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HS Code |
262584 |
| Cas Number | 3496-76-4 |
| Iupac Name | Nonadecan-1-amine |
| Molecular Formula | C19H41N |
| Molecular Weight | 283.54 g/mol |
| Appearance | White to off-white solid |
| Melting Point | 47-50°C |
| Boiling Point | 375.7°C at 760 mmHg |
| Density | 0.818 g/cm³ |
| Solubility In Water | Insoluble |
| Synonyms | 1-Aminononadecane, n-Nonadecylamine |
As an accredited 1-Aminononadecane factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 1-Aminononadecane, 25g, is supplied in a sealed amber glass bottle with a secure screw cap and a chemical safety label. |
| Shipping | Shipping of **1-Aminononadecane** should comply with relevant regulations for organic amines. It is typically transported in tightly sealed containers, protected from moisture and direct sunlight. Appropriate labeling, safety data sheets, and hazard communication must accompany the shipment, with provisions for handling spills and using personal protective equipment during transit and handling. |
| Storage | 1-Aminononadecane should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from incompatible substances such as oxidizing agents and acids. Protect from moisture and direct sunlight. Ensure proper labeling and keep away from sources of ignition. Use appropriate containment to avoid environmental release and follow standard protocols for storing amines. |
Applications of 1-Aminononadecane in Industrial ManufacturingAs a direct producer of 1-Aminononadecane, we collaborate with major industrial end-users for high-purity amine integration across multiple sectors. Below, our application roadmap outlines how downstream manufacturers deploy this C19 primary amine in specialized processes, addressing compliance, dosing, plant integration, and finished goods. 1. Synthesis of Cationic Surfactants for Antistatic AgentsSpecialty chemical and polymer manufacturers use 1-Aminononadecane as a long-chain primary amine intermediate to produce cationic surfactants, particularly quaternary ammonium compounds for antistatic finishes. Amination or quaternization steps integrate it into surface-active molecules that impart durable anti-static properties to thermoplastics, fibers, and coatings. Strict control of reaction purity and residual amine content is essential to meet electronics and automotive sectors’ surface resistivity requirements, while regulatory controls limit residual unreacted amines and process by-products in final dispersions. Industry compliance standards
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2. Lubricant Additive Component (Surface Friction Modifiers)Formulators in lubricant and grease manufacturing incorporate 1-Aminononadecane as a friction modifier to enhance boundary lubrication in metalworking fluids, gear oils, and specialty grease compositions. Its long alkyl chain and primary amine head offer strong adsorption on metallic surfaces, improving film strength and reducing wear under high-load conditions. QC teams must monitor amine purity and stability, and downstream blenders ensure integration meets performance and health safety benchmarks, especially in equipment exposed to food or beverage processing. Industry compliance standards
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3. Corrosion Inhibitor Synthesis for Oilfield ChemicalsCompanies serving the oil and gas sector use 1-Aminononadecane as a precursor in the manufacture of filming amine-based corrosion inhibitors deployed in upstream drilling, downhole operations, and pipeline protection. The molecule’s surfactant character ensures strong film formation and hydrophobic barrier properties even under aggressive brine and sour gas conditions. Operators measure purity, nitrogen content, and effectiveness through laboratory and field trials, ensuring compliance with sector-specific standards for inhibitor quality and safety. Industry compliance standards
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4. Intermediate for Specialty Amide Production (Cosmetic & Personal Care)Personal care ingredient manufacturers synthesize long-chain aliphatic amides using 1-Aminononadecane via direct reaction with fatty acids or acid anhydrides. The resulting amides function as opacifying agents, thickeners, or emollients in high-end skin creams, conditioners, and non-ionic surfactant blends. QA and R&D teams follow rigorous GMP protocols to verify allergen control, amine/acyl ratio, and residual solvent limits, ensuring the safety profile required for regulatory compliance and effective sensory properties in end products. Industry compliance standards
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5. Waterproofing Agent Synthesis for Textiles and LeatherTechnical textile and leather chemical suppliers derive durable hydrophobic treatments by reacting 1-Aminononadecane with functional carboxylic or isocyanate compounds. The resulting cationic agents impart water repellency and oil resistance to fibers, sportswear, and finished leathers, used by downstream processors in both wet-end and post-treatment steps. Manufacturers track performance via standardized spray tests, penetration resistance, and migration studies, confirming conformance with supply chain and environmental regulations. Industry compliance standards
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6. Phase Transfer Catalyst Precursor in Fine Chemical SynthesisFine chemical producers utilize 1-Aminononadecane as a starting material for the preparation of specialized long-chain quaternary ammonium salts used as phase transfer catalysts. These compounds accelerate heterogeneous organic transformations, including alkylations and condensations, in pharmaceutical and agrochemical active ingredient manufacturing. Process chemists tailor conversion rates and elimination profiles, maintaining high selectivity while minimizing residual catalyst and complying with batch traceability demands. Industry compliance standards
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Every batch of 1-Aminononadecane heading out the door bears the result of experience and attention to detail. As the manufacturer, I’ve seen the journey from raw alpha-olefins all the way to the smooth, nearly colorless liquid that leaves our reactors. For those working with specialty amines in surfactant, lubricant, or chemical intermediate applications, details about consistency, chemical handling, and downstream reliability matter. We keep these points in focus during manufacturing, because subtle changes at our end translate directly into major headaches or successes for our industry partners.
This product—1-Aminononadecane—belongs to the family of long-chain primary alkyl amines. Structurally, it consists of a nineteen-carbon chain with a primary amine group at the head. In the plant, its fatty amine structure sets it apart from shorter-chain analogs, not just in length but in reactivity, physical behavior, and compatibility with hydrophobic formulations. Unlike amines of lesser chain length, this one refuses to blend into aqueous solutions without assistance. For certain tasks, particularly in nonpolar solvents or additive matrices, this trait finds a practical advantage.
Over years running reactors and distillation columns, our team has aimed to refine not just purity, but also the ease with which our clients can incorporate this amine into their process streams. The 99% minimum assay specified by most technical requirements didn't appear overnight. It came from tuning hydrogenation steps, controlling feed purity, and maintaining low water and aldehyde content batch after batch. Each minor tweak reduces issues downstream—such as phase separation or residue in sensitive catalyst systems.
In our standard model, 1-Aminononadecane presents as a viscous liquid at room temperature, with a melting point just above 30°C. Our customers focused on surfactants and specialty coatings ask for this profile. Pour point and color under the APHA scale remain low, thanks to continuous distillation under reduced pressure. We control moisture content below 0.5%, measured by Karl Fischer, since excess trace water often disrupts alkylation or quaternization.
Colleagues working in the lubricants and corrosion inhibition industries rely on the hydrophobicity and chain length of this amine for tailored benefits. The amine head interacts with metal surfaces or polar substrates, while the long carbon tail aligns with hydrocarbons or apolar polymers. In practical use, this difference matters: surfactants built on 1-Aminononadecane deliver greater substantivity to nonpolar surfaces than those derived from lesser homologs. Moreover, its volatility remains low, so the risk of evaporation or off-gassing in high-temperature service oils is minimized.
During storage in our plant and at customer sites, we’ve avoided common pitfalls seen with shorter-chain amines. Thanks to its relatively high molecular weight and low vapor pressure, inhalation exposure stays minimal in ambient conditions, and odor persists more as a mild amine scent rather than the sharp note of C8 or C12 amines. In the plant, drums and IBCs store it without special containment, though warming may be required in colder climates to ensure flowability. Lessons learned: a slight trace of water or oxidant can accelerate discoloration, so sealed, inert headspace is standard. From plant experience, simple steps taken at the source keep the downstream product stable and free from haze.
Nobody on the plant team wants to answer for a blocked dosing line or an off-spec batch in a customer's reactor. Over time, the processes for synthesizing 1-Aminononadecane have been tuned to reduce side reactions and the formation of cyano byproducts. Instead of mass-producing with a broad tolerance, we verify each lot via gas chromatography for purity, and check secondary amine and residual unsaturation. Our clients’ quality control labs count on those reports. When we meet the spec, their formulations run smoothly. Miss it, and the whole supply chain stalls.
Chemically, not all amines behave the same. Sometimes a formulator considers swapping between alkyl amines for price or availability. Plenty of times, we’ve seen attempts to use C12 or C16 analogs as substitutes for C19. Once supply shortens or price swings, managers look for alternatives. From test data and trial production, it's clear: the balancing act between solubility, chain interaction, and amine head reactivity changes dramatically with carbon count. For hydrophobization of silica or certain catalysis roles, only C19 achieves the melt point and solvency window required for process success. At the same time, longer amines can increase viscosity and lower volatility, causing greater stability in demanding environments.
In antistatics, emulsifiers, ore flotation agents, and asphalt additives, each real-world use case confirms or contradicts theory. One large coatings producer worked with both C16 and C19 amines, but found the latter delivered better migration into polymer films with less phase separation during aging. An oilfield service provider told us that, for corrosion inhibitors in high-salinity fluids, longer-chain amines form tighter surface adhesion and improved mineral wettability. Each story from our partners feeds back into process optimization at the plant.
Responsible chemical manufacturing doesn't exist in a vacuum. The fatty amines sector relies heavily on upstream supply chain reliability. For 1-Aminononadecane, most feedstock comes from high-purity linear alpha olefins or fatty acid reduction. Shocks in the feedstock market—whether from geopolitical swings or weather impacts on feed crops—force us to evaluate our sourcing practices and forward contracts. Every year, we review and, where possible, diversify suppliers to minimize interruptions. Sustainable practices go beyond talking points; for every metric ton produced from plant-based origins, waste minimization and process energy management are part of the daily operation.
Long-chain amines require compliance with evolving regulations. European REACH assessments focus on environmental persistence and toxicity. While 1-Aminononadecane shows more limited bioaccumulation and lower acute toxicity than some unsaturated or branched amines, continuous review of its aquatic profile influences both our production footprint and our customers’ product development. Working with regional agencies, we anticipate changes in reporting needs and make adjustments early, de-risking clients from last-minute surprises during audits or new product registrations.
Several years ago, a surfactant producer approached us to discuss foaming profiles in ore beneficiation. Their technical team found that using shorter chain amines led to inconsistent froth, affecting mineral recovery rates in flotation columns. Working together and examining in-plant pilot runs, data pointed to superior performance with 1-Aminononadecane. Its aliphatic tail changed the air-liquid interfacial behavior—resulting in a more stable froth and higher mineral recovery. Such collaborations don’t just prove academic points; they create value and share insight that feeds future product specification tweaks.
Chemical safety practices guide every phase of in-plant operations. Over time, our team found that compared to shorter-chain amines, 1-Aminononadecane’s low vapor pressure reduces airborne exposure and spills are simpler to manage in manufacturing and packaging. Personal protective equipment, engineering controls, and staff training stay part of the everyday routine. Long-term industrial hygiene records show incidents involving this amine remain rare—fewer than those seen with related substances featuring lower boiling points or greater reactivity. This property, combined with the absence of aggressive odor, simplifies workplace compliance and keeps morale high in production and shipping.
Periodic spikes in demand for 1-Aminononadecane often correlate with increases in lubricants, mining chemicals, or specialty polymers markets. During pandemic-driven disruptions, manufacturers that could retain stable product lines fared better. On the plant floor, we adapted by maintaining extra finished goods inventory, quicker batch turnover, and early customer forecasting conversations. Direct communication allowed us to keep integrations seamless, preventing gaps for both new and recurring industrial partners. The lesson: control over synthesis and quality translates directly into reliable partnerships.
Customers regularly introduce unique process steps. Sometimes, these involve additional hydrogenation, custom blending, or specialized anti-caking agent incorporation. We listen and respond, sometimes running pilot batches to adjust pour point, modify color characteristics, or reduce residual unsaturation per their feedback. Rarely does a one-size-fits-all approach deliver best results, so our lab team stays available for short-turnaround analysis and scale-up. Each real performance test or formulation trial helps us tune specs for the next production run.
Every outbound shipment contains not just product, but full analytical backing. Certificates of analysis report purity, moisture, and color for the specific lot. Usage instructions, based on past client input, help end users avoid pitfalls of dosing or storage under suboptimal conditions. As a manufacturer, we field technical questions directly—without funneling queries through layers of intermediaries—delivering prompt answers rooted in actual process data. We keep production logs and batch records accessible, supporting traceability from raw feedstock to finished material.
Past experiences have taught us that improper handling can affect outcomes. Several years ago, a customer stored 1-Aminononadecane in unlined steel tanks, resulting in gradual discoloration and trace iron pickup. Together, we traced the issue to oxygen penetration through worn tank seals. By suggesting nitrogen blanketing and switching to HDPE or stainless storage, future incidents disappeared. These kinds of plant-level insights don’t make it into standard sales data sheets, but they matter most for uninterrupted production on the user's end.
In the chemical industry, trust builds with every delivered lot that matches stated specs. As markets evolve, we review not only the technical standard for 1-Aminononadecane but also how process upgrades—new catalysts, improved distillation, tighter filtration—translate into advantages for end users. Scaling up or dialing down batch sizes, enhancing residue management, and adjusting final product packing all play into delivering predictable results in diverse application environments.
Industry journals and technical conferences highlight a growing set of uses for long-chain amines, both in existing fields and emerging ones like biodegradable lubricants or high-performance coatings. Research partners explore modification of 1-Aminononadecane to yield new cationic surfactants with unique phase behavior. The feedstock supply chain continues to integrate sustainability, with larger customers requesting audit trails from field to plant gate. Feedback cycles now run shorter; direct manufacturer-client dialogue means plants shift specs far quicker than ever before.
Ultimately, what separates manufacturer-to-customer supply from trading or third-party channels comes down to problem-solving. Years of producing, testing, and troubleshooting 1-Aminononadecane give our team clarity on what works and why. Whether the issue involves a pump line plugging or a new surfactant formulation behaving unpredictably, someone on the plant or lab team has faced a similar scenario. This hands-on experience shapes not just production, but the day-to-day support and innovation needed by partners downstream. Our commitment rides on every tank, drum, or pallet sent out—not just to meet a number on a specification sheet, but to support the broader goals and challenges faced by industrial users of specialty amines everywhere.