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3,5-Dimethylpyrazole-1-Carboxamide

    • Product Name 3,5-Dimethylpyrazole-1-Carboxamide
    • Alias DMPC
    • Einecs 424-610-5
    • 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

    717826

    Chemical Name 3,5-Dimethylpyrazole-1-carboxamide
    Cas Number 1965-45-7
    Molecular Formula C6H9N3O
    Molecular Weight 139.16 g/mol
    Appearance White to off-white solid
    Melting Point 142-145°C
    Solubility Slightly soluble in water
    Purity Typically ≥98%
    Storage Conditions Store in a cool, dry place
    Structure Pyrazole ring substituted with methyl groups at positions 3 and 5, and a carboxamide at position 1
    Synonyms 1-Carbamoyl-3,5-dimethylpyrazole

    As an accredited 3,5-Dimethylpyrazole-1-Carboxamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Packaged in a sealed 100-gram amber glass bottle with tamper-evident cap, labeled with chemical name, hazard symbols, and batch details.
    Shipping 3,5-Dimethylpyrazole-1-Carboxamide is shipped in sealed, chemical-resistant containers to prevent moisture or air exposure. Packaging complies with applicable chemical transport regulations. The product is labeled with handling, hazard, and safety information. During transit, temperature and storage requirements are observed to ensure stability and integrity until delivery at the destination.
    Storage Store **3,5-Dimethylpyrazole-1-carboxamide** in a tightly closed container, in a cool, dry, and well-ventilated area, away from incompatible substances such as strong oxidizers. Protect from moisture and direct sunlight. Ensure proper labeling and keep away from sources of ignition. Follow appropriate local, state, and federal regulations for storage of chemicals. Use suitable secondary containment to prevent accidental release.
    Application of 3,5-Dimethylpyrazole-1-Carboxamide

    Applications of 3,5-Dimethylpyrazole-1-Carboxamide in Industrial Manufacturing

    As a direct manufacturer, we supply 3,5-Dimethylpyrazole-1-Carboxamide to diverse industrial sectors. Below are key application areas, compliance requirements, formulation specifics, production integration details, and the primary finished products associated with each sector.

    1. Nitrogen Stabilizer Additive in Agrochemical Fertilizer Production

    Large-scale fertilizer manufacturers use this compound as a nitrification inhibitor to limit the conversion of ammonium to nitrate. Integration into urea-based and NPK formulations improves nitrogen efficiency and minimizes environmental nitrogen losses. Its application supports compliance with environmental regulations and sustainable agriculture initiatives.

    Industry compliance standards

    • European Union Fertilising Products Regulation (Regulation (EU) 2019/1009)
    • U.S. Environmental Protection Agency (EPA) Nitrogen Management Guidelines
    • ISO 9001:2015 Quality Management Systems for fertilizer plants
    • REACH Registration for chemical safety (EC 1907/2006)

    Typical usage ratio

    • 0.5–2.0% by weight in finished granular urea products
    • Specific ratio adjusted based on soil type, application rate, and regulatory limits

    Downstream process integration

    • Blending into urea solution during liquid fertilizer manufacturing
    • Application at the granulation stage for coated urea granules
    • Direct addition to NPK fertilizer blending systems in closed mixing tanks
    • Quality control at the final packaging step to verify additive content

    Final product types

    • Urea fertilizers with nitrification inhibition
    • NPK complex fertilizers containing slow-release nitrogen
    • Stabilized liquid and granular nitrogen fertilizers
    • Regulated environmental fertilizers for EU and North American markets

    2. Intermediate for Agrochemical Synthesis (Fungicides and Herbicides)

    Chemical synthesis plants employ this raw material as a building block when manufacturing specialty agrochemicals such as selected triazole fungicide intermediates. It supports precise active ingredient synthesis under cGMP environments, which is crucial for finished plant protection agents meeting export quality requirements.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • Good Manufacturing Practice for Agrochemical Synthesis (ISO 22716 where applicable)
    • European Crop Protection Association (ECPA) manufacturing codes
    • REACH/CLP compliance for chemical hazard communication

    Typical usage ratio

    • Stoichiometric addition in molar equivalents, typically 1.0–1.1 mol relative to the active site in target molecules
    • Adjusted for yield optimization and minimal byproduct formation

    Downstream process integration

    • Charged into synthesis reactors for condensation or cyclization steps
    • Reaction phase generally follows solvent addition and precedes purification
    • Integrated with inline sampling for purity and progression control
    • Finished batch undergoes downstream distillation and crystallization

    Final product types

    • Triazole-based intermediates for agrochemical formulation
    • Active fungicidal compounds for seed treatment
    • Intermediate products used in selective herbicide synthesis
    • Export-grade plant protection chemicals for authorized global markets

    3. Chemical Building Block for Specialty Pharmaceutical Synthesis

    Advanced pharmaceutical facilities use the compound as a heterocyclic intermediate in the synthesis of pyrazole-containing APIs, notably certain anti-inflammatory agents and enzyme inhibitors. Its integration mandates compliance with international pharmacopoeias and stringent traceability for regulated end-use.

    Industry compliance standards

    • Current Good Manufacturing Practice (cGMP) per ICH Q7
    • U.S. Pharmacopeia (USP) and European Pharmacopoeia (Ph. Eur.) guidelines for raw material quality
    • FDA 21 CFR Part 211 for finished pharmaceuticals
    • Qualified Person (QP) release and full batch documentation for EU markets

    Typical usage ratio

    • Molar equivalent as determined by API synthesis route, typically 1.0–1.05 mol per reaction step
    • Excess minimized to control residual profile in final API batches

    Downstream process integration

    • Introduced during initial condensation or cyclization phases within multi-step synthesis schemes
    • Accounted for in critical quality attribute monitoring and impurity profiling
    • Integrated into automated batch records and tracking systems
    • Subjected to cleaning validation and cross-contamination assessments per campaign

    Final product types

    • Heterocyclic pharmaceutical key intermediates
    • Active Pharmaceutical Ingredients (APIs) for anti-inflammatory therapy
    • Small-molecule enzyme inhibitors for drug discovery pipelines
    • Regulated finished dosage forms with validated supply chain traceability

    4. Intermediate for High-Performance Polymer Additives

    Polymer manufacturers utilize this amide-structured intermediate to synthesize customized stabilizers and UV absorbers designed for high-performance engineering plastics. Its introduction is controlled for compatibility and performance in end-use products requiring extended life and exposure resistance.

    Industry compliance standards

    • ISO 9001 and ISO 14001 certified production environments
    • EU REACH Registration for polymer additive safety
    • RoHS Directive 2011/65/EU for electrical/electronic product safety
    • UL Yellow Card listing for polymer compounds where required

    Typical usage ratio

    • 1–5% as precursor in masterbatch formulations
    • Adjusted for target UV stability or thermal performance specification

    Downstream process integration

    • Fed into the intermediate synthesis reactors for bespoke additive molecules
    • Downstream compounding into masterbatch and pelletizing lines
    • Blended at the extrusion phase for final material coloration and stabilization
    • Monitored for residual amide content during final product QC release

    Final product types

    • UV stabilizer masterbatches for polyolefins and engineering resins
    • Custom polymer additive solutions for automotive and electronics industries
    • High-end engineering plastics with enhanced durability
    • Polymer compounds certified for outdoor and high-temperature exposure
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    Certification & Compliance
    More Introduction

    3,5-Dimethylpyrazole-1-Carboxamide: Practical Value from Real-World Manufacturing

    The Role of 3,5-Dimethylpyrazole-1-Carboxamide in Modern Chemistry

    Daily operations in chemical manufacturing bring out a strong appreciation for materials that solve practical problems reliably. We have spent years working with 3,5-dimethylpyrazole-1-carboxamide, shaping batches for customers ranging from agrochemical developers to specialty polymer producers. Knowledge grows not only from literature but from hands-on experience with repeatable results, and this product is a clear example of necessity driving its consistent place among our production lines.

    Physical and Chemical Features Developed for Consistency

    Our production quality of 3,5-dimethylpyrazole-1-carboxamide delivers a fine white crystalline powder optimized for easy handling and introduction to downstream processes. Season after season, we see few complaints about caking or clumping, even when stored on hot warehouse shelves. Water solubility remains moderate, favoring processes where partial dissolution is key, but not so hygroscopic that it disrupts batch weighing or dosing equipment.

    Manufacturing this compound requires careful controls, especially to minimize trace side-products, so each lot keeps a purity level well above 99% by HPLC. Our QC team maintains these standards because real precision matters once the material reaches a customer’s mixing tanks.

    Why This Compound Caught Attention in Industry

    Use of 3,5-dimethylpyrazole-1-carboxamide, especially as a nitrification inhibitor in agriculture, stems from its ability to block enzymatic conversion of ammonium to nitrate. This direct function keeps nitrogen in the ammonium stage for longer in soil, reducing leaching losses. We have seen studies reporting nitrate leaching rates fall by over 30% in certain soils, and some fields experience notable increases in nitrogen use efficiency when this inhibitor gets paired with urea-based fertilizers. In regions facing increasingly tight fertilizer budgets, and with environmental regulations bearing down on runoff control, this performance makes the compound far more than a technical curiosity.

    Our batches also find a role in controlling curing reaction rates for isocyanate-based foams, adhesives, and coatings. Few other low-molecular inhibitors give the same precision in delay, which is valuable for larger pours or for processes needing reaction control to avoid bubbles or voids in the final product. High-purity product lends a consistent delay time, helping plant engineers fine-tune mixes for climate or substrate changes.

    Differences from Related Materials: Grounded in Real Use

    Comparing 3,5-dimethylpyrazole-1-carboxamide to plain dimethylpyrazoles, or to DMPP (3,4-dimethylpyrazole phosphate), brings out a few clear distinctions. Unlike DMPP, this compound lacks a phosphate group, so it neither interacts with phosphate buffers nor raises phosphorus content in formulations. Some plant nutrition blends require tight phosphorus control, and our compound avoids regulatory headaches in those situations. The carboxamide moiety imparts increased hydrophilicity without excessive hygroscopicity, solving problems often blamed on storage instability when working with other substituted pyrazoles.

    In polyurethane production, substitution pattern and functional group choices translate directly to inhibition strength and duration. We’ve witnessed polyurethane engineers repeatedly select 3,5-dimethylpyrazole-1-carboxamide for its moderate reactivity profile that avoids extreme delays. Some alternative amides or unsubstituted pyrazoles give either too weak or too aggressive a delay, leading to off-spec foam or scrap rates spikes, both of which drive up production costs. The ability to tune final properties without unnecessary trial and error makes this molecule a favored option in setups where batch reproducibility and throughput matter most.

    Integrating Quality with Application Demands

    Our manufacturing process builds quality control into every unit operation. Staff follow well-established SOPs for crystallization and drying that ensure repeatable particle size distribution, so our customers rarely struggle with dosing problems in automated feeders. Supply chain teams benefit from dependable product, reducing the need for supplier changeovers that introduce surprises in large formulation lines. The low impurity profile also means fewer headaches for end-use registrants compiling dossiers for regulatory submissions.

    Relevance to Current Agrochemical and Industrial Trends

    Demand for nitrogen stabilizers continues to climb, in response to regulatory pushes for sustainable soil management and low-emission farming. Our customers look not only for chemical effectiveness, but for whole-process dependability. The past few years have seen stricter quality audits and increased demand for traceability. By manufacturing at our own facility and retaining full batch records, we provide customers with data traceable to raw material lots and equipment IDs— something traders or third-party distributors find difficult to match. Large agro firms deploying coated and encapsulated fertilizer blends rely on this assurance that every shipment delivers the same handling, storage, and agronomic performance.

    From an industrial standpoint, increased customization of isocyanate processes calls for ingredients that predictably manage delay times, without triggering process upsets when changing ambient or substrate conditions. We receive regular feedback from manufacturing leads: saved downtime and easier troubleshooting when process consistency holds over several quarters, instead of drifting with each resupply.

    Long-Term Sustainability and Environmental Responsibility

    As environmental requirements shape the landscape, our role as a manufacturer goes beyond simply offering compliant products. It means understanding the lifecycle impacts from raw material sourcing, energy use, waste minimization, and handling risks. Over the past decade, we have adjusted our process to reduce solvent consumption and improve yield, decreasing carbon intensity per kilogram of final product shipped. We also provide customers full data on residual solvents, packaging residue, and shelf life, supporting those who need detailed inputs for environmental reporting.

    In agriculture, reducing the overall nitrogen loading from synthetic fertilizers brings down total nitrous oxide emissions, a greenhouse gas with a global warming potential far exceeding that of carbon dioxide. The knock-on effect protects groundwater in vulnerable regions and safeguards drinking water supplies. Most customers at scale have caught on that these benefits serve both compliance and public reputation.

    Challenges We Face and Resilience in Practice

    Raw material supply chains remain a persistent challenge. Toluene and hydrazine, the starting points for pyrazole ring assembly, occasionally suffer spot price spikes or transport restrictions. We have learned, sometimes the hard way, the importance of maintaining close partnerships with upstream suppliers and weaving redundancy into logistics. Prices jump when logistics break, but remaining transparent with customers has preserved long-term trust even through tight cycles.

    Scaling up from pilot to regular production involved navigating heat transfer issues, batch variability, and environmental permitting demands. High purity requirements meant fine-tuning crystallization and filtration steps; in one early scale-up, a small sequence change cut impurity levels in half while improving batch consistency. Experience counts when random process upsets threaten critical delivery timelines.

    Cost-Effectiveness in Real Terms

    Because this compound does not require cryogenic transport and stores stably, customers avoid costs often associated with cold-chain chemicals or moisture-sensitive ingredients. Shipping a stable, non-hygroscopic powder means easier handling on both sides. Most repeat buyers see value in cost per hectare in farming and cost per tonne in isocyanate processing, a factor not always clear in theoretical cost models. Eliminating rehandling or reblending due to storage issues saves money all the way along the supply chain.

    Regulatory and Analytical Transparency

    We support our customers’ need for audit trails by supplying full manufacturing records and product data. This transparency addresses the traceability required in both agrochemical and industrial regulatory filings. Our in-house lab uses validated analytical methods for every lot; HPLC, GC-MS, and titration ensure consistency. Customers with questions about a shipment can review actual Certificate of Analysis data, batch retention samples, and access clarification from the production chemist instead of passing inquiries through layers of brokers or resellers.

    Troubleshooting and Technical Partnership

    Customers sometimes face unanticipated interactions in their specific formulations—stability challenges, incompatibility with other active agents, or side-reactions. As a manufacturer, we can experiment with alternative process conditions, adjust final drying steps, or alter particle morphology. In one example, a customer working on a slow-release urea granule experienced clumping until our team suggested a minor adjustment to crystal water content; the issue resolved without resorting to flow agents or changing their mixing system.

    Another frequent request involves lowering residual solvent levels, especially in applications sensitive to trace contaminants. Since we run the final purification on dedicated lines, we customize this parameter without significant process overhaul. Customers avoid the headache of negotiating with third-party packagers or blending houses, sidestepping unnecessary risk to finished product quality.

    Commitment to Continuous Improvement

    We view customer feedback, successful or otherwise, as the core mechanism for driving innovation. Suggestions often come directly from the field or shop floor instead of theoretical R&D proposals—a new seed coating approach, a temperature-sensitive adhesive, a spray-drying protocol. Our QC and engineering teams translate these into process tweaks, fine-tuning final characteristics to match unanticipated needs. It’s an ongoing process shaped by direct dialogue, leading to a better fit for evolving industry requirements.

    ISO standards and industry audits prompt improvements in documentation and safety practices. Our operators and chemists participate in regular training sessions on both process control and personal safety. Experience has shown that well-trained staff spot anomalies in early process stages, preventing problems downstream: one sharp-eyed technician, for example, caught an errant impurity profile in a batch, a catch which saved a customer from unexpected formulation drift.

    Adapting to Lean and Just-in-Time Operations

    Customers increasingly rely on lean manufacturing, cutting on-site inventories and compressing delivery timelines. Our ability to scale production rapidly and synchronize batch release with shipment creates value for partners who cannot risk product shortages. We have invested in automation not for its own sake, but because accurate dosing and time optimization become critical as delivery windows narrow.

    Flexible batch scheduling, built on strong QA/QC infrastructure, means production can shift rapidly to match changing order volumes without losing sight of documentation or traceability. First-hand manufacturing knowledge allows us to keep up with these shifting requirements, balancing inventory risk with rapid supply.

    Standing Apart Through Direct Manufacturing

    It’s one thing to trade or distribute a chemical by rebranding or blending; it’s another to stand behind each ton with both laboratory data and the practical knowledge of its manufacture. Over years of batch processing, troubleshooting analytical results, implementing process upgrades, and responding to real customer use cases, our understanding of 3,5-dimethylpyrazole-1-carboxamide runs deeper than a price list or postage box. We continuously monitor every step, adapting to raw material variance, shifting regulation, and climate control in plant operations.

    Our position as a direct manufacturer means full knowledge of what enters and exits the process and enables us to improve outcomes not only for our customers but also for the broader environment in which these chemicals find use.

    Conclusion: Focusing on Impact and Reliability

    Years spent keeping production lines running, listening to quality feedback, fixing both minor slips and unusual challenges, and ultimately delivering consistent 3,5-dimethylpyrazole-1-carboxamide to the market, have made clear its role as an enabler of practical solutions—from improved crop yields to more precise industrial chemistry. Commitment to process transparency, product consistency, and technical problem-solving forms the backbone of how we see our own responsibility—not as an abstract supplier, but as a true partner in making modern chemical products work.

    No matter how policies or markets evolve, the demand for materials that support practical innovation will stay. Real-world performance, accountability, and the willingness to adapt alongside our customers have made 3,5-dimethylpyrazole-1-carboxamide a mainstay in our operation—and a reliable choice for those who depend on what real manufacturing can achieve.