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3-(Octylamino)Propionitrile

    • Product Name 3-(Octylamino)Propionitrile
    • Alias OAPN
    • Einecs 629-725-6
    • 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

    922693

    Chemicalname 3-(Octylamino)Propionitrile
    Molecularformula C11H22N2
    Molecularweight 182.31 g/mol
    Casnumber 19980-44-4
    Appearance Colorless to pale yellow liquid
    Boilingpoint Unknown (likely above 200°C)
    Density Approx. 0.86 g/cm3
    Solubility Slightly soluble in water, soluble in organic solvents
    Meltingpoint Unknown (expected to be below room temperature)
    Flashpoint >100°C (estimate)
    Purity Typically ≥98%
    Synonyms N-Octyl-3-aminopropionitrile
    Refractiveindex Approx. 1.445
    Storageconditions Store in a cool, dry, and well-ventilated place
    Smiles CCCCCCCCNCCCN

    As an accredited 3-(Octylamino)Propionitrile factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The 100g quantity of 3-(Octylamino)Propionitrile is securely packaged in an amber glass bottle with a tamper-evident screw cap.
    Shipping 3-(Octylamino)propionitrile is shipped in airtight, chemical-resistant containers to ensure stability and prevent contamination. Packages are labeled according to regulatory requirements, including hazard identification. It should be handled by trained personnel. Transport conditions typically avoid extreme temperatures, and shipping complies with local, national, and international chemical safety standards.
    Storage Store 3-(Octylamino)propionitrile in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers and acids. Keep the storage area protected from moisture and direct sunlight. Ensure appropriate labeling and secondary containment to prevent leaks or spills. Use appropriate personal protective equipment when handling to avoid skin and eye contact.
    Application of 3-(Octylamino)Propionitrile

    Applications of 3-(Octylamino)Propionitrile in Industrial Manufacturing

    As the original manufacturer of 3-(Octylamino)Propionitrile, we support a range of niche industrial sectors that demand specialized molecular intermediates. Our processes and quality management systems are built around the needs of key application markets that rely on strict standards, tailored formulation, and precise integration into downstream manufacturing. Below are the main industrial application scenarios in which this chemical is used, each distinguished by specific technological and regulatory demands.

    1. Cationic Surfactant Synthesis for Fabric Softener Manufacturing

    The long-chain aminonitrile structure enables its use as a core intermediate in producing quaternary ammonium cationic surfactants, which downstream producers incorporate into high-performance fabric softeners. This raw material reacts with methylating agents and other chain extenders during surfactant synthesis, imparting targeted anti-static and softening functionality to finished products. Quality and compliance are crucial, particularly due to skin contact applications.

    Industry compliance standards

    • Regulation (EC) No 648/2004 on Detergents (EU)
    • EPA Safer Choice Standard (USA)
    • REACH (EC) No 1907/2006
    • ISO 9001:2015 certified quality management systems in downstream processing

    Typical usage ratio

    • 0.5–3.0% as a secondary amine-building block in targeted cationic surfactant formulations; precise percentage varies based on desired softness performance and fabric compatibility

    Downstream process integration

    • Introduced during the surfactant synthesis phase as a reactant for amination and quaternization steps, ensuring controlled nitrogen donation and chain length modification

    Final product types

    • Liquid and sheet fabric softeners for consumer and commercial laundry care
    • Textile conditioning additives
    • Industrial antistatic agents for synthetic fiber processing

    2. Corrosion Inhibitor Additive Manufacturing for Oil & Gas Pipelines

    Its aliphatic amine functionality and hydrophobic tail structure make this compound an effective intermediate for corrosion inhibitor additive synthesis in the downstream oil and gas sector. Downstream formulators use it to manufacture inhibitor concentrates that combat internal corrosion in pipeline, storage, and transportation systems, where superior adherence and neutralization of acidic by-products are needed to maintain asset integrity.

    Industry compliance standards

    • NACE International TM0172—Testing of Corrosion Inhibitors
    • API RP 651—Cathodic Protection of Aboveground Petroleum Storage Tanks
    • ISO 9001:2015 for additive blending facilities

    Typical usage ratio

    • 1.0–5.0% in final corrosion inhibitor formulation, adjusted for water salinity and sulfur content in pipeline conditions

    Downstream process integration

    • Combined during the blending phase of corrosion inhibitors as a stabilization component and to improve surface adsorption properties

    Final product types

    • Pipeline corrosion inhibitor concentrates
    • Crude oil transportation additives
    • Oilfield equipment protection fluids

    3. Synthesis Intermediate for Pharmaceutical Impurities Control

    In the pharmaceutical sector, 3-(Octylamino)Propionitrile functions as a niche intermediate in the synthesis of certain active pharmaceutical ingredient (API) impurities and reference standards, particularly in alkylamine-related APIs. Its defined linear chain and terminal nitrile group allow controlled introduction of C8 alkyl fragments for impurity profiling or process chemistry studies during generic API process validation and impurity identification phases.

    Industry compliance standards

    • ICH Q3A/B—Guidelines for Impurities in New Drug Substances and Products
    • Current Good Manufacturing Practice (cGMP)—21 CFR Parts 210 & 211 (FDA)
    • Ph. Eur. 10th Edition

    Typical usage ratio

    • 0.01–0.5% as a process intermediate or impurity spiking standard, dosage determined by target impurity levels and sensitivity of analytical workflow

    Downstream process integration

    • Used in laboratory-scale synthetic steps and analytical sample preparation for API impurity mapping and validation protocols; never present in final registered drug substance

    Final product types

    • Reference impurity standards
    • API process validation materials
    • Analytical control substances for chromatographic impurity profiling

    4. Antimicrobial Agent Intermediate for Industrial Coatings

    The unique alkylaminonitrile structure grants this compound potential as a synthesis intermediate for the preparation of cationic antimicrobial agents, which downstream formulators incorporate in industrial coatings for surfaces exposed to high microbial loads. The introduction of octyl chains during agent synthesis enhances the hydrophobic interactions required for durable biocidal activity in both solventborne and waterborne technologies installed in sensitive environments.

    Industry compliance standards

    • Biocidal Products Regulation (EU) No 528/2012
    • EPA Registration under FIFRA (USA)
    • ISO 22196—Measurement of antibacterial activity on plastics and other non-porous surfaces

    Typical usage ratio

    • 0.2–1.0% in the synthesis of quaternary biocidal active materials before integration into coating resin matrices; dosage based on targeted microbial spectrum and end-use exposure

    Downstream process integration

    • Added during the preparation of cationic biocidal actives, then incorporated either directly into resin compounding or via a pre-dispersion step in the paint or coating manufacturing process

    Final product types

    • Antimicrobial architectural coatings
    • Industrial floor and wall finishes for food & beverage processing facilities
    • Protective coatings for medical device housings and hospital fixtures

    5. Functional Monomer Modifier for Polymeric Emulsion Synthesis

    Chemists in the specialty polymers industry use this molecule as a functional monomer modifier in the emulsion polymerization process to tailor surface activity, improve film formation, and adjust hydrophilic-lipophilic balance of polymer dispersions. Its controlled reactivity allows for precise grafting onto polyacrylic, polyurethane, or epoxy chains, expanding options for high-end emulsion products used across adhesives and specialty coatings.

    Industry compliance standards

    • ISO 9001:2015 for polymer manufacturing control
    • ASTM D4209—Standard Practice for Emulsified Polymeric Resins
    • Restriction of Hazardous Substances (RoHS) (for certain downstream applications)

    Typical usage ratio

    • 0.1–0.7% as a chain modifier in acrylic or polyurethane emulsion formulations, according to required molecular weight and target surface energy

    Downstream process integration

    • Charged at the monomer dosing step in batch emulsion polymerization, either as a co-monomer or post-modification additive during latex stabilization

    Final product types

    • Specialty adhesive dispersions for automotive & electronics
    • Nonwoven binder emulsions
    • Low-VOC architectural coatings
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    Certification & Compliance
    More Introduction

    3-(Octylamino)Propionitrile: Building Reliable Chemistry From the Lab Floor Up

    Inside Our Factory: The Story Behind a Key Intermediate

    When a production batch starts, the choices made with every raw material ripple into a string of outcomes—yield, purity, workability, long-term consistency. We have seen impressive changes in how a product like 3-(Octylamino)Propionitrile influences production efficiency across multiple applications. Most customers come to us needing a precise intermediate that holds up batch after batch, not a theoretical reagent that just looks good on paper. This is where real experience in manufacturing makes all the difference.

    Our model of 3-(Octylamino)Propionitrile has developed through years of incremental improvement, customer feedback, and learning from our own everyday troubleshooting. In the earlier years, production often produced off-color or impure lots, a clear sign that process adjustments were necessary. We experimented with reactor geometry, stirring speeds, and refinements to pH control—sometimes overhauling entire purification steps when even trace side reactions showed up during scale-up. These lessons do not come from a PDF specification sheet but from countless lab analyses, discarded samples, and conversations with partners downstream.

    The Value of Consistency in Chemical Manufacturing

    Chemical intermediates, especially amine nitriles such as 3-(Octylamino)Propionitrile, do not just sit in storage. They feed into the next step, playing a central role in everything from surfactant development to specialty lubricant synthesis and pharmaceutical precursors. Several colleagues on the floor still remember the production run that went haywire after a raw material supplier changed supply without warning. That one experience taught us, the hard way, that quality control can’t ever take a back seat to quantity. Product consistency, both in physical attributes and chemical purity, deserves to be guarded with more vigilance than a simple check-box inspection.

    We invest in full-spectrum analytics—NMR, HPLC, GC-MS, and batch-to-batch spectral comparisons—often finding elements that less rigorous quality schemes might let slide. Sometimes it’s about a narrow impurity band, sometimes it’s about subtle moisture pickup during a humid week. Without this hands-on vigilance, downstream reactions would suddenly give erratic results, adding rework or, worse, failed products for our customers. These lessons have reinforced a core principle: a dependable source of 3-(Octylamino)Propionitrile starts at the tank but stretches all the way to the customer’s finished good.

    Applications on the Factory Floor

    Our customers regularly use 3-(Octylamino)Propionitrile as an intermediate in the production of surfactants, textile auxiliaries, and synthetic lubricants. In pharma synthesis, the role can be more specialized. The molecule’s long octyl chain and dual functional groups provide a platform for reactions where both hydrophilicity and lipophilicity count. Some partners employ the product in making cationic surfactants; others leverage the nitrile group’s reactivity for constructing higher complexity molecules.

    Based in regular technical exchanges, a recurring subject lies in how a clean, homogeneous intermediate can sharply reduce catalyst fouling or side product formation. Our process design keeps an eye on minimizing residual amine content and limiting unreacted propionitrile, two areas where even modest contamination—just a few hundred parts per million—can throw off the customer’s next stage. In several surfactant R&D collaborations, customers managed to boost their yields just by swapping in our higher-purity material. The gains become even more visible on a hundreds-of-kilos or multi-ton scale, where every barrel that passes QA without rework translates into real savings.

    Realities: Production Challenges and Hands-on Solutions

    Hydrogen cyanide safety, raw material volatility, and proper control of alkyl amines are parts of our daily vocabulary. Every chemical plant operator learns to respect the power of a small measurement error—an extra half-degree, a slow valve, a slack cooling jacket. Early scaling runs of 3-(Octylamino)Propionitrile showed us the risks all too clearly. A misjudged heating ramp or poorly degassed solvent could send material off spec. Faced with these hurdles, we developed in-line sensors for better temp control and installed atmospheric monitoring to avoid accidental overpressures.

    The supply of octylamine is also a recurring bottleneck, especially during periods of upstream disruption. Relying on real-world market intelligence, we set up a second qualified supplier, not because the spec demanded it, but because experience taught us that redundancy prevents costly factory stops. Every decision about scale-up, tankage material, and utility backup came about because someone on the line lost sleep over a lost shift.

    Waste management and emissions control are never “solved and done.” Process design teams spend as much time planning for safe byproduct handling, for example, nitrogen and hydrocarbon cleaning, as they do on the main reaction. We focus obsessively on closed-loop handling and solvent recovery, which does not always show up as a line on a sales sheet, but it lowers both our long-term costs and the environmental load on the community.

    Key Differences: Comparing to Other Alkylamine Nitriles

    3-(Octylamino)Propionitrile has a unique niche compared to shorter-chain or aromatic amine nitriles. Octyl substitution on the amine imparts higher hydrophobicity, shifting its behavior in surfactant and oil additive systems. Blends using hexyl- or butyl-substituted versions tend to give higher volatility and lower thermal stability, important in hot operating environments. On the other hand, aromatic versions often show higher toxicity and skin irritation potential, which matters in applications with human contact risks.

    One vivid comparison came from a lubricant additive manufacturer: a switch from a lower alkyl analog to our octyl-based material halved their deposit formation in long-term engine bench tests. Not all changes show up in the test tube—certain side reactions only manifest under real pressure, temperature, and scale. We have had users report improved emulsion stability and slower degradation in textile finishing applications, most of which link directly to the amphiphilic balance provided by the octyl group.

    Cost-wise, octyl substitution brings a slightly higher price, reflecting both the raw material and the process safety demands of a longer-chain amine. End users who have tested various alternatives price performance per batch, not just kilo-for-kilo, and often return for the octyl version after experiencing reduced rework and waste.

    The Evolution of Our Production Process

    The early days of 3-(Octylamino)Propionitrile were rougher in nearly every aspect. Older batch records tell stories of cleaning up gelatinous residues, unexpected odors from incomplete conversion, and late-night calls when thermal swings ruined an entire tank. Over the years, we shifted gradually from manually controlled steps to automated sensor-driven batching. Inline gas monitors replaced simple sight-glass checks, and computer-logged control charts help operators catch deviations before they grow into lost-time events.

    Process safety audits fueled changes that shaped our present approach—twice-yearly hazard reviews, walk-downs with engineering and production, and incident sharing meetings. These may not sound glamorous, but every incremental improvement stacks up. Improved PPE, tougher containment, and operator training have together cut our lost-time incident rate to a fraction of what it was. We also began compiling “production recipes” that include not only parameter targets but practical field notes, such as the best order of reagent addition or how to spot early signs of foaming.

    Technical support now pulls directly from these learnings. When a customer encounters unexpected byproducts or cloudiness, we rarely just send a spec sheet. Someone who’s stood beside the reactor, cleaned the trays, and handled the same molecule walks them through the scenario. It’s common for a problem-solving call to spark another process tweak on our side, keeping the feedback loop alive.

    Product Specifications in Practice

    The model we ship today reflects all these hands-on lessons. We design for GC purity above 99 percent, strict limits on water content, and consistent appearance—no off-colors, no odd odors, no “drum surprise.” Specifications list typical analytical results such as proton NMR profiles, moisture limits, and impurity cutoff thresholds. These aren’t just numbers—when a deviation occurs, the entire team treats it as a call to action, not a tolerable variance.

    More than half our technical support requests touch on spec-to-application mapping: should users adjust reaction conditions, what batch prep routines work best, and how should operators handle outlier results? Detailed batch records and a willingness to share real manufacturing experience helps both sides avoid the kind of guesswork that leads to quality escapes.

    Stability testing is another area where hands-on diligence matters. Accelerated aging, outdoor tank observations, and real transport simulation all figure into shipments, ensuring our product performs predictably whether it’s being loaded in mid-summer heat or transferred in subzero conditions. This practical feedback has prompted us to modify anti-static bagging and sample withdrawal routines to guard against unnoticed issues.

    The Payoff: Long-Term Customer Partnerships

    Customers, ranging from multinationals to independent innovators, often run tight operations with little margin for error. Conversations about 3-(Octylamino)Propionitrile rarely end at “Does the chemical meet spec?” Instead, they turn toward “Will this molecule make my downstream process more robust?” Many of our closest partners started as one-off inquirers who ran a single trial batch. After real-world runs showed fewer filter clogs or stubborn off-spec events, orders grew in frequency and size. That sort of customer loyalty doesn’t spring from bland commodity sales; it comes from seeing us as problem solvers who understand both the molecule and the context.

    Facility visits add another dimension to these relationships. Participating labs get to see the care taken in sampling, packaging, and inventory handling. Technicians compare notes, trade troubleshooting tips, and help inform tweaks to local processes that save time and cut rework. The relationship moves from a transaction into a partnership—customers trust that our team does not cut corners on cleaning, batch separation, or last-mile logistics. Our goal remains the same: fewer headaches, higher yields, and processes that customers can depend on.

    The Market and Beyond

    Global demand patterns for 3-(Octylamino)Propionitrile follow changing trends in specialty surfactants, high-performance lubricants, and tailored chemical intermediates. Changes in environmental or safety regulations trigger queries about trace impurity profiles, new handling guidelines, or the use of certain solvents, pushing us back to the lab for more rapid analysis or reformulation. We have already reworked portions of our plant to reduce solvent emissions and improve waste capture, which serves both regulatory expectations and internal cost goals.

    Trade disruptions, whether driven by economic or political currents, reinforce the value of sourcing resilience. Our vendor qualification routines now include on-site inspections, annual quality audits, and regular stress-testing of supply chains. These efforts ensure that single-point failures don’t ripple through to the production of 3-(Octylamino)Propionitrile.

    From a competitive standpoint, we know there are lower-cost options on the market. Many come with asterisks: trace contaminants, variable lot quality, or inconsistent support. Our philosophy steers away from offering “spec as a service” and instead stays rooted in meeting customer needs for reliability, clarity, and performance. Our operators, technical staff, and logistics teams work together to maintain a product that professionals can build processes around.

    Looking Forward: Innovation Grounded in Practice

    We rarely make changes lightly. Manufacturing builds its reputation batch by batch, and every innovation gets thoroughly vetted in controlled pilot runs before the team integrates new methods. Scaling improvements in yield or energy savings are weighed against the need for predictability. Many of our best innovations emerge not from conference rooms but from operators and engineers who recognize a better way while troubleshooting a persistent issue.

    Sustainability now plays into every capital improvement discussion. Recovered solvents get recycled internally to cut both input costs and environmental impact. Energy-efficient heating and chilling upgrades often follow pilot attempts that demonstrate real, measurable benefit. At the same time, product stewardship continues after the shipment leaves our facility—clear documentation, post-sales support, and product recalls (when necessary) reflect our continued accountability.

    If a manufacturer claims to have no issues, they are not looking closely. Real chemical production means balancing safety, output, and long-haul trust. We built our current 3-(Octylamino)Propionitrile production on experience—the kind you only gain by sweating through both nightmare runs and seamless campaigns. We plan to keep investing in operator know-how and plant improvements so that users see fewer defects, higher process flexibility, and longer-term value in every shipment.

    Summary: Why Real Manufacturing Experience Matters

    We’ve learned the practical meaning of reliability—uninterrupted, quality supply is never accidental. Each lot of 3-(Octylamino)Propionitrile passes through a complex choreography of supply chain planning, in-process observation, and systematic follow-through. Our focus centers on what we can prove, measure, and improve, not marketing slogans.

    Downstream, our customers may never see the details that go into each drum. They see the results: consistent reactivity, clean purification, low waste, and reactions that close with higher conversion. Whether in surfactant chemistry, lubrication R&D, or advanced intermediate synthesis, our team carries lessons learned onto the production floor every day.

    This is why we remain committed to hands-on manufacturing, close technical support, and product stewardship. A molecule like 3-(Octylamino)Propionitrile is just one building block in a broader chemical landscape, but it can make a defining difference for anyone counting on processes that simply work, every time.