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Tetradecylthioacetic Acid

    • Product Name Tetradecylthioacetic Acid
    • Alias TTA
    • Einecs 682-216-9
    • 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

    538121

    Cas Number 63883-59-0
    Molecular Formula C16H32O2S
    Molecular Weight 288.50 g/mol
    Iupac Name 2-(tetradecylthio)acetic acid
    Appearance White to off-white powder
    Solubility In Water Practically insoluble
    Melting Point 56-59°C
    Purity Typically ≥98% (varies by supplier)
    Storage Temperature Store at -20°C
    Synonyms TTA; 2-Tetradecylthioacetic acid
    Pka Approx. 4.7 (carboxylic acid group)
    Chemical Class Thioether fatty acid analogue
    Smiles CCCCCCCCCCCCCCSCC(=O)O

    As an accredited Tetradecylthioacetic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing The packaging contains 25 grams of Tetradecylthioacetic Acid, sealed in an amber glass bottle with a secure, chemical-resistant screw cap.
    Shipping Tetradecylthioacetic Acid is shipped in tightly sealed containers to prevent contamination and degradation. It should be packaged according to chemical safety standards, labeled clearly, and protected from heat and moisture. Transportation must comply with relevant regulations for hazardous materials, including proper documentation and safety data sheets accompanying the shipment.
    Storage Tetradecylthioacetic Acid should be stored in a tightly closed container in a cool, dry, and well-ventilated area, away from direct sunlight, heat sources, and incompatible materials such as strong oxidizers. It should be kept at room temperature and protected from moisture. Properly label the container and avoid exposure to air to minimize degradation and maintain chemical stability.
    Application of Tetradecylthioacetic Acid

    Applications of Tetradecylthioacetic Acid in Industrial Manufacturing

    Tetradecylthioacetic acid is a specialized long-chain fatty acid analog used by manufacturers in select industrial and life science sectors. Its chemical structure and reactivity make it suitable for targeted downstream formulations where regulatory compliance, precise dosing, and controlled integration are vital to process performance and product quality. As the original manufacturer, we support our customers with application-specific material grades and technical support based on verified commercial practices.

    1. Lipid Metabolism Research Reagents Production

    Researchers and life science reagent producers integrate this compound in the formulation of specialized biochemical kits for cellular lipid metabolism studies. Applications include activating or modulating peroxisome proliferator-activated receptors (PPARs) in in vitro diagnostics and academic research. All procedures adhere strictly to chemical purity and traceability standards as required for laboratory-grade reagents.

    Industry compliance standards

    • ISO 9001:2015 Quality Management Systems for laboratory reagents manufacturing
    • REACH Regulation (EC) No 1907/2006 for registration and safe use
    • IUPAC Nomenclature and referencing for research reagents
    • Analytical Grade (AnalaR/NFPA classification) purity validation

    Typical usage ratio

    • Typically 10–100 µM in final assay buffers (corresponding to 0.003–0.03% w/w), depending on cell model and assay protocol

    Downstream process integration

    • Dissolved or suspended in ethanol or DMSO at controlled concentrations as a stock solution and dispensed into ready-to-use biochemical assay kits during final fill/finish under cleanroom conditions

    Final product types

    • Research-use-only (RUO) biochemistry kits for metabolic studies
    • Analytical standards for fatty acid pathway elucidation
    • In vitro cell culture reagents for PPAR activation or inhibition studies

    2. Pharmaceutical Preclinical Candidate Synthesis

    Active pharmaceutical ingredient (API) development processes utilize this acid for synthesizing metabolic modulators and prototype drug substances targeting lipid metabolism disorders. Only selected contract development and manufacturing organizations (CDMOs) and pharma R&D sites adopt it due to its advanced chemical profile and strict GMP process controls.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP/NF Analytical Quality Standards where applicable for starting materials
    • 21 CFR Part 211 (US FDA) for materials handling in pharmaceutical R&D
    • GMP Annex 13 for IMP (Investigational Medicinal Products) manufacture

    Typical usage ratio

    • In synthetic protocols, typically used at a substrate equivalent ratio between 1–10 mol%, with exact quantities optimized based on target molecule yield and impurity profile

    Downstream process integration

    • Introduced during early-stage reaction steps as a precursor or intermediate, commonly through esterification or amidation reactions in pilot or kilo-lab synthesis

    Final product types

    • Preclinical small-molecule candidates targeting dyslipidemia or metabolic syndrome
    • API structural analogues for internal screening libraries
    • R&D reference compounds for mechanism-of-action studies

    3. Specialty Nutraceutical Intermediate Blending

    Nutraceutical manufacturers trial low-level incorporation of this specialty fatty acid as an intermediate in the production of functional lipid complexes, exclusively under regimes where safety and labeling requirements permit. The process is subject to food ingredient traceability and purity regulations based on local and international frameworks.

    Industry compliance standards

    • FSSC 22000 Food Safety System Certification applicable to lipid-based ingredient production
    • Regulation (EU) No 1169/2011 on the provision of food information to consumers
    • US FDA 21 CFR §§170-189 (Food Additives & GRAS processes), where necessary for experimental formulations
    • Lot-specific allergen and contaminant testing per regional guidance

    Typical usage ratio

    • Trial blends use 0.001–0.05% by weight in emulsified oil matrices or functional beverage bases; levels are determined by bioactivity targets, formulation type, and safety data review

    Downstream process integration

    • Direct addition to lipid premixes or microencapsulation blends prior to emulsification and homogenization; batch tracked with full raw material traceability

    Final product types

    • Experimental dietary supplement bases for metabolic support
    • Prototype functional beverages containing bioactive lipid fractions
    • Advanced nutrition fortifiers for clinical development

    4. Functionalized Surfactant and Emulsifier Component Synthesis

    Advanced surfactant formulators and chemical process industries use this compound as a functionalization building block to synthesize sulfur-modified surfactants designed for controlled hydrophilicity or oxidative stability. The integration occurs at precise steps in industrial synthesis chains, targeting customer specifications in specialty chemical formulations.

    Industry compliance standards

    • ISO 14001:2015 Environmental Management for chemical production
    • OECD TG 401-404 for product safety profiling
    • Local chemical control laws (e.g., K-REACH, TSCA, EU REACH Annex XVII)
    • Hazardous Chemical Registration and downstream Material Safety Data Sheet (MSDS) requirements

    Typical usage ratio

    • Blending rate typically ranges from 0.5–5% by weight, dependent on the hydrophobic-lipophilic balance required by end-use surfactant or emulsifier systems

    Downstream process integration

    • Chemical introduction during thioesterification or sulfonation phases in the manufacturing of non-ionic or anionic surfactants, under controlled reaction temperature and stirring conditions

    Final product types

    • Sulfur-containing non-ionic surfactants for textile auxiliaries
    • Specialty emulsifiers for agrochemical formulations
    • Industrial detergent components with enhanced oxidative resistance
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    Certification & Compliance
    More Introduction

    Tetradecylthioacetic Acid: Honest Insights from the Production Floor

    Stewardship in Synthesis

    Years of hands-on experience in organic synthesis have shown our team why the details matter. Every batch of Tetradecylthioacetic Acid we prepare comes out of decades of research, learning from every reactor run, filtration, and product assay. We have worked directly with raw materials: sourcing, inspecting, and adjusting our processes to meet the demands of some of the most exacting pharmaceutical and industrial clients. The model we offer, straight from our reactors, stands as proof that upholding consistency and reproducibility in every step—from thioetherification to the final crystallization—guides our day-to-day manufacturing culture.

    Unlike bulk commodity chemicals that line warehouse shelves for years, Tetradecylthioacetic Acid asks for hands-on chemistry and tight control over each step. We apply custom-tailored conditions, controlling reaction times, temperatures, and purification cycles to maximize purity and minimize unwanted isomers or side products. Our plant personnel inspect each step, weighing the incoming tetradecyl alcohol, checking the source and purity of reagents, and monitoring the reaction with GC and NMR. Every release is built on data: each drum’s identity and quality traceable back to its raw material lot and day of production.

    Why Specification Matters

    Working on both kilo and ton scales, our facility has learned that purity, appearance, and process-related impurities shape how customers approach Tetradecylthioacetic Acid. Most formulations, from pharmaceutical intermediates to experimental nutritional supplements, set a high bar for quality. Even a minor deviation in chain length, an extra impurity from an incomplete thioetherification, or leftover catalyst contaminants can impact downstream reactions or product safety. We enforce a specification that balances real-world manufacturability and scientific rigor—GC purity not less than 98%, controlled water content, free acid checked by titration, and full NMR confirmation.

    It is tempting for suppliers who don’t manufacture themselves to talk about Tetradecylthioacetic Acid as one monolithic substance. But we have seen real-world impacts from differences in source and process. There are distinctions between our refined material—where we focus on eliminating sulfurous off-odors, keeping color below a set threshold, and verifying physical form (smooth-flowing powder, never sticky or lumpy)—and imported batches re-handled multiple times before reaching an end user. Machine operators on our shop floor know the value in running an extra filtration, drying under reduced pressure, and never cheating a QC test; these choices show up in the look, handling, and performance of the acid in laboratory and manufacturing settings.

    Setting Ourselves Apart

    Direct manufacturing experience gave us a unique point of view on competing products on the market. Years ago, samples from several suppliers landed on our own lab benches, and the differences were hard to miss. We have tested batches that displayed uneven melting points, had a sharp sulfurous tang, or clumped into hard cakes in storage—issues that stymie formulation or scale-up. Our own batches, by contrast, move through grinders and feeders cleanly, dissolve as expected for downstream processing, and match analytical reference standards. These outcomes did not fall into our lap; they came from stubborn repetition and a refusal to cut corners in process optimization.

    Tetradecylthioacetic Acid, with its fourteenth carbon thioethered chain and carboxylic acid group, attracts attention for its metabolic effects in animal models and its structural novelty compared to more routine fatty acids. Yet, differences in chain branching or presence of oxidized sulfur residues, introduced by upstream steps or improper storage, can turn a promising batch into wasted time for scientists. Delivering assured specification means we control not just the headline purity, but the full fingerprint of the molecule. Using well-maintained vessels, inert atmospheres, and proactive handling, we minimize the risk of sulfur oxidation and structural drift—lessons learned through handling real mishaps, not just reading datasheets.

    Supporting Real-World Applications

    Users of Tetradecylthioacetic Acid span several disciplines. Many research groups trial it for its role in modulating mitochondrial function and fatty acid oxidation. Formulation chemists test its compatibility with liposomal systems or study its interaction in models of metabolic disease. To us, the important part has always been reliability at the bench. We guarantee every drum matches the profile needed for repeatable bench-scale assays or scale-up to kilogram synthesis, so nobody faces delays hunting down purity certificates or trying to troubleshoot odd batch behavior.

    Our technical team works closely with process engineers at customer sites. Customers want answers on solubility, storage stability, handling properties, and reactivity profiles: details that impact formulation as much as the base chemical structure. Having manufactured and used batches ourselves, including the troubleshooting that comes when a run goes off-spec, we guide partners on selecting the right grade—highlighting differences between Tetradecylthioacetic Acid made by direct acylation routes, stepwise sulfur insertion, or alternative oxidations. Over the years we have learned which routes leave traces of thiosulfonates or byproducts, and adjust our purification lines accordingly.

    Research clients often approach us with thoughtful, sometimes urgent requests. Queries on whether our product contains residual solvents, on how it behaves in mixed solvent systems, or if it holds up to long-term refrigerated storage come through our technical desk continually. These aren’t theoretical questions: we have confronted them ourselves. By simulating accelerated aging, exposing material to cycles of heat and humidity, and testing for breakdown or color change, we can speak from direct experience instead of simply citing third-party numbers.

    Bridging Research and Practical Needs

    There is a persistent misconception that synthetic fatty acid derivatives are plug-and-play commodities. As a manufacturer, we have disproved this, batch after batch. Tetradecylthioacetic Acid with consistent melting point, batch-to-batch GC retention times, low water content, and a granule size suitable for dosing and transfer allows a lab or a pilot plant to concentrate on their experiment, not waste time compensating for poor material. Customers understand quickly that the same molecular name can mask wide variability in chemical reality.

    We invite partners to discuss real concerns: whether it is about dust control in powder handling, avoidance of contamination from stainless steel vessels, or the risk of polyacrylate breakdown products during packaging. Having fielded requests for custom particle sizes, low-residual solvent profiles, or tailored packing for export, we listen closely and respond through real adjustments to our production—not hand-waving or relabeling. Our QC lab doesn’t just tick off analytics; we document and verify, so users see that their results start with traceable, consistent input.

    Learning from the Field—And the Lab

    Routine audits and feedback loops with downstream users have pushed us to refine every protocol. Unexpected issues have shaped much of our operational memory. Years ago, a customer alerted us that our material clumped under certain climates. A review revealed that minor atmospheric moisture left during final packaging, combined with exposure to ambient air during transfer, could cause minor caking—a challenge for those dosing precise amounts in capsule form. We retrofitted our packaging line, integrating moisture-scavenging steps and new closure systems. Improvements came, not from a boardroom directive, but by listening to scientists working in their own labs.

    Another learning moment arrived in a partnership with a formulator in veterinary nutrition. They noticed baulking reactions in an emulsion system, attributed to low-level peroxide content—something unchecked suppliers might dismiss as irrelevant. We traced the cause back to an oxidizing agent introduced during a cleaning cycle. The change seemed trivial on paper, but showed up painfully in practice. This led to a full cleaning validation and stricter peroxide checks, raising our overall standard.

    Pushing Toward Better Solutions

    No chemical process stands still, and neither does the science behind Tetradecylthioacetic Acid. As literature develops deeper links between metabolic disorders and thioether-modified fatty acids, we focus our R&D resources on both process improvement and purity profiling. Where older methods tolerated higher sulfur contaminants, we have installed new sulfur-specific detectors and tweaked reaction stoichiometry for cleaner cuts and better yield. Our operators take pride in meeting challenges thrown at us by both old-school scale-up chemists and new-generation biotechnologists.

    Differences from legacy products become clear not through marketing claims but through user feedback and direct testing. We have seen customers increase batch throughput when moving to our material due to better flow and less downtime cleaning blocked augers or chutes. Others report improved reproducibility in biological assays—likely down to our tight GC-MS impurity control and avoidance of high-boiling residues.

    We develop solutions for shipping stability where the acid’s thioether can be prone to slow oxidation. Working with packaging suppliers, we moved away from leaky poly bags toward multi-layer barrier liners with inert gas headspace. Our material now arrives with freshness intact, whether destined for a university refrigerator or a warehouse in a warm, humid region. This detail matters because storage mishaps can reverberate through a supply chain, impacting everything from analytical reliability to user safety.

    The Manufacturer’s Perspective

    Stepping back, the journey of Tetradecylthioacetic Acid tells a broader story about the diligence needed in specialty chemical manufacturing. Unlike neat lists of physical properties, real materials act up and surprise. Teams who run the processes, who sample off the reactors, and who troubleshoot failed quality tests accumulate lessons that never show on a spec sheet. That context—the daily grind, the unearthing of issues, and the willingness to solve them before a customer even notices—frames our approach.

    Operators train on more than checklists. They understand why temperature ramps must be gradual to avoid side reactions, how small variances in raw material grade can impact final product odor, and which equipment seals resist acidification best. Engineers tighten controls over bulk storage tanks after a learning moment with thioacid hydrolysis. Every improvement we make, every standard we meet, and every failure we learn from, sharpens the product offered to the next customer.

    We differentiate our Tetradecylthioacetic Acid not just on published analytical numbers, but by a consistency in supply and an openness to user feedback. The day-to-day rhythms of our plant—the startup, the shutdown, the audits, the hands-on troubleshooting—form the backbone of our offering. We have worked through off-odor incidents, sporadic color drift, and learned the hard way where extra drying or finer grinding makes a dramatic difference at the point of use.

    Partnering for the Long Haul

    Downstream clients, particularly those running regulatory studies, need more than a one-off batch. They count on re-ordered material behaving identically to the last shipment. Consistency takes deliberate tracking of process lot numbers, archiving raw material data, and retaining reference samples for years. We open our records to customers for back-checking and support, because our involvement does not stop at the loading dock.

    End-use realities taught us that every drum we ship carries our company’s operational reputation as well as a chemistry grade. Late deliveries, off-spec grams, slow tech support—these lapses cost customers real time and money. Our track record, both in filling orders on time and in resolving inevitable issues, grows not from cautious claims but from a working rhythm built over years.

    Looking forward, we see the world’s standards for specialty chemicals growing ever tougher. Tetradecylthioacetic Acid sits in a class of fine chemicals where origin, purity, and practical usability count just as much as certificates. Our task, as we see it, is to turn years of making and learning into a reliable service for those at the cutting edge of metabolic research, clinical trial materials, nutritional formulation, and beyond. Partnering means standing behind each lot, opening doors to detailed technical discussion, and remaining a resource for as long as the material is in use.

    Final Thoughts from Inside the Manufacturer

    From a plant worker’s first shift to the process chemist planning yield improvement, hands-on experience with Tetradecylthioacetic Acid has shaped our perspective on what matters. Not every batch went smoothly; not every grade of raw material behaved as planned. Through the setbacks and problem-solving marathons, trust grew—with each other and with our customers. Every improvement, from cleaner feeds to smarter packaging, results from openness to real-world feedback and the drive to solve the hard problems, not gloss over them.

    Our pride in this product roots itself not in abstract statements but in the daily work and lessons of manufacturing. If you expect traceable, reliable, highly pure Tetradecylthioacetic Acid—crafted by a team who has seen, tested, and shipped every variant imaginable—consider our facility a partner. We look forward to continuing that journey, drum by drum, batch by batch, improvement by hard-won improvement.