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Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide

    • Product Name Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide
    • Alias Metamitron
    • Einecs 401-490-7
    • 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
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    Specifications

    HS Code

    721504

    Chemical Name Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide
    Molecular Formula C12H20N3O
    Molecular Weight 222.31 g/mol
    Appearance White to off-white crystalline solid
    Melting Point 98-102°C
    Solubility Soluble in organic solvents such as ethanol and DMSO
    Storage Conditions Store in a cool, dry place; keep container tightly closed
    Purity Typically ≥98% (assay by HPLC)
    Synonyms Isopropyl-alpha-(2-methylhydrazino)-p-toluamide
    Stability Stable under recommended storage conditions
    Hazard Statements May cause skin and eye irritation

    As an accredited Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide 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 100g amber glass bottle, labeled with chemical name, hazard symbols, batch number, and safety instructions in bold font.
    Shipping Shipping of Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide requires packaging in tightly sealed, chemical-resistant containers, compliant with local and international regulations. Label as hazardous if applicable. Protect from moisture, heat, and direct sunlight. Ensure documentation, including Safety Data Sheets (SDS), accompanies the shipment. Handle and transport using appropriate personal protective equipment (PPE).
    Storage Isopropyl-α-[2-Methylhydrazino]-p-Toluamide should be stored in a tightly sealed container, away from light, moisture, and incompatible substances such as oxidizers. Store at a cool, dry, and well-ventilated location, ideally at 2–8°C (refrigerated). Ensure proper labeling and secure storage to prevent unauthorized access. Handle under a fume hood and use appropriate protective equipment to avoid exposure.
    Application of Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide

    Applications of Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide in Industrial Manufacturing

    Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide supports multiple advanced chemical synthesis applications in regulated industrial segments. Our manufacturing quality enables reliable performance for specialized downstream formulations. We highlight major application fields served by large-scale producers who require strict quality, traceability, and process consistency.

    1. API Intermediate Production for Oncology Small Molecules

    Pharmaceutical manufacturers utilize Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide as a functional intermediate in the synthesis of select anti-tumor active ingredients. Its structural contribution supports the targeted design of hydrazino-modified scaffolds for specialty cytotoxics and kinase inhibitors. Customers formulate within DMF-registered processes, with stringent tracking of impurity profiles. Chemical engineers optimize reaction sequences by precise stoichiometric control, ensuring consistent lot-to-lot purity and reactivity. Downstream integration requires full-scale documentation of the material’s role as a building block in the GMP environment.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • US FDA 21 CFR Part 211 and 210
    • EU EudraLex Volume 4, Part II
    • Applicable Drug Master File (DMF) registration, if used in regulated supply

    Typical usage ratio

    • 0.08–0.20 molar equivalents per downstream batch, adjusted to synthesis pathway
    • Ratio determined by specific API scaffold design and targeted step conversion efficiency

    Downstream process integration

    • Added at defined intermediate coupling or cyclization stage
    • Used in moisture-controlled reactors to limit hydrazine decomposition
    • Tracked by LC-MS or HPLC at key purification checkpoint

    Final product types

    • Active pharmaceutical ingredient (API) for injectable oncology drugs
    • Chemical reference standards used in clinical pharmacology studies
    • Precursor lots for pilot and commercial GMP manufacturing campaigns

    2. High-Performance Organic Pigment Manufacturing

    Colorant manufacturers incorporate Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide in the synthesis of functionalized hydrazone pigments and p-toluamide derivatives. The raw material’s reactivity promotes desired chromophore extension, enhancing color intensity and solvent compatibility in formulated masterbatches. Fine chemicals teams monitor batch variability and reaction yield, validating each lot’s specification for reproducibility. Process controls ensure alignment with RSLs and downstream coatings application tolerances.

    Industry compliance standards

    • EU REACH substance registration (EC 1907/2006)
    • EN 71-3 Toy Safety (where relevant, for pigment in children’s products)
    • Chemical Inventory: TSCA (USA), IECSC (China), DSL (Canada)
    • Brand-specific Restricted Substances Lists (RSLs) for pigment

    Typical usage ratio

    • 5–15% of total pigment synthesis input mass, based on chromophore design
    • Exact percentage tuned for required final hue and lightfastness properties

    Downstream process integration

    • Charged during condensation step forming hydrazone or modified azo pigment core
    • Quality team issues batchwise COA to pigment plant customer
    • Product enters pigment finishing lines for dispersion and granulation

    Final product types

    • Powdered organic pigments for plastics and coatings
    • Color concentrates for masterbatch polymer compounding
    • Special effect dispersions for high-performance inks

    3. Specialty Agrochemical Synthesis

    Leading agrochemical producers select Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide for use in post-patent synthesis of herbicidal hydrazide compounds and protective seed treatment actives. The material’s unique substituent pattern provides both target selectivity and chemical stability under plant protection formulation conditions. Process engineers enforce trace-level impurity monitoring and integrate with in-house toxicological review. Each commercial campaign requires traceable review of specification and batch qualification.

    Industry compliance standards

    • FAO/WHO Specifications for Agricultural Pesticides
    • US EPA Pesticide Registration: 40 CFR Part 158
    • EU Regulation (EC) No 1107/2009 (Plant Protection Products)
    • Global GAP and ISO 9001 traceability standards

    Typical usage ratio

    • 2–7% of active ingredient synthesis charge, application-specific
    • Function of desired crop selectivity and solubility requirement

    Downstream process integration

    • Introduced at hydrazinolysis or coupling stage, under inert atmosphere
    • Material validated by GC and in-house residue analysis
    • Used prior to final crystallization or formulation for shelf-stable seed coatings

    Final product types

    • Herbicidal active technical concentrate
    • Seed treatment coatings with defined release profiles
    • Pre-emergence weed control granules

    4. Electronic Intermediate for OLED Material Synthesis

    OEMs and advanced materials firms require Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide in specialized synthesis of electron-transporting materials for next-generation organic light emitting diodes (OLEDs). The hydrazino functionality allows for high electron mobility and thermal stability in high-purity device layers. Our production line maintains trace metal and ionic contaminant control, critical for downstream photonic and display device yields. Final application involves tight integration with device scale-up QC and lot tracing.

    Industry compliance standards

    • RoHS Directive (2011/65/EU) compliance for electronic components
    • IECQ QC 080000 (Hazardous Substance Process Management)
    • JIS C 61244 (OLED device reliability, Japan)
    • ISO 14001 for environmental management in device fabrication

    Typical usage ratio

    • 0.5–1.8% of total organic mass in device precursor formulation
    • Adjusted based on target quantum efficiency and emission profile

    Downstream process integration

    • Fed into solution polymerization or vacuum deposition precursor preparation
    • QC through high-purity filtration and NMR confirmation
    • Transports into device active layer by spin-coating or vapor phase transfer

    Final product types

    • Electron transport layers (ETLs) for panel-grade OLED displays
    • Organic photonic materials for flexible display screens
    • Component monomers for OLED device stack integration

    5. Fine Chemical Synthesis — Analytical Reagent Manufacturing

    Analytical chemistry supply chains use Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide to produce specialty derivatization reagents for chromatographic and spectroscopic sample analysis. Its structural specificity enhances selectivity in high-sensitivity detection protocols for environmental and pharmaceutical labs. Manufacturers ensure stringent control of trace organic impurities and water content, supporting reliable downstream certificate of analysis in regulated markets. Batch records track every synthesis stage for audit-readiness by institutional laboratories.

    Industry compliance standards

    • ISO 17034 Reference Material Producer certification
    • ISO/IEC 17025:2017 for laboratory testing and calibration
    • USP and Ph. Eur. specifications, where relevant for analytical reagents
    • GLP documentation for laboratory reagent traceability

    Typical usage ratio

    • 0.02–0.15 molar equivalents in synthetic protocol, tailored to derivatization yield
    • Range defined by reactivity toward target analytes and method validation requirements

    Downstream process integration

    • Synthesized into labeling or derivatization agents for LC, GC, or MS protocols
    • Monitored for purity by NMR, HPLC, and residual metal analysis prior to release
    • Final quantities pre-packed in certified laboratory packaging for global shipment

    Final product types

    • Certified analytical reagents for pharmaceutical QC
    • Chromatographic derivatization kits
    • Reference standards for environmental and food testing laboratories
    Free Quote

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    Certification & Compliance
    More Introduction

    Understanding Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide: Precision Matters

    Every new specialty chemical we launch comes out of years of close-up lab work and real feedback from our partners. Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide ranks among the more responsive molecules our team has developed for modern synthetic applications. We are not talking about a basic chemical here. This compound understands demanding reaction environments and has proven itself in some challenging routes where mainstream solutions come up short.

    Drawing the Line Between Utility and Innovation

    Plenty of folks searching for a new intermediate or functional additive will recognize parts of this name. There’s the backbone of isopropyl, the reactivity of a methylhydrazine group, and a para-substituted toluamide tail—all built into one molecule. If you work in pharmaceutical R&D or specialty material synthesis, the union of these features delivers a new degree of control in selective transformations. Our synthesis process delivers consistent isomeric purity and minimizes batch-to-batch variability, addressing long-standing frustrations among those who feel at the mercy of unpredictable feedstock.

    What Sets Our Model Apart

    We have leaned into the details that matter once reactions move out of the literature and into the plant. Laboratory chemistry often overlooks what happens in scale-up—fouled reactors, inconsistent yields, or impurities sneaking in along the way. This model of Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide, with a focus on para substitution, achieves high thermal and chemical stability. In the real world, it resists hydrolysis through extended batch processes and shows resilience as a coupling partner under aggressive catalytic conditions. We have listened to chemists frustrated with tars and sidestreams gumming up filtration lines, and our team has engineered purification and drying steps that address exactly those problems.

    Real-World Use: Not Just an Intermediate

    Down on the production floor, nobody has time for finicky reactions. This compound rises to the challenge in applications ranging from small molecule synthesis to agricultural research. Synthetic chemists favor it for controlled N-functionalization reactions, where traditional hydrazine derivatives can go wild and throw off a shelf full of byproducts. The isopropyl group moderates reactivity, keeps side reactions in check, and delivers a precision tool for building complex molecules. Over the years, we have seen this material work its way into both drug development and the fine chemicals sector, providing value not just for what it builds but for what it leaves behind: purity, scalability, and less downstream cleanup.

    A few years ago, a client in advanced materials remarked about the headaches caused by unstable hydrazino intermediates—unpredictable handling, caustic fumes, safety issues, and yields that went sideways above 1 kg. They brought us in to co-design a process with our Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide as a controlled-release hydrazine source. Toggle the temperature, dial in the moisture content, and the process ran smoothly. That story mirrored others we’ve heard in scale-up environments where safety, reliability, and process compliance do not just tick boxes but enable whole new routes to market.

    Specifications Forged by Daily Use

    Some manufacturers rattle off numbers without explaining what they mean. We have put this molecule through its paces, so every batch ships with real-world specs: melting point honed for even drying, low water content to avoid hydrolysis, and genuine lot-to-lot homogeneity. Our team emphasizes crystalline morphology, not out of a sense of habit, but because a decade of repeat customers have shown us that one ugly batch can derail a month’s worth of production.

    No one operates in a vacuum, so we have kept a transparent line with customers and regulators from the start. Purity isn’t just a marketing word—we specify trace-level detection for common residuals and provide access to chromatograms on request. The chemical’s storage profile came out of years spent listening to users in hot and humid locations, which prompted us to rethink packaging and advocate for smaller packaging units. We’ve heard from field chemists hauling drums across the tropics who now open their containers to find solid, stable product ready for new reactions.

    Learning From the Field: Common Feedback and Challenges

    Every compound finds its own audience and faces its own resistance. A lot of customers tell us that typical hydrazine-based reagents are too aggressive and tend to bring out decomposition or violent off-gassing in sensitive systems. With this isopropyl variant, users consistently report smoother handling and lower risk of “runaway” scenarios, even if process controls suffer a hiccup. We spent significant time testing bench-to-plant transitions in our own facility to make sure reactivity stays within controllable limits.

    Another recurring story involves supply chain interruptions, especially as global logistics have thrown up new headaches. Our direct-from-maker operation allows end users to troubleshoot quality issues directly with our technical team, cutting the endless loop through distributors who may not know the answer. We keep close tabs on both raw material sourcing and finished good shipments so our customers avoid the painful delays that come with indirect channels.

    Chemists using legacy toluamides and classic hydrazine derivatives often wrestle with multi-step purification. Someone running dozens of columns and stripping off impurities for days is going to value a cleaner starting material at the outset. Our Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide stands apart because it inherits the selectivity of its hydrazino motif but tones down the volatility and uncontrolled side reactions that drive up waste and batch failures. One client documented a ten percent cut in time spent on downstream separations simply by swapping out their old intermediate for our tailored profile.

    Filling the Gaps: Where Competing Products Fall Short

    Legacy products sometimes feel like they haven’t kept up with how the field works today. We see this specifically with generic hydrazine and methylhydrazine salts—sure, they are cheap and available from multiple sources, but on a real plant line, you are rolling the dice with every shipment. Impurity drift, moisture creep, or particle caking can add up to ruined reactions and unhappy safety officers. Some competitors treat their offering as “good enough for non-critical applications,” but our customer base has pushed for a higher and more predictable bar. We adopted in-line drying and filtration steps not just for regulatory sign-off but to head off process headaches before they hit your reactors.

    We also take detailed feedback and use it to steer product development. Several years ago purchasers in biopharma started flagging excessive heavy metal residues in other commercial batches. Our upstream process switched over to a purified solvent system. As a result, our recent lots show consistently lower metal load, which means fewer headaches at the next regulatory inspection. These details matter in any regulated market, and we believe the difference between passable materials and those worthy of trust is in careful process design, not just paperwork claims.

    Supporting Real Solutions

    Process science often uncovers practical pain points that do not get attention in marketing brochures. We try to solve for these issues long before a batch leaves our gates. One example stands out: temperature drift during transit frequently damaged classic hydrazino reagents sold in bulk. In response, we moved to tamper-evident, moisture-resistant packaging and reduced lot sizes to prevent off-specification material from ever reaching the client. Real stories from the field keep us vigilant about continuous improvement.

    At scale, even moderate improvements in stability or purity mean real savings—not to mention fewer crisis calls on the night shift. We have worked alongside plant engineers during process rollouts to map failure points and reroute storage protocols for this specific molecule. Every incremental advance — like dialing in precise isomer differentiation, streamlining our own synthesis, or moving up purity levels above industry minimums — grows out of open collaboration with those putting the chemical to work.

    Keeping Up With Regulations and Market Demands

    Experience tells us regulations move quickly, and buyers need confidence that today’s “acceptable” will not turn into tomorrow’s recall. We continuously review REACH, TSCA, and international reporting requirements for our supply network, aiming to stay ahead rather than play catch-up. Each time global authorities bring out a new amendment or restrict certain solvents and catalysts, we revisit our process for Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide. Feedback about toxicological concerns or user safety triggers a quick reevaluation, and in some cases, we have actually reformulated parts of our process to align with new data.

    One clear example came from a medical synthesis partner who needed assurance on genotoxicity data for this compound in a preclinical workflow. Our R&D team ran extra panels in-house and shared the findings directly, allowing the client to document safety and transparently report to oversight bodies. In highly regulated fields, that degree of data availability speeds up internal compliance — and from our end, strengthens the science behind every batch sold.

    What Makes Our Product Trusted in Demanding Labs

    Some of the longest relationships we maintain stem from labs who have tested every available source for a critical intermediate and circled back to us. Their researchers need a consistent profile, not a moving target. Our end-to-end manufacturing gives us control over each upstream feedstock, and hands-on QC teams flag anything outside spec before shipping. Applications vary—from checkpoint inhibitors to coatings with unique thermal properties — but the underlying trust has grown from proving we know exactly what we’re making, and we can reliably deliver it, every time.

    Process reliability also depends on open lines to our technical support. As the real manufacturer, we work directly with chemists, engineers, and QA managers — not through layers of intermediaries. If any issue or novel application comes up, we can troubleshoot or tweak future production, guided by direct phone calls, sample return analysis, and live feedback during pilot runs. This direct pipeline empowers process teams to quickly validate changes, optimize conditions, and hit their project milestones without waiting weeks for an answer.

    How Our Approach Creates Value Beyond Price

    Our industry has seen how price wars invite slipshod quality and corner-cutting on specification. We compete by building robust, trustworthy material that actually saves customers money through fewer rejected lots, less downtime, and lower waste rates. Consider the impact on a pharmaceutical pilot batch — avoiding contamination or side reactions due to trace-level impurities simply means more successful runs and faster timetables.

    A while back a client described our compound as “problem-averse” — meaning they did not hear about it unless something had gone right. That invisible performance comes from the decisions we make at every production stage: tight process documentation, hands-on quality teams, uncluttered supply chain, and responsive scale-up partners. For customers, the benefit is a chemical solution that works, without creating a new set of headaches that eat into resources and schedule.

    Conclusion: Building on Experience, Delivering Reliable Chemistry

    Everything we do with Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide comes out of firsthand understanding of what today’s process chemists face. Every new feature, control point, and documentation step has a backstory rooted in a request someone made when the current tools fell short. We do not believe in chasing the broadest possible market; instead, we pursue the kinds of customers who know exactly what they need and expect their supplier to keep up, not hold them back.

    This product, like all our specialty compounds, is built for real-world use: easy to store, consistent from batch to batch, and aligned with the requirements of today’s most demanding labs and production lines. Our commitment does not end at shipping a drum or flask — each order includes the assurance of ongoing technical partnership, transparent communication, and open consideration of new challenges as they arise.

    In a world where many chemicals are treated as warehouse commodities, we take pride in knowing our products are recognized and trusted by people who base their reputation on the tools they use. Isopropyl-Α-[2-Methylhydrazino]-P-Toluamide is one example of how manufacturing with focus, care, and long-term commitment can turn a chemical compound into an engine for progress across laboratories and industries.