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Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate

    • Product Name Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate
    • Alias tert-butyl N-[(4-allyl-5-sulfanyl-4H-1,2,4-triazol-3-yl)methyl]carbamate
    • 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

    296563

    Product Name Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate
    Cas Number NA
    Molecular Formula C11H17N4OS
    Molecular Weight 255.34 g/mol
    Appearance White to off-white solid
    Purity Typically >95%
    Solubility Soluble in DMSO, DMF; low solubility in water
    Storage Temperature 2-8°C (refrigerated)
    Chemical Class Carbamate; Triazole derivative
    Smiles C=CCN1C(=NN=C1CNC(=O)OC(C)(C)C)S
    Inchi InChI=1S/C11H17N4OS/c1-4-5-15-9(13-14-10(15)7-12-11(16)17-8(2,3)6)18/h4,18H,1,5,7H2,2-3H3,(H,12,16)
    Synonyms Boc-N-(4-allyl-5-mercapto-1,2,4-triazol-3-yl)methylamine

    As an accredited Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging is a 25-gram amber glass bottle with a secure screw cap, labeled with chemical name, hazard symbols, and batch details.
    Shipping `Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate` is shipped in tightly sealed, chemical-resistant containers, protected from light and moisture. It is transported according to standard chemical shipping regulations, with appropriate labeling and documentation to ensure safe handling and compliance with international transport laws. Temperature control may be required depending on stability data.
    Storage Store Tert-Butyl N-[(4-Allyl-5-mercapto-4H-1,2,4-triazol-3-yl)methyl]carbamate in a tightly sealed container, protected from moisture and light. Keep at 2–8°C in a well-ventilated, dry area away from oxidizing agents and incompatible substances. Use appropriate personal protective equipment (PPE) when handling, and clearly label all storage vessels to prevent accidental misuse.
    Application of Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate

    Applications of Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate in Industrial Manufacturing

    As the original manufacturer, we supply Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate to specialized industrial sectors that value stability, process control, and compliance in advanced production environments. Our material is integral to multiple chemical manufacturing segments, supporting stringent formulation and system requirements across each stage of downstream integration.

    1. Corrosion Inhibitors for Petroleum Refining

    Refineries adopt this compound for specialized oil phase corrosion inhibition in hydrocarbon processing units, where refined fractions encounter water, hydrogen sulfide, and oxygenated streams. Formulators target high-temperature and high-pressure condensing sections, applying this material directly in blended concentrates to limit ferrous and non-ferrous metal degradation, especially in crude distillation and catalytic cracking circuits where sulphidation risk is present. Laboratory and field evaluation reference weight-loss coupons and surface analysis post-exposure to maintain pipelines and heat exchanger integrity under continuous flow.

    Industry compliance standards

    • API RP 939C (Corrosion Management in Refineries)
    • ASTM D2688 (Standard Test Method for Corrosiveness in Petroleum Products)
    • US EPA TSCA registration
    • REACH Annex XVII (restrictions on use in Europe)

    Typical usage ratio

    • Initial treatment: 10–100 ppm by weight, adjusted via monitoring of iron counts and coupon analysis; higher dosages used for rapid passivation and reduced if system levels stabilize.

    Downstream process integration

    • In-line injection into recirculating streams or blending tanks before entry to overhead circuits or wet gas columns; maintained through automatic dosing systems tied to process analyzers.

    Final product types

    • Finished corrosion inhibitor concentrate
    • Multi-functional treatment packages for refinery desalting units
    • Preservative-treated petroleum middle distillates
    • Pipeline protection fluids

    2. High-Performance Antioxidants for Industrial Lubricants

    Formulators in industrial lubrication design use this triazole derivative for finished synthetic oil blends targeting extended oxidative and thermal stability, especially for turbine, compressor, and hydraulic fluids that run at elevated operating temperatures. The compound acts at a molecular level to neutralize free radicals generated during lubrication cycles, minimizing sludge, varnish, and acid number increase in heavily-stressed systems. Quality control relies on standardized oxidation bench tests and monitoring of acid value and viscosity index in accelerated life-cycle simulations.

    Industry compliance standards

    • ASTM D943 (Oxidation Stability of Steam Turbine Oils)
    • DIN 51517 (Lubricating Oils—Requirements for Industrial Oils)
    • OEM approvals for rotating machinery (Siemens, GE, ABB lubrication specs)
    • ISO 6743-4 (Classification of Lubricants, Industrial Oils)

    Typical usage ratio

    • Active ingredient content ranges from 0.05–0.15% w/w; exact dosing determined by base oil type and planned application temperature, with validation against ASTM stability benchmarks.

    Downstream process integration

    • Blending occurs during base oil compounding, prior to final filtration and packaging; ingredient is dissolved into pre-heated base fluids and blended under agitation to ensure homogeneity before quality assurance batch release.

    Final product types

    • Long-life turbine oils
    • Hydraulic system lubricants
    • Industrial compressor lubricants
    • Extreme condition synthetic gear oils

    3. Copper Passivation Additive in R407C and R410A Refrigerant Compressor Oils

    Manufacturers of refrigeration compressor oils for HFC-based systems use this material to address copper surface reactivity and metallic catalyst deactivation common in sealed rotary and scroll compressor builds. Its selective interaction with exposed copper or copper alloy surfaces inhibits the formation of catalytic decomposition products, thus extending component lifespan and reducing risk of acid formation in refrigerant circuits, especially under intermittent moisture ingress and fluctuating oil temperatures.

    Industry compliance standards

    • ASHRAE 86-2020 (Methods of Testing Materials for Use in Refrigerant Systems)
    • ISO 5149 (Refrigerating Systems—Safety and Environmental Requirements)
    • Manufacturing practices conforming to OEM lubricant and compressor test procedures (Daikin, Carrier, Emerson)
    • UL 1995 (Heating and Cooling Equipment Safety)

    Typical usage ratio

    • Formulators apply at levels of 0.01–0.05% by weight as verified by copper coupon testing; adjustments depend on copper tube surface area and base oil volume under system charge.

    Downstream process integration

    • Direct addition to base lubricating oil post-hydrogenation and before final vacuum dehydration; uniform dispersion guaranteed by in-line blending through high-shear mixers prior to drum filling.

    Final product types

    • Chlorine-free refrigeration compressor lubricant
    • OEM-labeled synthetic POE (polyol ester) and mineral oils
    • Premixed copper passivation service oils for maintenance

    4. Specialized Inhibitor for Closed-Loop Industrial Water Circuits

    This compound features in advanced corrosion inhibitor formulations for closed-loop water systems where control of mixed metallurgy is required, such as in electronics cooling, district heating, and process chillers. By inhibiting galvanic and pitting attack at junctions of steel, copper, and aluminum, operators preserve overall system efficiency and reduce unplanned maintenance. QC protocols include simulated service loop testing against system metal coupons and regular water chemistry monitoring.

    Industry compliance standards

    • EN 14868 (Chemicals Used for Treatment of Water Intended for Human Consumption—Corrosion Inhibitors)
    • BS ISO 11907 (Treatment Chemicals for Industrial Water Systems)
    • RoHS and WEEE directives (non-hazardous input requirements for cooling equipment)
    • U.S. EPA S.183 Safe Drinking Water Act—section concerning use limitations for treated systems

    Typical usage ratio

    • Typical field use: 30–120 mg/L active content, calculated based on water makeup rate, total system volume, and monitored at regular intervals via on-site measurement kits.

    Downstream process integration

    • Dosed via metering pumps into return lines at makeup water entry; integrated into pre-commissioning flush for new installations; ongoing treatment supplement based on analytical residual checks and performance records.

    Final product types

    • Packaged closed-loop circuit inhibitors for HVAC systems
    • Water treatment chemicals for district heating and industrial cooling loops
    • Maintenance service chemicals for equipment protection

    5. Protection Agent in Metalworking Fluid Formulations

    Major producers of semi-synthetic and synthetic metalworking fluids incorporate our triazole carbamate to prevent yellow metal staining and facilitate extended sump lifespans during cold forming, stamping, and cutting of copper or brass components. The product enables minimal interaction with tool surfaces by forming a stable adsorbed film, especially under high agitation and aeration common in recirculating emulsions. Batch QC utilizes chip and coupon tests, colorimetry, and in-use contamination monitoring for iron and copper residues.

    Industry compliance standards

    • ASTM E2594 (Performance of Metal Protection Fluids)
    • OECD Guidelines for testing of chemicals (biodegradability and aquatic toxicity review)
    • REACH registered and listed for metalworking fluid use
    • VDMA 24568 (Fluid Maintenance for Metalworking Fluids)

    Typical usage ratio

    • In concentrates: 0.2–0.7% by weight of final fluid, tuned to copper exposure and intended sump holding period, with reduction possible in soft water or low-pressure systems; validated by field staining and corrosion scoring.

    Downstream process integration

    • Added post-emulsifier blending, prior to packaging and shipping, with process control for mixing temperatures and agitation to achieve full dissolution into base fluid matrix.

    Final product types

    • Metalworking fluid concentrates for non-ferrous machining
    • Machining coolants for copper and brass alloys
    • Inter-operational machine sump additives
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    Certification & Compliance
    More Introduction

    Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate: Innovation at the Core of Fine Chemical Manufacturing

    Shaping Advanced Synthesis through Decades of Know-How

    Working at the manufacturing scale sharpens an appreciation for the subtle interplay between chemistry and real-world utility. Over the years, continuous investment in research and process refinement has shaped our approach to unique compounds like Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate. Delivering this carbamate variant involves more than just precise laboratory work; every batch demands meticulous control over reagent purity, temperature profiles, and isolation steps. What makes this product stand out lies not just in its chemical backbone, but in the hurdles it overcomes on the journey from raw material to finished molecule.

    Production Challenges: Consistency Above All

    Anyone familiar with synthesis knows that triazole derivatives bring their own set of quirks. The combination of a mercapto group with an allyl functionality, stitched onto a triazolylmethanecarbamate framework, delivers both opportunity and complexity. Achieving consistently high yields without sacrificing purity means never cutting corners. Raw material screening starts with incoming lots—every drum, every intermediate, subject to spectral and chromatographic checks most outside the field rarely see. No process line-up skips these control gates.

    Compounds in this class require strict management of moisture and oxygen levels because the mercapto group's nucleophilicity is double-edged: it creates reactivity, but also lays traps through unwanted side reaction pathways. Through constant adjustment and pilot feedback, we found that sealed vessel charging, inerting, and staged addition of the carbamate starting material delivers the right balance. Batch reproducibility settles only after significant tweaks to mixing rates and solvent choices—an area where experience trumps textbook theory.

    Specifications That Matter—Measured Where It Counts

    The integrity of each shipment is anchored in measurable metrics that reflect true product behavior, not just analytical checkboxes. Every production run undergoes HPLC evaluation targeting both main compound concentration and trace side species; we chase single-digit ppm limits for related impurities. Sulfur content, a key indicator for mercapto-containing agents, is checked with both elemental analysis and specific UV methods. We track allyl group integrity using advanced NMR—there’s no shortcut around direct molecular validation. Melting point, moisture, and residual solvent targets rest on the needs of real-world application—not the bare minimums. Feedback from partners in agrochemical and pharmaceutical synthesis tells us where the spec lines must be drawn, and we shift approaches when those field realities change.

    Why Formulation and Preparation Practices Drive End-Use Success

    Adoption of Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate unlocked new steps in multi-stage syntheses. Chemists appreciate this intermediate for its dual reactivity profile—the mercapto group’s affinity for soft electrophiles, paired with carbamate protection that clears in mild base without nucleophilic damage. Processing facilities highlight the stability delivered by the t-butyl carbamate cap; it stays solid under common storage and handling conditions yet unlocks its value when exposed to tailored deprotection environments.

    This has ripple effects in both upstream and downstream segments. In scale-up chemistry, a reliable protective group determines whether a route gets adopted across commercial lines. The details learned from small batch kinetics give way to changes in stirring systems and drying cycles as volumes climb. Only direct, hands-on running—observing residue color changes, filtration rates, and exotherm profiles—shapes adjustments that keep hazards contained and batches repeatable.

    Distinct Functionality: Where This Molecule Shines

    Head-to-head with similar triazole carbamates, this compound carves out a niche by bridging redox potential and nucleophilicity. Strong antioxidant properties trace to the mercapto function, which captures free radicals or scavenges specific contaminants in certain applications. Introduce this molecule into polymer stabilization protocols, and measurements show extended effective shelf-lives compared to control blends. In heterocyclic synthesis, its triazole core creates compatibility with both acid and base reagents, something rare among comparable carbamates that lose function under dual extremes.

    The allyl tail, rarely found alongside carbamoyl-protected triazoles, enables selective functionalization in late-stage process steps. Teams working on active pharmaceutical ingredient (API) assembly use divergent routes—some append further alkyl groups while others strip the allyl under Pd-catalyzed exchanges. Feedback from external process chemists confirms the unique balance of reactivity and robustness offered. This depth of deployment supports application in everything from custom synthesis houses to the exploratory projects of multinational formulators.

    Key Differences from Alternate Offerings

    Many triazole carbamates enter the market in off-the-shelf forms optimized for single techniques—either harsh conditions or tightly regulated environments. Our process, honed from floorside troubleshooting, delivers a product attuned to the requirements of scaled chemistry, not just academic reactions. Lower impurity footprints, batch-to-batch color consistency, and extended shelf-stability set clear boundaries between what we ship and what arrives from suppliers with less control over their upstream sources.

    Compared with generic triazole derivatives, the presence of both the allyl and mercapto groups creates reactivity not achievable with mono-functionalized analogs. This widens the process window—permitting chemists to pivot among deprotection protocols and coupling stages without switching out key intermediates. While other sources fill stopgap needs, our synthesis evolution makes sure each drum supports seamless transitions between pilot, kilo, and full-scale workflows. It’s not marketing—it’s feedback from buyers who see operational cost savings, fewer stoppages, and greater flexibility when making abrupt project pivots.

    Quality Control that Extends Beyond the Certificate

    Real-world chemistry rarely lines up with formula sheets. Buyers, especially those in pharma and fine chemicals, look for more than standard COAs. Absorbance scans and chromatograms are freely shared, and our technical team maintains open logs of any deviations or at-risk lots. Laboratories operating under cGMP or ISO protocols need chain-of-custody records and audit trails that trace from raw source through final barrel—so every operator, every yield anomaly, gets captured. Experience tells us that paired operator and automation oversight, not just lab reports, closes the risk loop.

    Handling requests for micro-scale customization has taught us that subtle shifts—solvent batches, pressure drops, filtration meshes—impact downstream application far more than certificate numbers. By running tail-end verification on retention times and volatility, we spot outliers before they become costly failures for scale-up customers. If a test falls outside our internal benchmarks, the lot gets reworked or scrapped, never passed forward.

    Safe Use and Responsible Manufacturing—A Manufacturer’s Perspective

    Factories, not just laboratories, must manage the realities of chemical exposure and environmental responsibility. From day one, we prioritized closed-system handling when working with mercapto- and carbamate-bearing intermediates. Continuous air monitoring, local exhaust, and remote handling not only support compliance but also keep worker exposures in check. Early in our operation, a minor ventilation oversight triggered a batch-wide sulfur odor incident—learned the hard way that engineering controls aren’t a box on a checklist, but woven into every shift and every maintenance turn.

    Waste minimization goes beyond lab-scale efficiency. We actively reprocess off-spec material, reclaim unusable solvent streams, and divert sulfur-laden byproducts into controlled incineration or downstream valorization. Regulatory audits push us to improve, but the motivation remains personal; our families live near these plants, and our reputation grows on what leaves through the gates. We invest in responsible storage so that transport and transfer from reactor to tote remain leak-free and tracked—each employee sees the outcome reflected in both bottom-line and personal safety records.

    Customer Collaboration—Applied Lessons from Real Users

    Long-standing relationships with early-adopter companies created a foundation of practical insight. One pharma partner found that their former triazole intermediates clumped unpredictably under ambient humidity, jamming pumps and triggering batch losses. They approached us not because of price, but because field techs needed a product line that arrived every time with the same handling and dispersibility properties. Adjustments to moisture control and packaging now shape our standard operating procedures—evidence that user feedback draws a direct line from order desk to reactor floor.

    Agrochemical clients pursue batch flexibility—scaling needs range from grams to ton-scale. They leverage the modularity of the allyl and mercapto groups, building flexibility on the back of steady supply. Reports show that product consistency, not theoretical purity, shrinks the variance in yields downstream. It’s a reminder that what happens inside our walls does not stay there—field-level agronomists or process chemists feel the ripple effects when consistency lapses.

    Practical Application—Making a Difference in Real Syntheses

    On the process line, Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate carved out space as a reliable springboard. It enters multistep syntheses in both pharmaceutical and specialty chemical domains. Teams report robust deprotection using standard base conditions, liberating the triazole backbone without unexpected degradation. This reliability lets chemists move past laborious purification stages that often follow more finicky carbamates.

    Some external partners document direct use in medical and crop protection research. They cite three principal advantages: the merged functionality for late-stage modifications; the thermal and hydrolytic stability imparted by the t-butyl cap; and the clean impurity profile compared to less rigorously managed alternatives. We see our molecule’s true test not in certification marks, but in published scale-ups, third-party batch trial reports, and positive returns from procurement agents who track real manufacturing losses.

    Continuous Improvement—Learning from Each Batch

    No manufacturing process stays static. Data from each production cycle sharpen both the human and the digital sides of the operation. Operators log any deviation in color, granulation, or odor—and the resulting records feed into regular equipment tuning and process revision. When impurity profiles drift even slightly, we re-examine upstream sources and supplier partnerships, taking concrete corrective action rather than waiting for customer complaints.

    Our plant engineers meet quarterly with outside R&D partners to test out new reaction quenching methods and recycling protocols. This open exchange cuts downtime and broadens both our technical and problem-solving horizons. By inviting critique and reporting near-misses or minor defects, we raise the collective bar; industry-wide quality cannot rise unless daily lessons push continual upgrade, not complacency.

    Looking Forward—Supporting Progress in Customer Innovation

    Each step in manufacturing Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate reflects a belief that success comes from the intersection of product performance and operational transparency. Our process bridges expert chemistry with seen-it-all floor experience—two halves necessary for scalable, trouble-free synthesis.

    Greater demand for differentiated intermediates in pharmaceutical and specialty materials circles back to one question: can a supplier sustain quality at scale, batch after batch? We answer that with continual capital investment, rigorous training, and a culture that values honest reporting over appearance. We document every improvement, respond fast to on-the-ground user feedback, and treat new application challenges as opportunities to revisit and improve chemical practice.

    Conclusion—Reliability Rooted in Real Manufacturing

    Tert-Butyl N-[(4-Allyl-5-Mercapto-4H-1,2,4-Triazol-3-Yl)Methyl]Carbamate represents more than a chemical formula; its value grows from a deep-rooted manufacturing commitment. Each shipment carries the imprint of broken-in process lines, real hazard prevention, and daily problem-solving. We ship not just a specialty compound but a practiced pledge—backed by human experience, measurable improvement, and direct responsibility—for every customer, every time.