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HS Code |
491450 |
| Iupac Name | 1-Amino-3,3-dimethylbutan-2-one |
| Molecular Formula | C6H13NO |
| Molecular Weight | 115.17 g/mol |
| Cas Number | 1811-29-0 |
| Appearance | Colorless to pale yellow liquid |
| Boiling Point | 94-97 °C at 12 mmHg |
| Density | 0.89 g/cm³ |
| Solubility In Water | Miscible |
| Melting Point | -46 °C |
| Synonyms | Pinacolone amino ketone, ADMB |
| Smiles | CC(C)(C)C(=O)CN |
| Inchi | InChI=1S/C6H13NO/c1-6(2,3)5(8)4-7/h4,7H2,1-3H3 |
As an accredited 1-Amino-3,3-Dimethyl-Butan-2-One factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle containing 25 grams of 1-Amino-3,3-Dimethyl-Butan-2-One, sealed with a screw cap and labeled for laboratory use. |
| Shipping | 1-Amino-3,3-Dimethyl-Butan-2-One should be shipped in tightly sealed containers, clearly labeled, and protected from moisture and heat. Comply with all relevant hazardous material regulations. Use suitable packaging materials and cushioning to prevent leaks or breakage during transit. Transport via certified carriers with proper documentation and safety information included. |
| Storage | 1-Amino-3,3-dimethyl-butan-2-one should be stored in a cool, dry, well-ventilated area, away from incompatible substances such as strong oxidizing agents. Keep the container tightly closed and protected from moisture, heat, and direct sunlight. Store in a clearly labeled container made of suitable material to prevent chemical reactions and degradation. Follow all applicable safety and regulatory guidelines for storage. |
Applications of 1-Amino-3,3-Dimethyl-Butan-2-One in Industrial Manufacturing1-Amino-3,3-Dimethyl-Butan-2-One serves as a specialty intermediate in several industrial value chains. As a direct manufacturer, we provide this compound with consistent quality and full technical documentation for each application below. The following use cases represent verified downstream manufacturing sectors, each with detailed compliance, formulation, and processing aspects. 1. Pharmaceutical Intermediate for Central Nervous System (CNS) Drug SynthesisThis raw material is a key building block in CNS-active pharmaceutical ingredient (API) synthesis, particularly in the production of alkylated amine derivatives. It delivers reactivity required for subsequent cyclization or reductive amination steps in proprietary drug candidates. Process chemists introduce it at the early stage of multi-step syntheses, and its purity profile is essential for downstream pharmaceutical quality. Industry compliance standards
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2. Synthesis of Advanced Agrochemical ActivesThe material fits into the agrochemical market as an intermediate for producing selective herbicides and growth regulators featuring branched-chain motifs. It participates in amination and reductive coupling pathways, with batch recipe optimization depending on the crop protective target molecule. Industry compliance standards
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3. Precursor for Fragrance and Flavors ManufacturingThis ketone amine provides a unique precursor for synthesizing branched aldehyde and alcohol notes needed in high-value perfumery bases. Process specialists incorporate it into staged Grignard or aldol addition routes under controlled pH and temperature protocols, achieving profile consistency for fine fragrance blending. Industry compliance standards
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4. Chemical Intermediate in Polymer Modifier ProductionThis molecule finds application as a functional intermediate in the manufacturing of tailored polymer modifiers, such as amino-ketone-based crosslinking agents. These modifiers enhance flexibility and impact resistance in specialty plastics and coatings. Integration typically occurs within precision-controlled batch or semi-continuous processes with strict moisture exclusion. Industry compliance standards
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In our day-to-day work, we come across many building blocks of organic synthesis that truly alter the direction of manufacturing possibilities. Among the substances that have gained attention from pharmaceutical, agrochemical, and fine chemical producers, 1-Amino-3,3-Dimethyl-Butan-2-One stands out for more than just its name. Decades of experience in developing and scaling up amines and ketones under strict quality control shine through in every batch of our 1-Amino-3,3-Dimethyl-Butan-2-One.
The chemical framework of 1-Amino-3,3-Dimethyl-Butan-2-One brings together a primary amine and a ketone on a branched butane backbone, one that alters both reactivity and stability. Structures like this don’t come with the unpredictability sometimes seen in less sterically hindered analogs. The gem-dimethyl groups flanking the central carbon increase bulkiness, improving shelf life and storing power without inviting unwanted side products in downstream reactions. Our process engineers face these molecular quirks—sometimes challenges, sometimes benefits—right on the line. We have refined our reaction and purification steps to keep the impurity profile under tight control.
Our manufacturing runs put purity controls at the center. Even if it’s tempting to dwell on catalog numbers and theoretical grades, practical production means every shipment delivers exactly the same expected composition each time. The most frequent model follows a purity of ≥98% by GC, with limited water and volatile impurities. Each drum and tanker reflects our choice to avoid variations in residual solvent content, often monitored by Karl Fischer titration and headspace analysis.
We learned the hard way that trace contamination—even at ppm levels—can accelerate degradation or hinder a critical coupling. The devil is always in these details. That’s why our team extends testing into stability studies under multiple climate conditions. No one wants a surprise just before a large batch goes downstream.
Our customers’ feedback forms a unique record of chemical challenges and production line stories. Small-molecule drug development firms need certain amines that react predictably without forming hard-to-purge impurities. Agrochemical innovators require structures resistant to metabolic breakdown yet friendly to precision synthesis routes. For them, the difference between a clean electrophilic amine source and an unreliable one translates to wasted weeks and lost investment.
The presence of the two methyl groups in the 3,3-positions is not academic. It gives the molecule a steric profile that helps regulate reactivity, especially in routes involving alpha-alkylation or reductive amination. Teams in our process lab have seen dozens of enolate alkylations run far smoother when the starting material features this type of crowding around the reactive center, lowering byproduct formation and simplifying work-up steps.
That hands-on advantage appears again during downstream purification. In high-throughput work, 1-Amino-3,3-Dimethyl-Butan-2-One resists volatility losses that might plague lighter analogs. Process engineers can use standard distillation and chromatography, with the molecule’s innate stability helping avoid product loss. We bumped into far fewer issues with sticking to reactor walls or picking up color during scale runs than with straight-chain amine ketones.
Plenty of options populate the same structural class, though few deliver both the chemical selectivity and physical toughness shown by 1-Amino-3,3-Dimethyl-Butan-2-One. Straight-chain amino ketones have their place but tend toward rapid aldol condensations or hydrolysis—problems familiar to anyone in bulk API synthesis. When we trialed shorter or unbranched analogs, they showed susceptibility to overalkylation, and resulting impurities forced repeat purifications and extra downstream steps.
Isobutyryl-based amino ketones reveal robustness up to a point, yet they lack the same reactivity control and can form secondary byproducts due to overactivation at the alpha position. Several custom synthesis customers report that, with the 3,3-dimethyl structure, unwanted dimerizations and rearrangements decrease dramatically. It's a result you only trust after seeing thousands of liters go through the plant.
Safety is a separate discussion. Some classes of amino ketones release vapor more readily and test our containment systems. By contrast, our teams track lower volatility and less risk of unexpected emissions in process vessels with 1-Amino-3,3-Dimethyl-Butan-2-One. This keeps occupational exposures solidly within the safe range, and waste management becomes a more straightforward job when dealing with less volatile, odor-prone byproducts.
Over the years, our partners in synthetic research ask for practical, reliable starting points for heterocyclic development and peptide mimetic scaffolds. 1-Amino-3,3-Dimethyl-Butan-2-One shows up where project speed matters, not just price per kilo. Its application in custom libraries or as an intermediate for prodrug candidates comes from direct process advantage, not merely some label on a spec sheet.
Academic groups pursuing new kinase inhibitors or CNS-active compounds leverage the molecule’s resilience during long, multi-pot routes. They want intermediates that handle heating and solvent swaps with low decomposition risk. People building catalog chemicals for SAR campaigns gain from a precursor that tolerates both oxidation and reductive coupling in the same vessel. Word travels quickly in these circles: sloppy intermediates cost more via failed runs than by list price.
One pharmaceutical manufacturer recounted a key scale-up. Their previous raw material, a less-hindered ketone, showed unacceptable epimerization during storage. During route scouting, moving to 1-Amino-3,3-Dimethyl-Butan-2-One stopped the racemization problem altogether, with a shelf life extension measurable in years, not months. Those longer timelines make procurement and production alignment less frantic, which our team knows takes much of the stress out of campaign scheduling.
In crop protection research, newer actives demand compatibility with a host of nitrogen electrophiles. Our customer found that branched amino ketones provided both structural rigidity and metabolic stability, resulting in leads that survived field trials where others failed, due in large part to the reduced in vivo breakdown. Reports from multiple batches confirmed minimal formation of toxic breakdown products, an occupational concern for both lab staff and end users.
Making 1-Amino-3,3-Dimethyl-Butan-2-One at industrial scale puts every aspect of the synthetic route under the microscope. Standard batch processes need careful sequencing to prevent overoxidation or amine degradation. Exhaustive drying of all solvents before use, tight temperature control, and regular calibration of analytical equipment are more than paperwork—they’re the backbone of meeting real-world requirements.
Scale-up isn’t just a matter of multiplying liters. We found that the exothermicity at the amination step tracks sharply with charge size. Bypass this, and heat profiles could threaten yield or plant safety. Experience taught us to invest in jacketed vessels with continuous monitoring. Improved controls and real-time analytics dropped rejects and shaved weeks off campaign length. The finished product passes off the line with a crisp, high-purity profile, not a mixed bag of unreacted starting material and unidentified peaks.
We get regular questions about minimizing handling risk and waste. The compound’s stability and low vapor pressure mean that we rarely see fugitive emissions above trace levels during filtration and packaging. Our bulk transfer teams run built-in closed loops; after years of fine-tuning, we see material losses well under 0.1%, an important marker for those watching both cost and HSE performance.
Environmental stewardship doesn’t stop with in-house controls. After the product leaves, we help users with best practices for solvent recovery and responsible end-of-life disposal for any unreacted material. From an operational view, batch-to-batch reproducibility means easier pathway validation and lower risk during audits—whether regulatory, internal quality, or customer-driven.
Feedback loops keep pushing us to adapt. Several years ago, problems with a slight yellow tint in lots due to trace side-products led us to re-examine our catalyst beds and vacuum lines. By updating distillation protocols and polishing column loads, we now hit a visually clean, white-to-off-white solid every lot. Consistency here isn’t window-dressing; it signals to our partners that quality control happens at every stage.
Testing protocols evolve as analytical tools advance. Our team routinely checks beyond main component quantitation using modern LC-MS and NMR, which highlights anything the old GC analysis might miss. Not all deviations matter to a synthesis outcome; we focus on the ones with real downstream effects, the ones synthesis chemists or process engineers call out after a run.
Comparisons with imported analogs often crop up. We hear reports of caking, inconsistent melting point, or residual odors in samples from less traceable supply chains. Our production line draws from reliable, well-maintained feedstocks. Every precursor batch faces fingerprinting, so surprises don’t filter through into customer tanks.
We keep an eye on green chemistry trends. Recent pilot runs focus on deploying recyclable aqueous phase extractions and catalyst recovery, bypassing one-time-use reagents. These trials already bring down both raw material use and waste volume. Sustainability isn’t a decal for us—it threads through our maintenance and improvement routines.
Operators on our floor report the low-hazard storage profile as a clear benefit. Where related amines prompt immediate pungency, 1-Amino-3,3-Dimethyl-Butan-2-One can be stored with less specialized ventilation. Packaging is built around bulk drum and ISO tank setups, keeping product moisture and cross-contamination out. Research packs receive the same containment, even if destined for a test bench. We find that material integrity rarely fails, even after prolonged travel or when held in long-term warehouse environments.
We’ve had long partnerships with freight teams who respect the product’s sensitivity. Each shipment goes out tested for both composition and appearance. It’s not just internal pride—every downstream campaign relies on this baseline.
The demand curve for specialty amino ketones is rising as custom and contract synthesis gain market share worldwide. Users need scalability without compromise. Our growth strategy relies directly on listening to those scaling up their own routes. Periodic process audits, targeted equipment upgrades, and round-the-clock technical support reflect lessons from decades under pressure to deliver large lots on tight timelines.
Markets in East Asia and North America have adopted this product across both pharma and crop science. The message remains consistent: Dependable batch quality makes the difference between running on schedule and getting stuck in idled reactors. As manufacturing footprints globalize, logistics, regulations, and raw material fluctuations present barriers and opportunities alike. Our response centers on fortifying supplier relationships and process transparency, fostering trust where regulatory demands keep getting tougher.
We’ve observed that well-informed buyers ask deeper questions every year: not just purity and price, but impurity spectra, reactivity under pressure, and compatibility with bespoke process conditions. Providing real answers—backed by years of manufacturing evidence—pays off in relationships that span from small-lot development to repeat full-scale campaigns.
No process ever stays perfect. Feedstock disruption, energy price swings, and regulatory adjustments force reassessment on a regular basis. Our planning team reviews multiple global sources for precursors, maintaining buffers to withstand supply shocks. Over years, this resilience has prevented stoppages and allowed continuous delivery, even when market conditions spun sideways.
Sometimes, customer in-house policies prompt new documentation or stability validation. We stand ready for on-site inspection and batch traceability checks, as transparency remains critical. Addressing these requests often sharpens our understanding of scale-up science and supplies another round of learning for our teams.
Should any concerns about product fit arise—whether solubility in exotic solvents or filterability in novel process trains—we engage with technical leads and run side-by-side process trials. Drawing on firsthand production and adjustment experience, our team customizes handling and formulation approaches, balancing yield, safety, and cost considerations unique to each use case.
As a manufacturer, our pride lies in how the product performs in the real world, not just on paper. Each batch builds on hard-won expertise in scaling up, purifying, and shipping a molecule that many treat as just another catalog item. Our investment in robust analytics and process controls has led to a lot that shows up on time, clean of residual solvents, and ready for even the most demanding syntheses.
The feedback from the field echoes the same themes: No more wrestling with unstable intermediates, no more bottlenecks from off-spec shipments. Projects avoid costly delays and excessive reprocessing. Direct communication channels with process chemists and engineers keep improvements ongoing.
Partnering with advanced users pushes us to keep refining what 1-Amino-3,3-Dimethyl-Butan-2-One offers to both routine syntheses and high-stakes, cutting-edge developments. Each shipment is more than a drumful of chemical; it is the result of thousands of hours at every level, counted out by hands that manage each variable, every single time.
We look forward to seeing what innovations this versatile intermediate will foster, from new therapeutic agents to agrochemical breakthroughs. The next generation of solutions relies on raw materials that don’t just meet expectations—they help define new standards of reliability and process confidence. That’s why, as manufacturers, we measure our success by what you build with our products.