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HS Code |
915123 |
| Chemical Name | Tris(Undecafluoropentyl)Amine |
| Molecular Formula | C15H6F33N |
| Cas Number | 73928-02-2 |
| Appearance | Colorless to light yellow liquid |
| Boiling Point | Over 200°C (estimated) |
| Density | 1.73 g/cm³ (at 25°C) |
| Solubility | Insoluble in water, soluble in organic solvents |
| Purity | Typically ≥97% |
| Refractive Index | n20/D 1.327 (approximate) |
| Smiles | N(CCCC(F)(F)C(F)(F)C(F)(F)C(F)(F)F)(CCCC(F)(F)C(F)(F)C(F)(F)C(F)(F)F)CCCC(F)(F)C(F)(F)C(F)(F)C(F)(F)F |
| Flash Point | >110°C (estimated) |
| Storage Conditions | Store at room temperature, keep container tightly closed |
| Ec Number | 616-530-3 |
As an accredited Tris(Undecafluoropentyl)Amine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 250 g of Tris(Undecafluoropentyl)Amine supplied in a sealed amber glass bottle with tamper-evident cap and chemical hazard labeling. |
| Shipping | **Shipping Description:** Tris(Undecafluoropentyl)Amine must be shipped in tightly sealed containers, protected from moisture and incompatible substances. Transport according to local, national, and international regulations for hazardous chemicals. The compound should be labeled properly, and handled by trained personnel with appropriate safety documentation and emergency measures in place during transit. |
| Storage | Tris(Undecafluoropentyl)amine should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from heat, sparks, and open flames. Protect from moisture and incompatible materials such as strong oxidizers and acids. Store at room temperature and avoid prolonged exposure to light. Always handle under inert atmosphere (e.g., nitrogen or argon) if hydrolysis is a concern. |
Applications of Tris(Undecafluoropentyl)Amine in Industrial ManufacturingTris(Undecafluoropentyl)Amine offers high thermal and chemical stability, low surface energy, and exceptional hydrophobicity, making it valuable in several specialized industrial sectors. As the original manufacturer, we supply this material in bulk, providing precise technical support for various downstream applications where process control, performance, and regulatory compliance are all critical parameters. 1. Semiconductor Photoresist ManufacturingSemiconductor fabs use Tris(Undecafluoropentyl)Amine as a key additive in advanced photoresist formulations for extreme ultraviolet (EUV) lithography. The raw material imparts anti-reflective and surface control properties, especially in high-resolution patterning where even minimal contamination affects yield. Controlled incorporation is required to meet wafer defectivity tolerances and outgassing limits stated by industry consortia. The material is dispersed during the resist’s solvent phase, allowing for homogeneous film performance and precise line width control on processed wafers. Industry compliance standards
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2. High-Performance Fluoropolymer SynthesisFluoropolymer production facilities integrate Tris(Undecafluoropentyl)Amine as a functional comonomer or catalyst modifier in the synthesis of specialty fluoropolymers with enhanced anti-fouling, oleophobic, and dielectric properties. Its unique perfluorinated structure contributes to polymer chain end-group control, allowing for precision tailoring of surface tension and dielectric constant. The additive must be metered accurately in the bulk monomer feed to satisfy molecular weight and reactivity ratios defined by process validation protocols. Industry compliance standards
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3. Advanced Oil & Gas Well Treatment ChemicalsChemical service companies utilize Tris(Undecafluoropentyl)Amine as an active agent in high-performance wellbore cleaning, non-emulsifying, and acidizing treatment fluids. It helps reduce interfacial tension and controls phase separation in downhole environments where traditional surfactants degrade. Its stability in high-temperature, high-salinity, and acidic media enables field application under severe service conditions. Strict dosing and thorough field blending ensure compliance and operational reliability during hydraulic fracturing and enhanced oil recovery processes. Industry compliance standards
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4. Precision Surface Coatings for Aerospace ComponentsAerospace OEMs and coating contractors select Tris(Undecafluoropentyl)Amine for its exceptional hydrophobicity and non-stick characteristics in thin-film coatings on critical airframe and turbine parts. The additive modifies polyurethane, epoxy, or fluoropolymer topcoats, delivering resistance to icing, fouling, and chemical attack. Stringent aerospace codes require precise, repeatable dosing into coating formulations. Application must occur in clean-room or tightly controlled environments to satisfy aviation safety and durability mandates for flight hardware. Industry compliance standards
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5. Specialty Electronic Encapsulation CompoundsManufacturers of high-reliability electronic modules employ Tris(Undecafluoropentyl)Amine as a functional additive in encapsulation and potting compounds intended for printed circuit boards and micro-electromechanical systems (MEMS). The raw material enhances water and chemical resistance, reduces moisture uptake, and provides dielectric stability under fluctuating operational environments. Accurate proportioning during powder or liquid resin compounding is essential to maintain insulation properties and long-term component reliability for mission-critical applications. Industry compliance standards
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In chemical manufacturing, every product carries a story shaped not just by molecules but by years of trial, adjustment, and direct feedback from the people who use it. Tris(Undecafluoropentyl)Amine is no exception. At our facility, the path to a robust and reliable version of this compound took a mix of persistent research, close collaboration with technical users, and a relentless attention to the fine points of process control. Each batch follows careful handling throughout production, and team members have learned to watch for critical cues in the reaction profile to ensure the highest purity. We focus on controlling moisture and temperature with particular precision, since even a minor deviation affects not only the yield but the compound’s behavior in specialist applications. Strengthening these controls has paid off, consistently leading to a product that meets the demanding standards for advanced fluorinated chemicals.
Industrial demands drive the direction of chemical synthesis in ways no specification sheet can capture fully. Tris(Undecafluoropentyl)Amine didn’t enter the lineup from a standard playbook but in response to rising requests from process developers seeking superior hydrophobicity and strong fluorine content for environments exposed to aggressive chemicals or solvents. Over the years, our lot analysis reports have shown a reliable consistency in the purity levels, with careful attention paid to the C-N bond integrity and the absence of residual starting materials. The molecular weight, just over 950 g/mol, stems directly from its three long perfluorinated chains—every one of which poses unique handling and synthesis challenges. Most of our production for this item centers on custom volumes, often in drum-scale lots for research, pilot runs, or specialized industrial initiatives. Feedback from customers in microelectronics and specialty coatings played a direct role in tightening in-process spectroscopy checkpoints, narrowing variability, and reducing potential downstream surprises.
Our earliest users came from the field of microelectronics. They needed an amine that wouldn’t just provide structural presence but would deliver strong chemical resilience against both weak and strong acids, as well as solvents that break apart other amines. Over time, Tris(Undecafluoropentyl)Amine found a second home in the world of fluoropolymer surface modification. Users found that it imparted both oil and water repellency to finished materials, qualities essential in sectors such as protective fabrics, high-purity filtration membranes, and non-stick coatings. More recently, formulators in the green energy technologies sector have tested it when standard surfactants fell short. These real-world uses pushed us to focus the analytical methods on functional group stability, making sure the product interacts as designed, free of unpredictable side reactions.
From the chemist’s bench to large-scale reactors, we have worked with a wide swath of fluorinated amines and surfactants. Most have shorter perfluoroalkyl chains, which changes not only their surface activity but their volatility, solubility, and resistance to heat or degradation. Tris(Undecafluoropentyl)Amine stands apart through its trio of undecafluoropentyl moieties. This structure locks in a balance that many customers struggled to achieve either with light fluorinated amines or with multistep mixtures. Our engineers discovered early on that many “off-the-shelf” C5 or C4 analogues would break down during welding or high-energy lithographic steps; the undecafluoropentyl version sustains its properties. In our application testing, it delivered a sharper contact angle and a robust GPC profile even after extended chemical exposure. Explaining this to procurement teams and plant operators sometimes takes more than just test data; often they want to see full-scale cleaning and compatibility results, so we have dedicated bench programs to show the compound’s results under stressed, real-world settings.
Tuning the quality profile of anything with heavy fluorination raises both practical and regulatory hurdles. Tris(Undecafluoropentyl)Amine production brings all the usual handling challenges: dedicated glass-lined reactors, careful atmospheric controls, and a relentless focus on waste streams. Unlike lighter counterparts, this compound resists standard post-processing, a trait rooted in its strong C-F and C-N bonds. During one scale-up trial, our technical staff noted a stubborn persistence of byproducts when reaction temperature edged too high. Adjusting the exotherm schedule and extending the scrubber system gave us both a safer plant and a cleaner product profile. This level of in-house learning isn’t easily found in generic technical sheets.
From a regulatory perspective, we shape our documentation using both local and international chemical safety practice. We participate directly in safety audits, working closely with both hazardous waste teams and occupational safety specialists to keep the plant environmentally responsible. That often means re-thinking standard neutralization steps, with an eye toward specialized fluorine-neutralizing techniques. Every season, our environmental team reviews emissions data, adjusting the abatement systems to capture even low-level volatile organics released during synthesis or packaging. We trace our improvements not just through internal review but in concrete, visible changes in how the chemical is handled at every stage of the process.
End-users aren’t impressed by a product that checks off technical boxes but disappoints in the real world. Our experience producing Tris(Undecafluoropentyl)Amine taught us that customer feedback isn’t just helpful—it’s essential. Operators in filtration and surface chemistry brought concerns about residue buildup and variable dispersibility in some solvent systems. That set us to re-examine both the particle size and drying cycle, resulting in improved powder flow and less caking. Further, a few key partners flagged variable shelf-life, a factor directly related to trace moisture introduced in packaging. We responded by overhauling our filling rooms, adding both dehumidification and sealed nitrogen handling, and tracking results through shelf-life studies. Over several quarters, the measured improvement wasn’t just a minor uptick—it reflected in greater user trust and more repeat orders.
We have also learned that training matters. Our technical service staff now runs regular sessions with both internal operations and select customers, walking through correct handling and dosage in critical applications. Practical tips around temperature control, solvent selection, and mixing rates often save users hours of trial and error. For those in R&D, our process knowledge has allowed them to push boundaries further, moving faster from pilot to production scale. Nobody wants surprises mid-project, so we stay up to date and responsive with supply chain communications, even in volatile markets.
Production teams often compare Tris(Undecafluoropentyl)Amine with more conventional amines and shorter-chain fluoroalkyl variants. The differences become clear as soon as these molecules get exposed to harsh chemical or thermal environments. Where most tertiary amines break down, our product delivers extended survivability. Formulations needing sustained repellency under aggressive conditions have found alternatives either break down, leach unwanted residues, or fail to maintain desired surface tension properties across temperature swings.
Tris(Undecafluoropentyl)Amine’s unique three-branch structure creates an advantage for specialized coating chemistries and advanced material composites. We have documented several customer projects where swapping from a single-chain perfluoroalkyl amine to our trisubstituted version gave dramatic increases in oil, water, and stain repellence. For high-value electronics, this single change has often extended device stability and lifetime, especially in humidity cycling tests. Complex equipment deserves a molecule that won’t drop off performance after the first clean or rinse cycle, and we are confident pointing to our internal and customer-industry test sets as evidence.
No chemical is perfect, and those working with advanced fluorinated materials know the risks, from handling hazards to supply volatility. In scaling up Tris(Undecafluoropentyl)Amine, we ran into transport and storage questions that lighter amines don’t present—especially relating to fluorine-rich dust and its impact on both equipment and the environment. That prompted a round of packaging engineering, leading us to double-contain the product and implement strict inventory turnover policies in our warehouses. Long-term, we expect regulatory trajectories to push even higher standards around recovery and recycling, so our team continues to invest in solvent recovery systems and low-emission packaging.
Adjustments in response to evolving end-user needs remain central in our shop floor planning meetings. From stretch-wrapped drum stability during long-haul shipments to clarity in labeling and batch traceability, process improvements stem directly from solving real shipping or user issues, not from abstract ideas. Our teams on the ground remain focused on transparency, pushing for the clearest documentation possible and sharing lessons learned at industry forums. This approach has built up solid trust between us and users developing new applications where performance can’t be guessed ahead of time.
Our experience with Tris(Undecafluoropentyl)Amine is shaped not only in-house but through tight links with research organizations and industry leaders. The move from academic bench testing to scalable, commercial production required more than building reactors or automating material transfer. We have trialed process tweaks directly in partnership labs, running both traditional and stress-test formulations. Industry consortia have called upon our data for cross-validation in critical protective coating projects. In return, their field testing gives us detailed performance and failure points, feeding directly into our ongoing process refinement cycles.
Every time a partner uncovers a performance edge—or an unexpected failure—we loop the learning back into our material processing SOPs. The result for customers has been a material whose properties are not theoretical but field-validated. This practical focus makes it possible for development teams in diverse industries to trust both published data and real-world results.
As producers, our commitment extends to the responsible handling of all fluorinated raw materials and finished products. We keep open lines with waste management partners and take part in both voluntary and mandated environmental reviews. Our QC lab tracks not only the finished product purity but the legacy impact of each solvent, byproduct, and trace residue. Plant managers work closely with operators to reinforce both chemical hygiene and accident prevention routines.
Our stewardship includes continuous scrutiny of new analytical technologies. From more sensitive trace impurity detection to automation in real-time process control, upgrading our lab and plant tools helps keep both the end product and the people who make it safe. We connect directly with downstream users to help clarify both safe use and the disposal pathway, reducing environmental risk. The process is ongoing, shaped by both regulation and a sense of responsibility built over decades in fluorochemistry.
Standing at the intersection of hands-on chemistry and new technology, we see Tris(Undecafluoropentyl)Amine as a product whose potential continues to grow. Projects in medical device coatings, new classes of water-repellent textiles, and next-generation filtration challenge the limits of conventional amines. While we continue to see new requests for custom derivatives and blends, our base production protocol keeps the product at a consistent standard users rely upon for critical research and manufacturing.
Over the years, advancements in process automation and molecular design tools have allowed us to improve batch quality without sacrificing the flexibility demanded by our users. We keep our standards high for both routine production and special, investigator-led runs. Each time a client comes to us with a new technical challenge, our chemists and engineers engage directly—translating requirements into adjustments across synthesis, purification, and packaging.
Manufacturing Tris(Undecafluoropentyl)Amine is more than repeating a recipe; it is an ongoing craft shaped by years in the plant, regular feedback from users, and a practical response to changing industry needs. We have seen this compound deliver real advantages—outlasting light amines where high fluorine content and robust molecular design matter most. The value of this work comes from the expertise forged by listening to, and learning from, everyone along the product’s lifecycle. This approach reflects our belief that truly advanced chemicals grow stronger through transparency, hard-won experience, and a direct commitment to both safety and performance.