use appropriate personal protective equipment when handling. |
| Purity 98%: 4-Amino-4H-1,2,4-Triazole-3-Thiol with 98% purity is used in pharmaceutical intermediate synthesis, where high compound integrity ensures consistent drug formulation.Melting Point 210°C: 4-Amino-4H-1,2,4-Triazole-3-Thiol with a melting point of 210°C is used in high-temperature polymerization processes, where thermal robustness enhances reaction safety and efficiency.Molecular Weight 119.15 g/mol: 4-Amino-4H-1,2,4-Triazole-3-Thiol at a molecular weight of 119.15 g/mol is used in agrochemical formulation, where precise dosage and activity are maintained.Particle Size <20 µm: 4-Amino-4H-1,2,4-Triazole-3-Thiol with particle size less than 20 µm is used in coating additives, where increased surface area improves dispersion and coating uniformity.Solubility in DMSO 50 mg/mL: 4-Amino-4H-1,2,4-Triazole-3-Thiol with solubility in DMSO at 50 mg/mL is used in biochemical assay preparations, where enhanced solubility ensures assay accuracy.Stability Temperature up to 120°C: 4-Amino-4H-1,2,4-Triazole-3-Thiol stable at temperatures up to 120°C is used in catalyst formulation, where stability under operational conditions maintains catalyst performance.HPLC Purity 99%: 4-Amino-4H-1,2,4-Triazole-3-Thiol with HPLC purity of 99% is used in fine chemical synthesis, where high purity minimizes by-product formation.Low Ash Content ≤0.1%: 4-Amino-4H-1,2,4-Triazole-3-Thiol with ash content not exceeding 0.1% is used in electronic material production, where reduced impurities support superior electronic properties. |
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Time in the field brings a close relationship with our products, especially ones like 4-Amino-4H-1,2,4-Triazole-3-Thiol. Over the years, our focus has always centered on stability, purity, and the tangible details that stand out to those who work hands-on in chemical synthesis or production. In our facilities, we've seen this compound serve multiple roles across a spectrum of industries, with each batch revealing more about its distinct characteristics and performance.
The structure of 4-Amino-4H-1,2,4-Triazole-3-Thiol defines its versatility. The presence of both amino and thiol groups on the triazole ring sets it apart from other triazole derivatives. Its formula lends itself to both the design and improvement of complex molecules in several applications, including pharmaceuticals and agricultural chemicals. In manufacturing, the specific arrangement of its functional groups plays into the pathways chemists choose for downstream reactions, offering options for robust synthetic strategies.
Laboratory staff notice the crystalline white or off-white powder format, making handling straightforward. The compound's solubility in polar solvents and its reactivity toward electrophilic agents allow for efficient integration into synthetic cycles. These practical attributes do more than just ease work at the bench—they cut down on wasted time between process steps, smooth the scale-up phase, and support safe, reproducible operations.
A product’s value rises or falls on consistency. Typical batches of 4-Amino-4H-1,2,4-Triazole-3-Thiol from our lines feature high purity, often exceeding 98% as determined by HPLC. Technicians rely on this purity to reduce side reactions and maintain predictable yields no matter the production volume. Moisture content is tightly controlled in the drying phase, targeting less than 0.5% to minimize the chance of hydrolysis or degradation during storage or use. Users in research settings, as well as plant technicians preparing it for further synthesis, appreciate this attention to detail because it minimizes troubleshooting and maximizes productive time.
Particle size and flow characteristics cross our minds each production shift. Some clients request finer powders for rapid dissolution; others want granules for easier weighing and less dust in their facility. Each modification has consequences for reaction rates, extraction, or filtration stages. In many cases, we tailor milling or granulation steps without sacrificing the chemical integrity that researchers depend on.
Many complex molecules start with simple, robust building blocks. 4-Amino-4H-1,2,4-Triazole-3-Thiol stands among these cornerstone compounds. Medicinal chemists often use it to build active pharmaceutical ingredients, benefiting from its nucleophilic sites to anchor new functional groups. It serves much the same role in crop protection products, where developers leverage its structure to improve activity and stability in field applications.
Working directly with agricultural researchers, we've seen how its chemical backbone lends itself to the synthesis of triazole-based fungicides. Its reactivity speeds up the preparation of new candidates, often saving weeks in early-stage R&D. Chemical suppliers and in-house development teams alike find their workflows streamlined when starting with a consistent, reliable base compound.
Lab managers in industrial operations invest in quality because every percentage point of purity means fewer headaches down the road—less reprocessing, more predictable outcomes, and compliance with both local and global regulations. For this reason, specification sheets we maintain go beyond the minimum, answering not just to the needs of paperwork but the real demands of the plant floor and research bench.
We build knowledge with each production lot. Scale alone doesn't guarantee a clean reaction—solvent selection, stirring speeds, and temperature profiles all emerge as variables that must be locked down during optimization. In the factory, small impurities missed during pilot runs can magnify during ton-scale synthesis. Through trial and tight process control, we learned the importance of each intermediate purification, the value of clean solvent recovery, and the stubbornness of sulfur-containing byproducts if conditions drift out of range.
Technicians train their eyes to tiny changes in color or odor. Slight discoloration at one filtrate stage gives an early warning—maybe a trace of oxidation, maybe a solvent quality issue. Our teams test analytical samples side by side with industry standards to verify quality in real-time, not just as an afterthought. This approach keeps recalls and reworks to a minimum while giving customers the straightforward results they promote further down the value chain.
Direct supply from the source gives advantages that only those close to daily operations recognize. We keep direct control of the raw materials, sourcing only those grades proven to minimize metals or other contaminants. Each step in production, from reaction setup to final packing, stays under our roof, giving visibility into traceability. For end users in regulated industries, that means clearer documentation and a defensible audit trail. Researchers see less batch-to-batch drift, and product development teams can directly consult with those who know the pitfalls of large-scale production.
By avoiding layers of resellers, problems with storage, and questions about handling lessens. We store our finished goods under conditions proven to extend shelf life and minimize degradation, based on the real outcomes seen by our quality assurance teams. Logistics plans adapt seasonally or geographically since we know how temperature swings or humidity impact the product over time.
Technical support starts with direct access to our production chemists and analytical staff. End users call with ideas for tweaking the particle size or tapping into a secondary purification—help arrives grounded in the experience of those who run the reactors, not someone who has never stepped into the facility. This on-the-ground expertise helps troubleshooting and speeds up project goals, both for new formulations and scale-ups.
Any manufacturer in specialty chemicals works under multiple regulatory regimes. 4-Amino-4H-1,2,4-Triazole-3-Thiol draws interest from sectors governed by varying standards: pharmaceutical, agricultural, academic, and industrial. We anticipate audits and supply comprehensive documentation packages to fit each client’s unique needs, including detailed Certificates of Analysis backed by validated methods.
Regular testing against ICH and local guidelines for heavy metals, residual solvents, and microbial limits keeps our product aligned with both domestic and international requirements. Our staff continue education and participate in industry forums to stay ahead of unexpected changes in guidance or best practices. This approach prevents costly requalification or batch failures for clients running under strict cGMP or GLP guidelines.
In our plant, Choose a Batch Release process that doesn’t compromise: every lot sees full-panel analysis, not just spot checks. Analysts measure not only the main purity peak but also carefully look for trace-level contaminants. This diligence translates to fewer customer complaints and higher rates of successful end-product releases.
The field of triazole chemistry covers a wide variety of structures and functions. Within this group, small changes make a big impact. We manufacture several triazole intermediates and watch closely how 4-Amino-4H-1,2,4-Triazole-3-Thiol distinguishes itself from its relatives. Compared to many 1,2,4-triazole compounds lacking the thiol or amino substituent, which are often used as stabilizers or simple solvents, this compound’s reactivity profile gears it for more specialized synthesis work.
Chemists looking for a starting point for complex biaryl linkages or sulfur-containing drugs rely on the thiol group’s versatility. The amino site, meanwhile, creates opportunities for reductive amination or acylation not possible with the parent triazole alone. Some competitors offer subvariants—such as only-amino or only-thiol substituted triazoles. Our experience shows the dual substitution balances reactivity and selectivity in downstream conversions, reducing the need for multi-step protection and deprotection strategies.
Not every batch responds the same to changes in process. For example, other triazole thiols, especially those with longer alkyl chains or alternative ring substitutions, may present persistent odor problems, dusting during transfer, or issues with shelf stability. This variant, properly produced, addresses these common pain points and stays manageable in production-scale handling.
We do not operate in a vacuum. Every partnership, from large pharmaceutical companies to academic research groups, grows both our process knowledge and their project pipeline. Customers often reach out with new applications well outside the established playbook—novel functional materials, custom catalysts, even as a linker in polymer technology. With each new demand, our technical and scale-up teams revisit processes, sample different crystallization parameters, and tweak equivalents of reactants to ensure new application goals are met.
Feedback loops run both ways. Clients who report unusual yields, side reactions, or even storage trouble are often our first heads-up to a shift in raw material quality or the subtle drift of a reaction parameter. Our solution comes as both a technical recommendation and a willingness to run validation lots or produce custom specifications. These cycles of open problem-solving reinforce our reputation and deepen trust across the industries we serve.
In several projects, we’ve helped manufacturers cut weeks out of their process development by providing not only a high-purity starting material but also detailed insight into how it responds under the stress of real production. We’ve seen this compound unlock increased throughput in fungicide API development and even solve solubility bottlenecks in dye and pigment manufacturing.
Safety is a continuous dialogue—not a single step in documentation, but a culture. Our on-site protocols guide everything from personal protective equipment for the operators to exhaust systems and wastewater management. Each run of 4-Amino-4H-1,2,4-Triazole-3-Thiol is subject to rigorous Hazard Analysis and Critical Control Points mapping. Critical checkpoints such as dust containment, operator exposure, and heat management prove their value in safer, more reliable output.
Products leaving our facility include lot traceability and, if needed, historical process data on how tightly each batch hugged its target parameters. More than once, clients have leaned on this documentation to pass routine GMP audits or troubleshoot unexpected regulatory questions. We keep these records active, not archived, knowing that unexpected queries can arise years after a project concludes.
Batch records, stability data, and customer feedback form an ongoing quality loop. When we analyze customer complaints, each pattern forms the basis for a root-cause investigation—the end goal is workable solutions that get built into the next iteration of production, ensuring lessons learned carry through to future lots.
As a chemical manufacturer, disruptions ripple directly through production schedules, staff allocation, and inventory planning. Market demand fluctuates for specialty intermediates, and since triazole derivatives serve as backbones for entire classes of chemicals, even small hiccups in supply can stall sizable development programs worldwide.
We forecast demand by working closely with larger clients as well as smaller, agile R&D shops. By segmenting supply—reserving volumes for key players without cutting off smaller innovation-focused groups—we’ve helped maintain continuity even during swings in upstream raw materials or global transport challenges.
Warehouse managers keep watch on temperature and moisture, knowing that even a brief spike can affect certain sensitive lots. Logistics teams rotate stock methodically, applying a first-produced, first-shipped mentality to reduce time-in-inventory. Real-time solutions come into play, such as cold pack inclusion for shipments destined for regions with extended transport times or climate-driven risk.
We recognize that proactive communication trumps surprises. Our clients appreciate real-time updates straight from technicians rather than a call center or ticketing system. If supply disruptions threaten to push a scheduled delivery, they receive detailed options and alternatives. Sometimes that means subdividing shipments or setting up emergency production runs—the result is a more resilient end-user who trusts the flow of information as much as the flow of product.
Expansion of the triazole chemical space ensures that staying static means falling behind. Our research partners keep us sharp, requesting modifications, derivatives, and application-specific blends of 4-Amino-4H-1,2,4-Triazole-3-Thiol. By investing in analytical capabilities—NMR, advanced HPLC, solid-state methods—we maintain a detailed pulse on minor impurities and product evolution over time.
In practice, we regularly evaluate new routes of synthesis with a focus on greener chemistry. Our trials explore catalysts that minimize waste, solvents that reduce environmental load, and reclamation systems that recapture more usable product from process streams. These experiments aren’t just about lab curiosity; they translate to cost savings, lower emissions, and products that better fit into the sustainability goals reshaping every sector of the chemical economy.
We see the steady march of global regulation as a chance to build stronger product lines. Changes in REACH, EPA, and international guides on precursor registration push us to redesign documentation flows, safety profiles, and even support for downstream application registration. Every step towards compliance creates not just a paperwork burden but also a competitive advantage when it means smoother regulatory reviews for our end users.
Broader experience with 4-Amino-4H-1,2,4-Triazole-3-Thiol has shifted our approach from simple producer to invested partner. Project setbacks on the user side often trace back to details set in motion during the manufacturing stage: a poorly chosen filtration aid, a missed trend in trace impurity, a packaging oversight that compromised shelf life. Picking up the phone, talking directly with people who use the product, and hosting site visits—these small efforts uncover nuances that no specification sheet will ever capture.
Over time, our teams become adept at predicting downstream issues and structuring production batches for both cost efficiency and flexibility. Long after a product ships, we track how it fares under storage stress, compounding, and real-use performance. This attention to lifecycle keeps improvements practical and user-focused, never removed from the hands-on chemistry that built the reputation in the first place.
In our journey as a manufacturer, delivering 4-Amino-4H-1,2,4-Triazole-3-Thiol has never been a static proposition. Each order connects human expertise in synthesis, logistics, quality assurance, and regulation, resulting in a product that performs reliably across demanding settings. The users—researchers, production chemists, regulatory staff, and safety officers—define success by results, not promises.
Through cycles of improvement, transparent supply, and the willingness to listen to users’ evolving needs, manufacturers serve as not just suppliers but true partners in each stage of innovation. Every new project, every scaled-up lot, and each process refinement builds on what came before, delivering a chemical that meets standards today and adapts for tomorrow.