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HS Code |
894286 |
| Cas Number | 593-77-9 |
| Iupac Name | heptacosan-14-one |
| Molecular Formula | C27H54O |
| Molar Mass | 394.71 g/mol |
| Appearance | White crystalline solid |
| Melting Point | 70-72°C |
| Boiling Point | 454.3°C at 760 mmHg |
| Density | 0.829 g/cm³ |
| Solubility In Water | Insoluble |
| Flash Point | 164.9°C |
As an accredited 14-Heptacosanone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 14-Heptacosanone is supplied in a 5-gram amber glass bottle, securely sealed with a screw cap and labeled with hazard information. |
| Shipping | 14-Heptacosanone is typically shipped in tightly sealed containers to avoid contamination and evaporation. It should be packaged in accordance with chemical safety regulations, ensuring protection from moisture, heat, and direct sunlight. Proper labeling and documentation are required. During transit, it must be handled by trained personnel and shipped as non-hazardous cargo. |
| Storage | 14-Heptacosanone should be stored in a tightly sealed container, away from light and moisture, in a cool, dry, and well-ventilated area. Keep the substance away from sources of ignition and incompatible materials such as oxidizing agents. Proper labeling and secondary containment are recommended to prevent spills. Ensure storage conforms to relevant chemical safety regulations and standards. |
Applications of 14-Heptacosanone in Industrial Manufacturing14-Heptacosanone serves as a functional intermediate in specialized industrial sectors where its long-chain structure and defined physical properties provide essential performance attributes. As a primary producer, we supply this raw material for use in industries where regulatory standards, precision in formulation, and consistent quality control are paramount. Below we present the main downstream application segments with scenario-specific integration details, adherence to sectoral requirements, and representative end-product types. 1. Specialty Lubricant Formulations for Critical High-Temperature EquipmentManufacturers blend long-chain ketones to enhance thermostability, oxidation resistance, and lubrication endurance in critical equipment operating in extremes of temperature and load. 14-Heptacosanone functions as a co-base or performance modifier in the production of specialty lubricants designed for non-food applications such as vacuum pumps, die-casting release agents, and precision gearboxes. Its pure composition supports the low volatilization and controlled viscosity profiles demanded by advanced industrial machinery in sectors such as electronics and metallurgy. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Cosmetic Waxes and Film-Forming Agents for Decorative and Protective FormulationsCosmetic and personal care manufacturers utilize long-chain aliphatic ketones as structuring waxes and film formers in advanced product lines, benefitting from enhanced thermal behavior and improved skin feel. The ketone’s high melting point and compatibility with traditional natural waxes and esters allow precise texture control in formulations such as lipstick, mascara, and solid perfumes. This enables development of products that comply with strict cosmetic directives regarding ingredient purity and migration limits on lip-contact substances. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Synthetic Polymer Processing Additive for Advanced Polyolefin ManufacturingIn advanced polyolefin production, long-chain ketones act as external processing aids to adjust melt flow, reduce extrusion die build-up, and influence anti-blocking performance. Their incorporation supports efficient film, fiber, and sheet manufacturing by minimizing sticking and improving surface smoothness. Strict compliance to polymer additive regulations is required, including food-contact use if applicable, as well as control of contaminant migration into final products. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Reference Compound for Analytical Standards and Laboratory CalibrationChemical analysis laboratories and research institutions use purified synthetics as calibration standards for chromatography, spectrometry, and forensic investigations. 14-Heptacosanone’s well-characterized structure and absence of typical branched impurities make it suitable for establishing retention indices, verifying method accuracy, and preparing control mixes for hydrocarbon and environmental residue analysis. Stringent lab accreditation and analytical purity benchmarks govern its deployment in standard preparation and protocol validation processes. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
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In chemical manufacturing, producers rely on proven molecules to maintain consistency in advanced applications. 14-Heptacosanone stands out as a specialty ketone with a lengthy, straight hydrocarbon backbone and a single ketone functionality at the fourteenth carbon. Industry colleagues working with waxes, lubricants, lipid research, and specialties in cosmetic formulation often depend on such well-characterized molecules for their work. Our team has decades of hands-on experience with this compound and remains involved in every stage of its synthesis, refinement, and application support.
Few molecules offer the blend of thermal stability and hydrophobicity that long-chain aliphatic ketones provide. As chemists, we see direct evidence in our batch records: even small variations in synthetic routes or purification methods always show in the end product’s purity, melting point, and usability. That’s why we pay careful attention to each production step in-house, at our own facility, using established protocols that we’ve tested repeatedly under real manufacturing pressures.
Our 14-Heptacosanone carries the structure C27H54O, sitting at the intersection of robust hydrophobicity and a reactive carbonyl. In the lab, we routinely check the melting range, taking note of the sharp, consistent transition that marks pure product. GC-MS and IR spectra provide fingerprints we know by heart, each wiggle and peak pointing toward trace contaminants or residual solvents. Years of producing, analyzing, and packaging have shown how small variations in reflux times or distillation profiles carry forward into the quality that arrives at a customer’s dock.
A sample model from our production, lot XYZ105, clocked a melting point of about 62°C, checked at proper ramp rates. The carbonyl peak on the IR spectrum comes in clear, and GC typically identifies greater than 98% composition, as confirmed by reference standards. These specifications do more than just satisfy technical sheets—they keep batch-to-batch behavior steady, an absolute necessity for downstream applications where performance losses become costly very quickly.
Colleagues in the wax industry often ask us for practical input on using 14-Heptacosanone as a structure-modifying additive. From first melting the material to the final blending step, our hands-on benchwork proves its compatibility and helps reduce brittleness in certain synthetic and natural waxes. Our experience shows small percentages of the ketone can soften paraffin-based blends without sacrificing shelf-life or oxidation resistance—attributes labs too often discover only after weeks of testing. Aromatic hydrocarbons leach out competing plasticizers, leaving blends brittle; 14-Heptacosanone sticks around for the long haul.
In cosmetics, formulators trust our product when developing emollients and skin-contact barriers. The sneaky challenge comes from trace water, interfering with both appearance and feel. We dry every batch to measured low moisture, and confirm the absence of off-odors—essential for creams and sticks that pass under the nose of every critical end user. Talking straight, the value here comes down to consistency: we hear from development chemists that one-off rogue batches can undo months of brand trust.
Academic research groups contact us for pure reference 14-Heptacosanone when designing studies on insect pheromones, bacteria lipid metabolism, or environmentally responsive coatings. Their work often depends on chromatographic separation, strict purity standards, and reliable supply. Multiple times a year, we discuss applications directly with research directors—solving problems with interfering byproducts, or planning out large-scale projects where small molecules serve as stepping stones to proprietary analogs. Having our own production line means we can tweak parameters, improve isolation, or ramp supply without losing sight of long-term commitments.
Anyone can recite catalog differences, but genuine advantages of 14-Heptacosanone show up on the floor, not in generic lists. Compared to shorter-chain ketones like 2-heptanone or 2-undecanone, 14-Heptacosanone resists volatility and provides superior film-forming in both ambient and heated processing conditions. This benefit emerges clearly when producing heat-stable coatings or lubricants. Volatile impurities or moisture cause bubbling under heated tooling—our purification cuts down those defects, a fact verified by downstream customer trials as well as our own shop-floor stability checks.
Some buyers consider synthetic alternatives, such as custom branched ketones or natural wax esters, in search of similar performance. Over many years, our trials revealed those analogs often fail at scale: branching lowers packing density, introducing tackiness or pore formation. Esters decompose faster and leach in aggressive chemical environments, leading to shorter lifecycle or difficult recycling. 14-Heptacosanone's straight chain and single carbonyl handle allow clean recovery through standard industrial solvent washes, fitting into circular-economy discussions without excessive reprocessing.
Competitor products, sometimes resold through multiple layers of distributors, pick up micro-level impurities—plasticizers, antioxidants, or solvents—that leave invisible fingerprints until the end application fails. Because we charge the reactor, isolate the product, and follow through on QC ourselves, our supply chain stays clean and direct. Hands-on involvement at the point of synthesis lets us give honest answers to every end user. Frustration with inconsistent inputs disappears when you own the whole process.
Market trends often force rapid adaptation: “clean label” requirements, green chemistry questions, and pressure to minimize additives in consumer goods. As raw material chemists, these aren’t just business buzzwords—they show up on our raw materials spreadsheet, our waste management logs, and in conversations with process engineers tracking their own energy consumption. Long-chain ketones of this structural class, including 14-Heptacosanone, don’t introduce phthalates, VOCs, or major allergens, and we’re able to certify their composition upon request. Direct discussions with partners help us adapt and find ways to blend these materials with the minimum of unnecessary input, reducing solvent burdens and wash waste.
The move to more responsible sourcing places priority on clear manufacturing records and rapid traceability. Having full production records under one roof allows us to respond to regulatory audits and material trace backs with speed and honesty—no hunting down third-party packers, no delays. That direct line builds confidence with partners in all corners: from local cosmetics labs to major industrial blenders.
We value the principle that a product's true worth lies in its performance, not just its name or a registry number. We back those claims with transparent reporting, real batch data, and a customer base familiar with both our successes and growing pains. Keeping the feedback loop open—across R&D, production, and application partners—lets us continue improving yield, purity, and practical usability.
Challenge number one for many manufacturers remains supply reliability and consistency. We’ve experienced those disruptions first-hand, especially when key starting materials jump in price or shelves run empty. Through diligent sourcing—sometimes locking in forward supply, sometimes synthesizing critical intermediates in-house—we shield our customers from many common shortfalls. This commitment cuts risks for formulators facing fierce deadlines and sits at the heart of our promise to every buyer: what you receive today matches what you received last month, and last year.
Quality drift hits hardest when batches get scaled up. Our process engineers spent years optimizing batch size, stir rates, and aging conditions—learning where shortcuts cost in the long run. Routine spectrographic controls and regular cross-checks with external standards keep our output at target, whether the customer needs five kilograms or a metric ton. Instead of chasing hypothetical performance, we focus on what works best at practical scale.
Another issue crops up with regulatory shifts and new analytical standards. Keeping in step with REACH, TSCA, and cosmetic ingredient guidance, we routinely update filtration protocols and perform targeted contaminant screens. This keeps our product eligible for demanding end uses, including direct human contact and high-purity blends. As a direct producer, we don’t need to backfill somebody else’s mistake or clarify undefined inputs—control stays close to home, ensuring compliance and smoother conversations with our customers' own QA teams.
Some users face an uphill battle with unexpected interactions—unstable films, skin irritation, or unwanted crystallization. Our chemists make time for application support, not scripted technical responses. By sitting down—sometimes virtually, sometimes face-to-face—with those teams, we understand real use environments, not just what’s possible in theory. Suggestions might include sequence changes, different blend ratios, or post-addition mixing, always pegged to on-the-job observations.
Trust forms the basis of every long-term supply relationship, something that only develops after repeated interactions and honest feedback. We encourage open dialogue about needs, performance expectations, and potential improvements, recognizing that off-the-shelf solutions often don’t solve unique process challenges. From the production supervisor checking each drum to the lead chemist double-checking the purity, our entire team stays invested in the product and the people who rely on it. The aim remains straightforward: meet commitments, solve problems, and adapt approaches based on what partners tell us works on their lines.
Part of building trust involves fast, plain communication—sharing all relevant data on purity, batch protocols, and storage recommendations from our own experience. Delivery schedules, real-world performance, and deviation logs all feed into our quality records, providing stakeholders with a living record of how the material fits within their systems. If failures occur, we bring those lessons into active process improvements, not just paperwork.
We support scale-up needs by making incremental batch adjustments alongside partners, keeping communication lines open to ensure every lot maintains the performance characteristics demanded by critical markets—without shifting blame or hiding behind procedural gray areas.
Remaining relevant as a manufacturer takes more than repeating legacy practices. Our team keeps active ties with academic institutions and trade consortia, collaborating on both fundamental property studies and new-use projects. Early involvement in projects, beyond just supplying samples, lets us recommend practical synthetic modifications, uncovering potential side-reactions or incompatibilities before they slow down scale-up. Respect for our partners and their intellectual work combines with rigorous confidentiality and an appreciation for how valuable an honest answer can be.
Analytical advances keep refining our understanding of impurities, performance claims, and regulatory thresholds—subjects that inspire long conversations with both our QA team and independent analysts. Recent improvements in our refinement systems, seeded by collaborative projects, cut color bodies and odorous fragments to near-undetectable levels. These investments originate from customer stories: an odor problem traced not to our chemistry but to leaching tank liners, or a hard-to-trace colorant that crept in with a new gassing line. Sharing these experiences across the organization and with regular partners prevents repeat headaches.
We build on each experience, from a late-night troubleshooting session to the repeated grind of routine batchwork. Mistakes from the past become today’s improvements—better drying, tighter fractional distillation, or advanced analytical runs. Complex challenges demand real solutions, not theoretical fixes. Steadily, we bring those lessons into every production, always looking at how to deliver a more stable, more suitable ketone that supports our customer’s ongoing development.
Decades of firsthand experience shape the way we produce, improve, and support 14-Heptacosanone. From thoughtful synthesis to attentive packaging and rapid, collaborative troubleshooting, we hold ourselves to high standards set by both customer requirements and the demands of our own longstanding team of chemists. The differences between a successful supply partnership and a one-off transaction emerge from careful control, straight answers, and a refusal to compromise on quality for short-term advantage.
Modern partners look not just for registration numbers, but for evidence—batch records, spectra, and proven application stories—that their materials will outperform unpredictable alternatives. Our team supports that trust by remaining directly accountable and approachable, carrying forward the practices that earned a place in so many demanding applications. While the chemistry may look simple on paper, real-world use tells the true story—and we’re always ready to share what we've learned to help your product succeed.