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5-Amino-2-Methyl-2H-Tetrazole

    • Product Name 5-Amino-2-Methyl-2H-Tetrazole
    • Alias 5-AMT
    • Einecs 210-406-1
    • 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
    VTB
    Specifications

    HS Code

    736430

    Chemicalname 5-Amino-2-Methyl-2H-Tetrazole
    Casnumber 942-50-9
    Molecularformula C2H6N4
    Molecularweight 86.10 g/mol
    Appearance White to off-white crystalline powder
    Meltingpoint Approx. 200 °C (decomposition)
    Solubility Soluble in water
    Density 1.55 g/cm³
    Boilingpoint Decomposes before boiling
    Storagetemperature Room temperature, in a dry place

    As an accredited 5-Amino-2-Methyl-2H-Tetrazole factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The chemical is supplied in a 25g amber glass bottle with a secure screw cap, labeled with compound name, formula, and warnings.
    Shipping 5-Amino-2-Methyl-2H-Tetrazole is typically shipped in sealed, chemical-resistant containers, protected from moisture and direct sunlight. It is classified as a hazardous chemical, so shipping complies with relevant regulations, such as DOT, IATA, or IMDG. Proper labeling, documentation, and safety data sheets accompany the shipment for secure transportation and handling.
    Storage 5-Amino-2-Methyl-2H-Tetrazole should be stored in a tightly sealed container, away from direct sunlight, moisture, and sources of ignition. Keep it in a cool, dry, well-ventilated area, preferably under inert gas to prevent decomposition. Avoid storing with strong oxidizers or acids. Proper labeling and secondary containment are recommended to minimize risk of accidental exposure or contamination.
    Application of 5-Amino-2-Methyl-2H-Tetrazole

    Applications of 5-Amino-2-Methyl-2H-Tetrazole in Industrial Manufacturing

    As the original manufacturer of 5-Amino-2-Methyl-2H-Tetrazole, we supply high-purity material precisely suited for advanced energetic, pyrotechnic, specialty chemical, and gas generation sectors. This section provides a technical overview of its material integration in four established downstream applications, focusing on process detail, industry criteria, dose planning, and finished product types as observed in real-world production environments.

    1. Explosive Initiator Formulations

    High-energy industries incorporate this tetrazole derivative into initiator components for non-primary initiating charges, favored for its reliable detonation threshold and defined combustion characteristics. Formulators reference it as a key constituent in bridgewire-based electric detonators and actuation units where high performance, low toxicity, and thermal sensitivity are required. Compatibility with lead-free, environmentally regulated charge systems drives its adoption as a substitute for lead azide or other traditional explosive primers.

    Industry compliance standards

    • United Nations Recommendations on the Transport of Dangerous Goods (UN Manual of Tests and Criteria, Section 13)
    • U.S. ATF Federal Explosives Regulations (27 CFR Part 555)
    • OSHA 1910.109 - Explosives and Blasting Agents
    • REACH Regulation (EC) No 1907/2006 - Registration and Authorization for energetic chemicals

    Typical usage ratio

    • 0.5% – 3% by weight in composite initiator blends; proportion adjusted to meet performance thresholds specified in detonator function testing and sensitivity calibration

    Downstream process integration

    • Blending in solvent phase with oxidizer matrices and binding agents under controlled temperature; subsequently loaded into cap assemblies during detonator manufacturing, followed by automated pressing and encapsulation

    Final product types

    • Lead-free electric detonators
    • Bridgewire initiator units
    • Specialty safety delay detonators
    • Micro-actuation squibs for automotive and aerospace systems

    2. Gas Generator Propellant Systems

    Automotive safety module and precision inflation device producers formulate propellant grains using this tetrazole for its high gas release yield, stability, and low toxic residue. The material serves as a nitrogen-rich fuel in airbag and seatbelt pretensioner systems, providing rapid, controlled expansion required by modern restraint standards. Downstream customers value the absence of metallic sensitizers, which reduces post-deployment cleanup and environmental footprint.

    Industry compliance standards

    • ISO 26262:2018 Road Vehicles – Functional Safety
    • FMVSS No. 208 - Occupant Crash Protection
    • UN Regulation No. 14 - Safety-belt anchorages
    • Automotive Industry Action Group (AIAG) CQI-17 Special Process: Pyrotechnic Devices

    Typical usage ratio

    • 2.5% – 10% by composition in nitrogen gas-generating propellants; selection based on inflator size, pressure curve specification, and residue profile targets

    Downstream process integration

    • Integration during slurry homogenization and propellant extrusion; material introduced alongside oxidizer and plasticizer, further consolidated, granulated, and pelletized before cartridge assembly

    Final product types

    • Automotive airbag inflator charges
    • Seatbelt pretensioner initiators
    • Micro-gas generators for aerospace ejection modules
    • Miniature rocket gas generators for industrial safety devices

    3. Pyrotechnic Delay Compositions

    Manufacturers of time-delay elements utilize this ingredient in delay charge formulations to engineer repeatable delay intervals and burn characteristics. Its consistent calorific value supports precision in timing fuses for pyrotechnics used in mining, demolition, and specialty signaling devices, often replacing or supplementing conventional carbons or azides to meet contemporary safety and performance codes.

    Industry compliance standards

    • EN 13763-27:2003 Non-electrical detonators and delay devices
    • CFR 49 Part 172 – Transportation of Hazardous Substances (special provisions for pyrotechnics)
    • IMDG Code – International Maritime Dangerous Goods Code (for shipment)
    • Defence Standard (UK) 86-21, Issue 6 – Delay elements

    Typical usage ratio

    • 3% – 8% in total delay charge mass, tuned according to ignition system type, desired burn duration, and required resistance to environmental humidity

    Downstream process integration

    • Powder blending under dry-room microclimate, followed by compacting into delay tubes; precise dosage metering ensures linear burn rate matching design tolerances for blasting or signaling products

    Final product types

    • Non-electric mining delay detonators
    • Time-delay signal flares
    • Pyrotechnic relay connectors for demolition sequencing
    • Fused timing elements for commercial pyrotechnic displays

    4. Pharmaceutical Synthesis Intermediates (Specialty)

    This compound functions as a tetrazole ring building-block in the synthesis of select active pharmaceutical ingredients (APIs), especially in the development of drugs requiring nitrogen heterocycles for controlled release or metabolic stability. Its application remains limited and tightly regulated within pharmaceutical process R&D lines, subject to full traceability and impurity profile management in accordance with global GMP standards.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • US FDA cGMP 21 CFR Parts 210 & 211
    • European Pharmacopoeia (Ph. Eur.) – Tetrazole derivatives monographs (where applicable)
    • EudraLex Volume 4 – GMP Guidelines for APIs

    Typical usage ratio

    • Variable, used stoichiometrically (0.1 – 1.0 molar equivalents) in targeted organic synthesis steps; ratio depends on route selectivity and overall API target mass

    Downstream process integration

    • Direct addition into heterocycle construction or substitution reactions during pilot or commercial scale API synthesis under anhydrous, inert atmosphere; followed by isolation, purification, and in-process QC sampling

    Final product types

    • Nitrogen-heterocycle pharmaceutical intermediates
    • Specialty APIs with tetrazole-functional motifs (e.g., certain antihypertensive agents, investigational compounds)
    • Reference standard intermediates for pharmaceutical R&D
    • Custom intermediates for contract development and manufacturing organizations (CDMOs)
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    Certification & Compliance
    More Introduction

    5-Amino-2-Methyl-2H-Tetrazole: Hands-On Experience and Practical Insights From the Factory Floor

    Working With 5-Amino-2-Methyl-2H-Tetrazole Every Day

    In our facility, 5-Amino-2-Methyl-2H-Tetrazole stands out as more than just a code in our production schedule. Chemists here examine, refine, and handle this compound every week, giving us a real sense of its properties, fine points, and value. With the formula C2H5N5, this white crystalline powder acts both as a building block and a specialty additive that gives formulators flexibility and precise control over their compositions. Among nitrogen-rich chemicals, it fills a unique space between high-energy material precursors and safer substitutes targeting environmental responsibility.

    Specifications Backed by Practical Experience

    On the technical side, the model number we assign reflects the purity level we guarantee from our batch-controlled processes. Years of tuning reaction temperatures and solvent ratios let us repeatedly reach purity exceeding 98%. Lab teams at our facility run HPLC and FTIR checks right after synthesis, so customers don’t have to second-guess batch consistency or deal with unpredictable contaminants. Granule size is tightly regulated, whether for fine powder requests or larger particle sizing sometimes used in energetics. That attention to detail doesn’t come out of a catalog; it comes from repeated feedback cycles between our shop floor, R&D chemists, and the engineers who use these batches on their own lines.

    The Chemistry at the Core: What Sets 5-Amino-2-Methyl-2H-Tetrazole Apart

    Handling this compound year after year reveals advantages and critical differences from related tetrazole products. Unlike unsubstituted tetrazoles, adding the methyl group at the 2-position and the amino group at 5 brings improved solubility and handling characteristics. Our teams have found in practice that its reduced hygroscopicity means less caking and easier processing even in fluctuating humidity, making it more reliable than plain tetrazole under real production conditions. Processors looking for a balance of reactivity and storage stability recognize that trade-off instantly on their own lines.

    The unique substitution pattern gives this material a softer thermal decomposition curve compared to more substituted tetrazoles or triazoles. That means in synthesis lines or explosives formulations, the risk of runaway decomposition lowers. Safety teams at customer sites report smoother outcomes during scale-up, allowing for both energy transfer and controlled release scenarios.

    Applying Knowledge Earned on the Line

    Users involved in synthesis of nitrogen-rich compounds, energetic materials, and specialty chemicals value 5-Amino-2-Methyl-2H-Tetrazole’s straightforward reactivity. Our partners making gas-generating compositions and pyrotechnics note its clean burn profile with minimal residuals, reducing after-reactions or clogging in micro-initiators. Formulating solid propellant mixes proves less troublesome since this compound blends evenly and sustains batch homogeneity without unpredictable clumping or moisture uptake.

    Some customers ask for customized material—ultra-fine versus coarse particle or special surface treatments. Over time, our plant’s batch flexibility has allowed us to quickly tailor to those needs without delays or supply risk. Chemistries in the pharmaceutical sector sometimes need high-purity forms for tetrazole ring-opening reactions or as a precursor for complex heterocycles. Our rigorous filtration and drying setups let medicinal chemists move their projects forward without halts for repeated purification. Industrial coating producers and colorant formulators have found 5-Amino-2-Methyl-2H-Tetrazole adds stability where hydrolyzable nitrogen donors would fail, directly impacting final appearance and reliability of advanced paints and coatings.

    In analytical labs or specialty manufacturing, minor impurity traces can spoil runs or bias results. From our repeated feedback and documentation, customers in research and diagnostics trust our batches to produce clear results the first time, avoiding expensive reruns or wasted effort. These real-world benefits have come to us through ongoing discussions with peers and colleagues, not abstract promises from a spec sheet.

    Differences From Other Tetrazoles—Why It Matters

    Comparing this amino-methyl tetrazole to well-known analogues like 1H-tetrazole and 5-methyltetrazole, the distinctions affect real-world performance and reliability. Many users share stories of 1H-tetrazole’s tendency toward high moisture uptake and resulting storage hazards. Our own storerooms have shown how quickly pure tetrazole cements into hard blocks, raising handling concerns for everyone along the supply chain. Swapping to 5-Amino-2-Methyl-2H-Tetrazole all but eliminates that trouble, saving on downtime and waste.

    In high-performance energetics, methyl and amino substitution eases crystal packing and boosts compatibility with binders in polymer-bonded explosives. Material technologists watch that closely, since cocrystal formation or incompatibility with binders can make or break large-scale production. Reports from ammunition and mining clients point to this compound’s reliable ignition energy and smooth dispersion, which we’ve tracked batch-to-batch through focused quality testing. Both the analytical data and hands-on results point to more than just a subtle chemical shift—it’s a material difference that shapes reliability for safety-focused users.

    Listening to Users and Addressing Practical Challenges

    Among the most common requests we receive involves moisture stability and long-term storage. Unlike some specialty organics, 5-Amino-2-Methyl-2H-Tetrazole’s crystalline structure resists deliquescence, meaning our clients routinely report longer shelf life and less product waste. Site audits and warehouse checks verify the lower rates of caking or clumping. For industries where ingredient reliability means deciding between profit and scrap, this single property shapes purchasing choices again and again.

    Several partners have shared difficulties in scaling up processes with standard tetrazoles, particularly as accidental exotherms or gas formation become dangerous at larger scales. Our own pilot reactors have proven that the modification at the 2- and 5-positions allows more forgiving thermal profiles, with reduced hazard of unplanned decomposition. This means safer scale-up for users moving from lab to pilot or production scale, shortening development timelines and lowering risk. We have also seen that batch-to-batch consistency enables process engineers to lock in process controls without having to adjust for unpredictable fluctuations in purity or physical properties.

    In laboratory and industrial practice, small impurities or variable hydration may lead to erratic reactivity, especially in fine chemical synthesis. Purification after delivery adds days to the development schedule and ties up expensive equipment. Our controlled drying and packaging, honed through quality audits and decades of plant experience, ensures low moisture and stable free-flowing powder. Several pharmaceutical partners note this difference, reporting successful scale-ups and fewer false starts thanks to the dependable physical and chemical consistency.

    Supporting Industry Progress and Environmental Responsibility

    The movement toward safer, less environmentally persistent chemical ingredients continues to gain momentum across sectors. Regulatory changes and supply chain demands accelerate the search for reliable, less hazardous alternatives to legacy nitrogen heterocycles. At our factory, we track downstream regulatory trends as closely as we track batch yields. A steady stream of feedback from R&D partners, formulation scientists, and regulatory compliance teams shapes our approach to process design and waste management.

    In comparison to conventional energetic materials and nitrogen donors, 5-Amino-2-Methyl-2H-Tetrazole balances energy content with improved environmental and toxicological profiles. As experienced hands in the big tank room have seen, this compound demonstrates lower volatility and reduced offgassing compared to nitrosamine or isocyanate-based additives, which require extensive fume handling or special PPE. This eases the burden on environmental controls and offers a more streamlined compliance path for those operating within strict safety and discharge parameters.

    In real terms, this means chemical companies and users can move toward greener initiatives without sacrificing functionality or performance. The thermal and hydrolytic stability of this material minimizes introduction of unforeseen risks downstream, saving both time and operational costs. That story plays out in routine testing, customer audits, and real conversations with chemical purchasing managers demanding proof before commitment. So practical sustainability gains are not just theoretical—they are seen on loading docks and in ledgers.

    Real-World Applications: Feedback From the Field

    The versatility of 5-Amino-2-Methyl-2H-Tetrazole surfaces across a range of real projects. In automotive gas generator fabrication, factory teams highlight its reliable ignition and uniform gas evolution, which translates into safer, more predictable inflation rates for airbags. This feedback doesn’t come from a glossy sales brochure—field engineers relay those exact results to us after quarterly validation runs. The focus on ignition reliability, repeatability, and wide operating temperature range matters most at scale, where inconsistencies lead to recalls or warranty headaches.

    In solid rocket propellants and pyrotechnic mixes, energetic material formulators have put this compound to the test for stable burn rates and compatibility with popular binders like HTPB and epoxy. We’ve watched teams tweak compositions using data from our analytical lab and their in-house runs, seeing smoother processing and less batch rework. Explosives applications stress consistency batch-to-batch down to the ppm level; our process controls allow these professionals to proceed with confidence and keep their supply chains moving without costly interruptions.

    Specialty chemical synthesis teams cite another use: the ability to reliably introduce tetrazole rings into more complex heterocyclic systems, for pharmaceutical intermediates or high-value coatings. The predictable reactivity of the amino and methyl groups lets chemists steer subsequent steps with a tighter margin for error. This makes scale-up more predictable and avoids project shutdowns after discovering a poorly behaving precursor halfway down a multimillion-dollar campaign.

    Quality, Trust, and the Value of Factory Transparency

    Trust builds slowly in the chemical business. Most of our partners look well beyond a product certificate or third-party lab report before offering a purchase order. The real world rarely rewards shortcuts or half-promises. We’ve learned, after years in the trade, that transparency and direct problem-solving matter more than ever. By sharing exacting production practices, routine analytics, and open-door audits with our customers, we’ve become more than just a supplier—we’re a real part of the extended value chain.

    Our long-term commitment to rigorous raw material sourcing, controlled syntheses, and detailed final inspection means repeat customers know what to expect, not just once but year after year. Team members from production, QA, and shipments meet regularly to rethink and adjust practices in response to first-hand results and end user feedback. This has helped us catch challenges early, from unexplained particle agglomeration to rare surface discoloration. That kind of practical oversight doesn’t get lost in paperwork or forgotten after the sales call—it’s how we stay accountable and give our word real weight.

    Looking Forward: Evolving With Science and Marketplace Needs

    As regulatory landscapes shift and technical demands evolve, the lessons we draw from making and delivering 5-Amino-2-Methyl-2H-Tetrazole keep sharpening our focus. The materials science world rarely stays still; new applications and formulation strategies crop up every season. By tracking not only batch yields but also process emissions and waste streams, our plant adapts to the tighter controls customers and regulators expect today.

    Customers bring us fresh problems—requests for trace-level impurity control, documentation to satisfy ever-tighter quality regimes, or solutions to sourcing disruptions caused by global logistics swings. Our history of hands-on process improvement gives us a head start in tackling these challenges. Strong relationships with raw material suppliers let us ride out shortages and keep customer lines moving. Technology investments in process automation and advanced analytics deliver tighter controls on batch uniformity and performance.

    Listening isn’t a formality; it’s what keeps us honest and alert to new risks and opportunities. We keep gathering field reports, running in-depth tests at customer sites, and updating production protocols to outpace those shifting needs. That approach has proven its worth, whether the challenge is reducing environmental footprint or meeting new global safety certification standards.

    Final Thoughts Drawn From Experience

    Everything we know about 5-Amino-2-Methyl-2H-Tetrazole reflects not just chemical literature but thousands of hours on the line, countless meetings with end users, and the unpolished reality of making and delivering specialty chemicals in a fast-moving world. We don’t claim universal solutions, but the hands-on lessons we gain every season shape each decision, from raw material selection to the finely tuned specifications we offer.

    The deep value of this compound lies in its blend of chemical performance, handling safety, and batch reliability. Familiarity with its properties isn’t just technical—it’s built on troubleshooting, direct observation, and refining production methods under real-world pressure. Those practical advantages shape customer trust, safety outcomes, and application performance at every link in the value chain. We continue to invest in people, process, and infrastructure to secure that edge, knowing the next improvement often comes from what we learn—together—on the production floor and beyond.