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HS Code |
157315 |
| Iupac Name | 2-Methyl-2-hydroxypropionamide |
| Chemical Formula | C4H9NO2 |
| Molar Mass | 103.12 g/mol |
| Cas Number | 4439-19-8 |
| Appearance | White to off-white solid |
| Melting Point | 90-93 °C |
| Solubility In Water | Soluble |
| Density | 1.13 g/cm³ |
| Smiles | CC(C)(C(=O)N)O |
As an accredited 2-Methyl-2-Hydroxypropionamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The packaging for 2-Methyl-2-Hydroxypropionamide consists of a 250g amber glass bottle with a secure screw cap and chemical hazard labeling. |
| Shipping | 2-Methyl-2-Hydroxypropionamide is shipped in tightly sealed, chemical-resistant containers to prevent contamination or moisture absorption. It should be transported according to standard chemical safety protocols, in compliance with local and international regulations. Keep away from incompatible substances; store in a cool, dry place during transport to ensure product integrity and safety. |
| Storage | **2-Methyl-2-hydroxypropionamide** should be stored in a tightly closed container at room temperature, away from moisture, heat, and direct sunlight. Ensure the storage area is well-ventilated and free from incompatible substances such as strong oxidizing agents. Avoid exposure to excessive humidity or open flames, and label the container clearly to prevent accidental misuse or contamination. |
Applications of 2-Methyl-2-Hydroxypropionamide in Industrial Manufacturing2-Methyl-2-Hydroxypropionamide serves as a specialized ingredient across several industrial sectors, particularly in advanced coatings, high-performance water treatment additives, select cosmetic formulations, and specialty polymer syntheses. As an original manufacturer, we collaborate closely with downstream industries to optimize the integration of this material in large-scale production—ensuring every batch meets regulatory and quality benchmarks specific to its end use. Below, we detail primary application scenarios with clear distinctions regarding compliance, formulation ratios, process stage involvement, and finished product types. 1. High-Performance Waterborne CoatingsIn the coatings industry, 2-Methyl-2-Hydroxypropionamide is primarily adopted as a reactive intermediate to enhance the wet adhesion and crosslinking characteristics of waterborne acrylic and urethane systems. Its molecular structure introduces pendant amide and hydroxyl groups, facilitating controlled crosslinking in ambient-cured coatings for metal, plastic, and architectural substrates. Industrial producers blend this amide during resin synthesis to achieve favorable open time, block resistance, and improved resistance to environmental degradation, all while meeting modern VOC and emission standards in regulatory-driven markets. Industry compliance standards
Typical usage ratio
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2. Water Treatment Dispersants and Scale InhibitorsMunicipal and industrial water treatment formulators utilize 2-Methyl-2-Hydroxypropionamide as a key building block in multi-functional scale inhibitors and dispersant blends. It provides improved chelation and stability under high-alkalinity and temperature conditions, enhancing the prevention of carbonate and sulfate scale formation. This ingredient supports the trend towards phosphonate-free formulations, aligning with stringent regulatory requirements for discharge water while enabling longer system lifetimes for cooling and boiler operations. Industry compliance standards
Typical usage ratio
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3. Cosmetic Emulsion StabilizersSelective personal care manufacturers employ 2-Methyl-2-Hydroxypropionamide as a stabilizing agent for oil-in-water emulsions, particularly in formulations requiring fine particle dispersion and low irritation potential. Its unique molecular configuration supports homogeneous distribution of actives, improves hydration retention, and ensures batch-to-batch textural consistency in formulations such as creams, gels, and serums. Regulatory oversight in this segment demands verified absence of impurities and close process control to support both efficacy and consumer safety. Industry compliance standards
Typical usage ratio
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4. Specialty Acrylic Polymer SynthesisAcrylic polymer manufacturers integrate 2-Methyl-2-Hydroxypropionamide as a functional comonomer in aqueous and solvent-based polymerization processes. Its incorporation modifies chain architecture, introducing sites for hydrogen bonding or crosslinking, which in turn adjusts elasticity, tack, and durability in pressure-sensitive adhesives and specialty binders. Adherence to polymer purity and characterization standards is central, supported by traceable sourcing and continuous QC analytics in the finished polymer matrix. Industry compliance standards
Typical usage ratio
Downstream process integration
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Every step in chemical manufacturing opens new ground for innovation, and our journey with 2-Methyl-2-Hydroxypropionamide began with requests from partners searching for a more stable, versatile amide. Talking with polymer specialists, resin formulators, and pharmaceutical researchers, we recognized gaps in common amide solutions. Instead of focusing strictly on marginal gains in cost or physical form, the main interest in 2-Methyl-2-Hydroxypropionamide stemmed from performance—especially how its properties complement downstream production and end products.
Over the last decade, we observed a rising trend: R&D departments prioritized molecular architecture that enables selectivity and functionality, not just inert filler or standard intermediates. Through their inquiries, we committed to synthesizing and refining 2-Methyl-2-Hydroxypropionamide not as just another catalog item, but as a tool for future-facing chemistry.
With 2-Methyl-2-Hydroxypropionamide, you see a clear example of structure informing function. This molecule—also known as 2-hydroxy-2-methylpropanamide—offers a secondary amide with a hydroxy group on a branched side chain. On paper, this looks simple, but in practice, this precise arrangement means the compound provides both hydrogen bonding and a specific steric profile. Most amides on the market lack this dual character. A small change to the backbone, such as the addition of a methyl group, brings distinct advantages, extending compatibility with a wider range of solvent systems and functional monomers.
In the plant, synthesizing and purifying this material takes careful control: reaction temperature, molar ratio, and even the order of each addition change consistency and downstream reactivity. Fine-tuning every batch helps eliminate common contaminants and byproducts—especially unreacted acrylates or polymerizable impurities—which could impact your applications. From pilot scale to full manufacturing, every run builds on data from earlier lots, leading to reproducible performance instead of just meeting an abstract spec sheet.
Consistent specification isn’t just a numbers exercise. For 2-Methyl-2-Hydroxypropionamide, close attention to melting range, water content, and residual organic acid content makes a direct difference. Our product usually arrives as a free-flowing white powder, minimizing agglomeration and dust. Typical assay levels come in above 99.2% by HPLC under strict laboratory monitoring. Water absorption stays lower than many straight-chain amides, thanks to the methyl group’s steric effects, which matters for applications demanding precision dosing and limited hydrolysis risk.
We measure every lot’s melting range—usually hovering around 114–117°C—by DSC and traditional capillary methods, ensuring that users in hot or humid climates don’t see unexpected softening or bridging in storage bins. Residual solvent and odor, themes that often plague generic material from traders, stay minimal under our set protocols; batch records include GC profiles and routine odor panel checks. Instead of broad generic specs, these actual, measured values help engineers plan dosing steps, equipment cleaning, and even labeling for regulated markets.
We see 2-Methyl-2-Hydroxypropionamide working hardest in two sectors: advanced resins and pharmaceutical intermediates. In urethane and acrylic resin chains, formulators keep coming back to this molecule for its ability to tweak crosslink density without sacrificing flexibility. The hydroxy function lets it react at lower temperatures, which encourages energy savings and shorter cycle times. Combining it with isocyanates and related cross-linkers supports new foam and elastomer chemistries, where resistance to hydrolysis or aging usually poses headaches with conventional amides.
In pharma and life science labs, researchers value 2-Methyl-2-Hydroxypropionamide for coupling reactions needing selectivity and minimal racemization. Thanks to its structure, it avoids side reactions seen with basic amides. During talking with process chemists, we learned that the molecule’s secondary amide reduces routes to N-oxides, and the branched methyl group blocks certain degradation pathways. This translates to higher yield and cleaner product isolation—directly impacting time-to-market and regulatory filings.
Outside high-volume markets, specialty coatings and adhesives teams also report positive outcomes: using 2-Methyl-2-Hydroxypropionamide as a reactive diluent reduces viscosity without significantly reducing adhesive or film strength. Its unique hydroxy function, not common among amides available in bulk today, leads to better compatibility with epoxides and polyurethanes—key when chasing performance targets in next-generation adhesives.
Many customers ask why this compound stands out compared with other amides. Standard straight-chain amides like acetamide or formamide provide basic hydrogen bonding but lack the combination of hydroxy functionality and branched stability that comes from the methyl group. The result is a product that offers higher hydrolytic stability, better solvent miscibility, and more reactivity for performance composites.
Cycling back through customer feedback, we rarely see the same level of storage stability in generic unbranched amides, which tend to lump or discolor on extended storage—especially under modest humidity shifts. Repeated use in industrial polymerizations has shown that unbranched structures introduce unexpected soft spots or fail to match the stress profiles needed for durable end products.
Another key distinction comes from odor and volatility profiles. Unmodified amides sometimes produce off-odors, especially if not properly purified or shipped under standard conditions. By strict control of the final crystallization and drying steps, our 2-Methyl-2-Hydroxypropionamide stays low in extractables and off-odor contaminants. Packaging options include moisture-barrier sacks and inert-gas bulk bins, a direct result of operator recommendations during site audits and routine partner site visits.
Long-term partnerships rest on trust, and much of that comes from rigorous quality control. Running a manufacturing site for specialty amides means more than just routine lab analysis. Regular process audits, supplier traceability checks, and full data capture for every production run allow us to isolate root causes of variability and fix them before they reach end users. We actively collect stability data from real warehouse and transit conditions, not just lab samples, so partners in different climates see material that matches their needs.
Shipping problems—lost drums, heat-affected waybills, labeling issues—aren’t theory for us. Every suggestion our logistics teams or customers share shapes our packing and documentation protocols. We introduced tamper-evident seals and worked with logistics partners with direct chemical handling experience. During scale-ups or new line qualifications, open communication with plant engineers and purchasing leaders helps catch the small details that can disrupt a supply plan.
During the global supply crunch, we saw how important true vertical integration is for reliability. By securing raw material sources for both acrylonitrile and key catalysts, and maintaining on-site hydrogenation and purification, we kept supply on track even through shifts in global trade. Allocating buffer inventory upstream helped maintain JIT delivery for regular partners, without sacrificing traceability or blending in off-spec stock.
Quality isn’t static: ongoing adjustments to meet evolving REACH, EPA, and GHS requirements shape production. We proactively adapt documentation and lot verification to align with regulatory audits, so customers from pharmaceuticals to construction don’t deal with unexpected registration snags or data gaps.
Talking daily with research chemists and plant managers, we hear project goals ranging from novel drug scaffolds to green polymer alternatives. This real-time feedback encouraged us to invest in modular batch reactors and flexible purification, letting us support requests for varied particle size, purity level, or even specific trace analysis with short lead times. Some partners need ultra-low heavy metal content, while others prioritize low bioburden or rapid re-dissolution for continuous processes.
During the development of new waterborne coatings, our technical team collaborated with customer chemists to analyze how even subtle shifts in melting point or hydroxy content changed dispersion or shelf life outcomes. We studied each process—sometimes at the customer’s site, sometimes through repeated pilot batches in our own labs—to make sure the product delivered consistent performance in their real-world systems, not just our own.
For pharmaceutical and life sciences customers, regulatory support means more than just providing a generic CoA. We gather analytical data across multiple batches and provide impurity profiling, NMR datasets, and custom documentation for DMF filings or supplier audits. The practical difference between lab-grade and GMP-certified manufacturing comes down to clear communication, traceable data, and willingness to adjust schedules or run additional cleaning verification between lots. In practice, this means fewer delays and fewer surprises at the testing or scale-up stage.
Operating at the intersection of performance and safety takes ongoing vigilance. Early on, we invested in process changes and closed handling systems that minimize operator exposure and limit waste. Our 2-Methyl-2-Hydroxypropionamide shows lower volatility and less irritation risk than many more basic amides. With defined granulometry and improved filtration, operators during transfer and packaging reported fewer airborne fines and less residue on equipment.
We continuously review internal handling guidelines, not waiting for external mandates. Waste minimization comes from solvent recovery, in-house water treatment, and finding value outlets for minor side streams. During customer audits, site tours demonstrate closed handling, targeted extraction, and rapid spill containment—helping partners document workplace and environmental risk controls. By sharing our audit results and recommendations, partners adapt similar good practice at their sites, building trust in the supply chain and safer workplaces for every operator.
Staying relevant in the fine chemical field demands facing tough questions. Does each lot meet the newest analytical standards? Does a change in raw material origin impact trace organics or minor impurity profiles? Our technical leads and R&D teams regularly benchmark the product, testing alternative feedstocks and newer purification technologies. When an issue arises in the lab or in end-use performance, we take it seriously—analyzing not just the chemistry, but the whole chain of events that led to the problem. Open feedback loops—and ongoing learning—drive these iterative improvements.
Investments in employee expertise, not just digitalized analytics or process control, bear fruit during unexpected events: power failures, seasonal raw material swings, or regulatory shifts. Blending science with practical experience, our crews adapt quickly, maintaining the same high standards in every drum and tote delivered. We bring these learnings directly into process updates and technical workshops—not just for internal improvement, but also for open customer training and support.
Modern manufacturing teams want to keep projects on track, confident in reliable, transparent supply that adds value, not complexity or downtime. A specialty amide like 2-Methyl-2-Hydroxypropionamide, built on real-world feedback and ongoing process refinement, helps unlock product innovation. By focusing on both product purity and practical details—melting point, water content, stability—manufacturers and researchers pursue ambitious new resins, coatings, and intermediates with fewer delays or surprises.
Every conversation with technical teams, every field test, and every product improvement reinforces one point: chemistry moves forward when partners share expertise and a commitment to practical solutions. Our mission is to keep advancing the performance, consistency, and sustainability of 2-Methyl-2-Hydroxypropionamide, supporting everyone pushing industry boundaries—from next-generation polymers to tomorrow’s pharmaceuticals.