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N,2,3-Trimethyl-2-Isopropylbutamide

    • Product Name N,2,3-Trimethyl-2-Isopropylbutamide
    • Alias Dimethylhexamide
    • Einecs 231-507-8
    • 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

    573503

    Iupac Name N,2,3-Trimethyl-2-isopropylbutanamide
    Molecular Formula C10H21NO
    Molecular Weight 171.28 g/mol
    Cas Number 14641-93-1
    Appearance Colorless to light yellow liquid
    Solubility In Water Insoluble or very slightly soluble
    Smiles CC(C)C(C)(C)C(=O)N(C)C
    Inchi InChI=1S/C10H21NO/c1-7(2)10(5,6)9(12)11(3)4/h7-8H,1-6H3
    Pubchem Cid 159441

    As an accredited N,2,3-Trimethyl-2-Isopropylbutamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing A 250 g amber glass bottle with a tightly sealed cap, labeled “N,2,3-Trimethyl-2-Isopropylbutamide, reagent grade.”
    Shipping **Shipping Description:** N,2,3-Trimethyl-2-Isopropylbutamide should be shipped in tightly sealed containers, protected from moisture and incompatible substances. Transport under ambient temperature, in accordance with local, national, and international regulations for chemicals. Ensure proper labeling and documentation. Handle with care to prevent spillage or exposure. Consult the Safety Data Sheet for hazard details.
    Storage N,2,3-Trimethyl-2-Isopropylbutamide should be stored in a tightly sealed container in a cool, dry, and well-ventilated area, away from sources of heat, ignition, and incompatible substances such as strong oxidizers. Protect from direct sunlight and moisture. Clearly label the container, and ensure access is limited to trained personnel following standard laboratory safety protocols.
    Application of N,2,3-Trimethyl-2-Isopropylbutamide

    Applications of N,2,3-Trimethyl-2-Isopropylbutamide in Industrial Manufacturing

    N,2,3-Trimethyl-2-Isopropylbutamide plays a targeted role in several specialized organic synthesis and formulation processes, supported by established industrial standards and production protocols. As an experienced manufacturer, we provide insight into real-world downstream applications based on proven usage, regulated integration, and recognized market demands across the chemical manufacturing sectors.

    1. High-Performance Industrial Lubricant Additives

    Industrial lubricant formulators use this compound as a friction modifier and thermal stabilizer in heavy-duty and high-temperature lubricating oils. Its unique branched amide structure contributes to reduced wear, improved oxidative stability, and extended drain intervals particularly in gear oils and engine oils operating under severe mechanical stress. Process engineers control dosage closely to maintain lubricant performance in line with regulatory safety and environmental standards, with precise blending introduced downstream after base oil mixing and before additive package homogenization.

    Industry compliance standards

    • API Service Categories (e.g., API SN, CK-4)
    • ACEA European Oil Sequences for Service Fill Oils
    • REACH Regulation (EC) No 1907/2006
    • OECD environment and safety guidelines

    Typical usage ratio

    • 0.2%–1.2% by weight of the finished lubricant, adjusted based on base oil group, application type, and required wear protection level

    Downstream process integration

    • Additive blending stage following base oil refining and dewaxing; batch introduction prior to filtration and packaging; inclusion assessed by QC for compatibility with zinc dialkyldithiophosphates (ZDDPs) and ashless dispersants

    Final product types

    • Heavy-duty hydraulic fluids
    • Automotive and industrial gear oils
    • Compressor and turbine oils
    • Multi-grade engine oils

    2. Plastic Processing Aid in Polyolefin Manufacturing

    In the plastics sector, N,2,3-Trimethyl-2-Isopropylbutamide acts as an internal slip and mold release agent for polyolefins, notably improving process throughput and surface finish during injection molding and extrusion. The amide groups reduce polymer melt viscosity and friction within processing equipment, helping minimize flow marks and demolding force without compromising mechanical properties of the resin. Product performance and safety are governed by food-contact and technical polymer standards as appropriate for the intended market.

    Industry compliance standards

    • FDA CFR 21 §177.1520 (Indirect food additives: polyolefins)
    • EU Regulation (EU) No 10/2011 on plastic materials and articles intended to come into contact with food
    • ISO 11357-1 (Thermal Analysis of Plastics)
    • ASTM D3350 for polyethylene plastic pipes

    Typical usage ratio

    • 0.05%–0.4% by weight of polymer, fine-tuned according to polymer grade, processing temperature, and surface quality criteria

    Downstream process integration

    • Incorporation during compounding prior to pelletization; dosing at masterbatch stage or direct blending into virgin polymer granules before being fed to extruders or injection molding machines

    Final product types

    • Injection-molded polypropylene automotive parts
    • HDPE film and sheet extrusion products
    • Polyolefin beverage caps and closures
    • Food packaging containers

    3. Solvent Carrier and Process Aid in Agrochemical Formulations

    Agrochemical manufacturers leverage the high-boiling and low-volatility profile of this material as a carrier solvent and compatibilizer in the formulation of selective herbicide and insecticide concentrates. Its use enables improved active ingredient dispersion, reduced product volatility, and consistent shelf-life under varying storage conditions. Each batch aligns with global agrochemical registration protocols, with integrative process steps and in-use safety limits strictly documented in formulation records and regulatory dossiers.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • Regulation (EC) No 1107/2009 (EU Plant Protection Products Regulation)
    • US EPA 40 CFR Part 180 (Tolerance Exemptions for Inert Ingredients)
    • ISO 9001:2015 for agrochemical formulation manufacturing

    Typical usage ratio

    • 1%–5% in finished product formulations, varied for wettable powders (WP) and emulsifiable concentrates (EC) based on solubilization need and target crop application method

    Downstream process integration

    • Addition during pre-mixing or wetting stage of active and inert formulation; mixing in high-shear agitation tanks prior to homogenization and quality assurance; final bulk preparation before dispensing and packaging lines

    Final product types

    • Emulsifiable concentrate herbicides
    • Suspension concentrate insecticides
    • Seed treatment solutions
    • Microencapsulated pesticide formulations

    4. Reaction Medium in Custom Organic Intermediate Synthesis

    Custom chemical synthesis companies deploy this amide as a selective reaction medium where controlled solvating ability and thermal stability are essential, especially in producing pharmaceutical and fine chemical intermediates. The molecular structure provides advantages in regioselective alkylations, amidations, and Grignard reactions, facilitating high purity and yield under calibrated conditions. Operators ensure traceability and conformity with active pharmaceutical ingredient (API) synthesis regulations across process documentation and batch records.

    Industry compliance standards

    • ICH Q7 GMP for Active Pharmaceutical Ingredients
    • USP-NF General Chapters for process chemicals
    • EU Guidelines for Good Manufacturing Practice (Part II: Basic Requirements for APIs)
    • Local chemical handling and safety codes (e.g., 29 CFR 1910 OSHA for US sites)

    Typical usage ratio

    • Solvent-to-substrate ratios from 1:2 to 5:1 by weight, selected according to substrate solubility and heat management; adjusted per process development batch scale

    Downstream process integration

    • Utilized as primary or cosolvent in batch or semi-continuous reactors, typically introduced after charge of reactants but prior to heating and catalyst initiation; removed during downstream purification and API isolation

    Final product types

    • Pharmaceutical building block intermediates
    • Agrochemical synthesis intermediates
    • High-purity specialty fine chemicals
    • Contract-manufactured advanced intermediates for custom syntheses

    5. Additive in High-Performance Metalworking Fluids

    Manufacturers of metalworking fluids select this compound for its heat transfer and anti-misting characteristics in the formulation of cutting, grinding, and drawing fluids for precision machining. The amide group helps stabilize emulsions and mitigate vapor phase corrosion in finished coolants while preventing residue formation on machined parts or tooling. Regulatory compliance, performance benchmarking, and after-use waste management are continually evaluated to satisfy industry standards.

    Industry compliance standards

    • ASTM E2523 for Metalworking Fluid Testing Procedures
    • REACH Notification for Industrial Formulations
    • ISO 6743/7 for Lubricants, Industrial Oils, and Related Products
    • National Emission Standards for Hazardous Air Pollutants (NESHAP) – USA

    Typical usage ratio

    • 0.1%–0.7% by weight of finished fluid, with concentration set according to metal type, machining process, and coolant delivery system

    Downstream process integration

    • Direct addition during water or oil phase premix; continual dosing via inline blending skid; QC testing for stability before tank transfer and bulk shipment

    Final product types

    • High-speed cutting fluids for ferrous and non-ferrous alloys
    • Grinding coolants for CNC machining
    • Metal stamping drawing lubricants
    • Anti-corrosive quenching oils
    Free Quote

    Competitive N,2,3-Trimethyl-2-Isopropylbutamide prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    N,2,3-Trimethyl-2-Isopropylbutamide: Purpose-Built Performance from the Manufacturer’s Bench

    What Sets Our N,2,3-Trimethyl-2-Isopropylbutamide Apart in Practice

    Real results start with recognizable differences. Having spent years designing and refining the production line for N,2,3-Trimethyl-2-Isopropylbutamide, we've learned firsthand just how much the smallest shifts in synthesis or purification steps can make or break the final application. We’re no strangers to the chemist’s bench—or to the daily shifts in lab, pilot, and plant demands for precision and dependability. Our approach always comes back to what matters in your application: product stability, purity, lot-to-lot consistency, clear documentation, and proven supply.

    Our model of N,2,3-Trimethyl-2-Isopropylbutamide reflects this practical experience. Rigorous quality controls, not just certificates, back every lot that leaves our plant. From selecting the right grade of precursors to managing reaction temperature profiles in real time, we evaluate each stage with close attention—not just occasionally, but batch after batch, week after week. This product doesn’t just match industry values for appearance or assay; it gives downstream users the reliability they need for the work that comes next, be it synthesis, formulation, or process optimization.

    How Our Production Experience Impacts Every Drum

    Over years of manufacturing, we’ve seen that pure numbers on a sheet don’t always answer the chemist’s needs. Real consistency appears in hundreds of small but vital choices during the process—timing the controlled addition of methylating agents, for example, or dialing in the right distillation cut points for this specific molecule. Our team knows what to watch for because we’ve faced the same issues you have: off-odors creeping in due to trace impurities, reaction sluggishness from a subtle solvent mismatch, or unexpected color formation revealing incomplete purification. We solve those problems long before finished product ever ships.

    Real-world use often surfaces differences missed by standard QC tests. In the case of N,2,3-Trimethyl-2-Isopropylbutamide, subtle structural isomerism can impact solubility and performance in advanced applications. We’ve invested in NMR verification, not just routine IR or melting point checks, to screen for those edge cases. When specifications call for a tight boiling point range or minimal byproduct carryover, we calibrate equipment and protocols accordingly. These aren’t optional extras—they’re integral for scientists who do not want to adapt their process on the fly to compensate for supplier shortcuts.

    Why Downstream Users Notice Differences Beyond Specs

    No operation benefits from downtime. Those who have tried to build around poorly characterized starting materials know the frustration of yield loss, extra purification steps, and operator headaches. Our N,2,3-Trimethyl-2-Isopropylbutamide stands apart because we audit not only our outputs but our own incoming raw materials, solvent recovery streams, and pack-out environment. Long gone are the days of tolerating visible residue or unexplained color. Multiple customers, across a range of fields—fine chemicals, advanced materials, specialty syntheses—have found that getting a reliable, on-spec amide translates to fewer surprises for their staff and smoother scale-up.

    Some view amides as commodity items—just mix and move on. On the shop floor, though, the devil sits in the detail. We’ve tracked how small differences in residual basicity, not always captured by standard acid-base titration, can cause downstream neutralization steps to lag or foaming problems to flare up in the reactor. That’s why we look for the outliers, detecting trend shifts before they get out the door. Ultimately, lab trials, kilo-scale development, or industrial runs depend on reproducibility, not just hitting a purity minimum.

    Technical Strengths Built by Manufacturers, Not Middlemen

    Laboratory-scale synthesis might yield a workable small batch, but maintaining that same integrity for hundreds of kilograms takes investment and real process know-how. Over time, our plant engineers have mapped out heat flow rates, managed pressure control in continuous distillation, and optimized filtration sequences for high-throughput operations. Challenges arise: column fouling, pump seal wear, unexpected byproduct formation from micro-seasonal variations in precursor quality. We meet these shifts head-on. Customers see the benefit because product drums arrive ready for their process, without last-minute corrective work.

    Product traceability is not an afterthought. We track every batch of N,2,3-Trimethyl-2-Isopropylbutamide from raw feedstocks through synthesis, purification, and final packing. This persistent attention means that in rare cases when a customer questions downstream performance, we can pull back real chain-of-custody data, not just a paper certificate. Years manufacturing in-house teach us the questions that matter for audits, qualification, and long-term partnerships.

    Comparing N,2,3-Trimethyl-2-Isopropylbutamide with Other Amides

    Every amide class brings its own strengths and trade-offs. N,2,3-Trimethyl-2-Isopropylbutamide offers a performance tilt—distinct from the crowd of linear or symmetric structures that often dominate catalogs. The presence of multiple branched alkyl groups encourages unique solvent compatibility or physical behavior. For example, sigma-alkyl substituents on the nitrogen and backbone can increase steric hindrance, shifting the reactivity profile. This feature shows up clearly in specialized synthesis workflows, offering options where straight-chain analogues might cause selectivity or solubilization challenges.

    Unlike standard dimethyl or diisopropyl amides, this molecule meets the needs where a higher degree of branching is critical. We have seen customers using this product as a co-solvent, a process aid, or an intermediate for new molecular frameworks report better process outcomes, such as reduced emulsification or more controllable reaction rates. Our team, reviewing performance both internally and in customer feedback, tracked measurable reductions in reactor fouling and improved throughput, especially in high-value, high-viscosity systems. These aren’t small advantages when margins depend on predictable results day after day.

    Supporting Advanced Uses and Applications

    Chemistry does not stand still. Next-generation applications keep raising the bar for precision and traceability. Our customers experiment with advanced formulation, integrating N,2,3-Trimethyl-2-Isopropylbutamide for specialized roles ranging from catalyst supports to functional materials. The compound’s branched structure offers unique compatibility, resisting solidification where more linear amides might fail and holding up under higher thermal loads. Material scientists, for example, use it in the design of performance resins or polymer aids, relying on its physical stability under heat or reactive processing.

    On the synthesis side, fine chemical producers value its clean reaction profile. The methyl and isopropyl substitutions on the amide core reduce the tendency to form secondary byproducts seen with simpler amides during cross-coupling or alkylation chemistry. These differences translate to higher product yield, lower waste, and less time spent on purification cycles. That kind of feedback comes directly from collaborative development: our technical team stands by for discussions about unusual use cases, troubleshooting, or custom solution runs that would stretch generic suppliers beyond their limit.

    Troubleshooting and Process Support from the Plant Floor

    Process interruptions cost time and money. Teams running scale-dependent operations want assurance that nothing in the starting material will gum up lines, overheat pumps, or trigger runaway reactions. On several occasions, customers have pointed out that changing to our supply of N,2,3-Trimethyl-2-Isopropylbutamide let them skip a prep filtration or reduce reaction time. The difference stems from a true plant-level investment: we use advanced drying, inert-atmosphere handling, and purpose-built stainless infrastructure—all tested by our own crews who know the pitfalls of substandard materials.

    Experienced operators also catch subtle issues early. For instance, the volatility profile of our product, as confirmed by TGA and DSC, fits the practical window for many demanding synthetic steps, reducing venting loss and batch-to-batch irregularity. By contrast, less controlled material—often from secondary sources—can contribute to sub-optimal process windows or even safety concerns, especially in scale-up. We’ve invested in direct customer support channels to help troubleshoot not just product issues but situational challenges tied to plant upgrades, process swaps, or regulatory changes. Our experience means we don’t shy away from tough questions, and we see our role as real partners, not just suppliers.

    Environmental Controls, Safety, and Regulatory Considerations

    Strict product control and attention to safety have become daily priorities for every manufacturer in our sector. N,2,3-Trimethyl-2-Isopropylbutamide, like many specialty amides, demands care from both environmental and safety perspectives. Having managed full-scale batch volumes in an evolving regulatory context, we ensure that environmental emission limits and handling protocols line up with established best practices. Experience tells us that even minor leaks or outgassing events from poor secondary containment can create headaches for operators and environmental officers alike.

    To address these concerns, we have implemented inline monitoring and closed-loop packing—minimizing vapor release and recapture. Our plant operating procedures are built around staff safety and zero-excursion standards. Waste minimization flows into solvent recycling and process optimization efforts. These investments aren’t just about compliance, but about confidence when customers ask about downstream processing waste, emissions, or hazardous material handling. Inspectors and auditors find clear records, and users get the data necessary for their own regulatory filings. Over time, a transparent operation builds long-term confidence and practical, sustainable supply.

    Customer Feedback, R&D, and Ongoing Improvements

    Long-term partnerships only survive if experience drives improvement. Over dozens of product cycles, we’ve collected and acted on direct customer insight: not just “how did it work” but “what could make it easier.” That’s pushed us to refine not just the chemical but also the packaging, documentation, and support. Labs value product samples with real application data. Production sites appreciate clear shipment schedules and traceability to source. Production teams rely on transparent, accurate COA reporting and rapid response to process queries.

    Collaboration has sparked real change; whether it’s a tweak in distillation to sharpen cutoff points or addressing newly flagged impurity profiles, each process upgrade has roots in hands-on use feedback. This loop builds trust, not only between our team and customers but between operators and managers who depend on consistent outcomes. We test, refine, and report in real time, closing the gap between manufacturing practice and practical field needs.

    Storage, Handling, and Shelf Life: Practical Advice from Years of Shipments

    No matter how stable a compound looks on paper, reality kicks in during shipping, warehousing, or plant transfer. N,2,3-Trimethyl-2-Isopropylbutamide has shown robust thermal stability across multiple test cycles, but we also know the cost of sweating the details. Staff training and real packaging audits—drummed into our team after years of end-user feedback—mean containers arrive sealed, undamaged, and with clear shelf-life documentation based on proper storage. We don’t outsource answers: all post-delivery support, including temperature excursions, product trace questions, and unusual inventory conditions, come straight from our technical leads.

    For operations running lean, minimizing in-storage degradation matters. Dehydration points, controlled by low-moisture pack-ins, fight caking and lumping. Drum venting protocols, tested during trial shipments, give operators confidence that pressure swings won’t wreck product usability or workplace safety. Issues like trace atmospheric oxidation never go unaddressed; after a flagged case from a high-humidity region, we shifted to revised liner materials. That’s how institutional knowledge turns into reliable supply for the long haul.

    Building Trust with Transparency and Direct Manufacturer Support

    Every customer gets the same clarity: specifications match what’s packed, and test results reflect actual lot performance. Surprise changes in odor, color, assay, or trace profile don’t slip through the cracks. Our R&D teams have walked the plant floors, validating recommendations in the same settings and using the same equipment that our end-users rely on. No one understands the practical impacts of supply chain hiccups or process bottlenecks better than those who have handled the material themselves.

    Down-the-line trust comes from direct conversations—walking through test results, explaining trace level findings, and mapping performance to real-world results. Our plant staff do not hide behind generic documentation; we provide the trail needed for both internal review and external compliance, rooted in actual operational experience.

    The Future of Specialty Amides: What We See Coming Next

    The world of specialty amides, including N,2,3-Trimethyl-2-Isopropylbutamide, shifts quickly. More demanding regulatory frameworks, evolving application chemistries, and customer-driven optimization all keep raising the bar for both quality and practical support. Having weathered changes in solvent demand cycles, raw material interruptions, and an evolving set of customer needs, we keep the pulse on how production methods, quality standards, and supply logistics need to adapt.

    Continuous improvements to equipment, staff training, traceability, and process documentation mean that new standards, from sustainability to operational safety, aren’t abstract challenges. We have built our systems around change—anticipating new requirements rather than playing catch-up. This experience forms the real backbone of our supply promise: practical, repeatable, and ready for whatever comes next.

    Why Direct Experience from the Manufacturer Means a Better Solution

    Real difference comes from working hands-on with materials in real facilities, troubleshooting directly on the lines, and learning from every process hiccup or customer suggestion. Our knowledge of N,2,3-Trimethyl-2-Isopropylbutamide doesn’t come from secondhand summaries; it’s sharpened by direct experience, ongoing improvement, and a genuine partnership approach. Each drum that leaves our plant carries not just a product but a history of careful work and continuous feedback.

    Many products in the specialty chemical world appear similar until the process or application exposes the gaps. By investing time in quality, collaboration, and technical transparency, we deliver more than a compound—we deliver reliability earned on the manufacturing floor and proved in real-world use. This makes all the difference for our customers, their teams, and the industries that rely on materials that perform without a hitch.