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10,12-Tricosadiynoic Acid

    • Product Name 10,12-Tricosadiynoic Acid
    • Alias 10,12-Tricosadiynoic acid
    • Einecs 629-679-8
    • 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
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    Specifications

    HS Code

    182186

    Product Name 10,12-Tricosadiynoic Acid
    Cas Number 53782-86-4
    Molecular Formula C23H38O2
    Molecular Weight 346.55 g/mol
    Appearance White to off-white powder
    Purity Typically >98%
    Melting Point 58-62°C
    Solubility Insoluble in water, soluble in organic solvents
    Storage Temperature 2-8°C, protect from light
    Synonyms Tricosa-10,12-diynoic acid
    Smiles CCCCCCCCCC#CC#CCCCCCCCC(=O)O

    As an accredited 10,12-Tricosadiynoic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 10,12-Tricosadiynoic Acid, 100 mg, supplied in a sealed amber glass vial within a protective secondary container, labeled with hazard information.
    Shipping 10,12-Tricosadiynoic Acid is shipped in tightly sealed containers to protect it from moisture, light, and air. It is classified as a non-hazardous chemical and should be handled with standard laboratory precautions. The package includes appropriate labeling and documentation, and is shipped at ambient temperature, unless otherwise specified by the manufacturer or customer.
    Storage 10,12-Tricosadiynoic Acid should be stored in a cool, dry, well-ventilated area, tightly sealed in its original container. Protect from light, moisture, and sources of ignition. Refrigeration (2–8°C) is recommended to maintain stability. Avoid contact with strong oxidizing agents. Keep away from incompatible substances and ensure proper labeling to prevent accidental misuse. Store according to local regulations for hazardous chemicals.
    Application of 10,12-Tricosadiynoic Acid

    Applications of 10,12-Tricosadiynoic Acid in Industrial Manufacturing

    10,12-Tricosadiynoic Acid stands out as a specialty raw material in advanced sensing, diagnostic devices, and surface science. As the direct manufacturer, we prioritize process control, material traceability, and collaboration with customers in performance-critical segments. The following sections outline key B2B applications with specific compliance regimes, technical integration details, controlled formulation ratios, and real industrial value chains.

    1. Colorimetric Sensor Films for Chemical and Biological Detection

    Leading diagnostic technology suppliers utilize 10,12-Tricosadiynoic Acid as a structuring material for polymerized colorimetric films. Researchers and manufacturers value its unique diacetylene chemistry for rapid and sensitive detection platforms, especially where irreversible color transitions act as visual indicators for molecular interactions. The material consistently meets stringent purity and processability criteria for developing field and laboratory diagnostic tools aimed at monitoring environmental, biological, and food safety threats.

    Industry compliance standards

    • ISO 13485:2016 (Medical device quality management systems)
    • EU REACH Registration (for use in sensor materials)
    • RoHS Directive 2011/65/EU (for non-electronic sensor housings)
    • US EPA TSCA Inventory listing (for environmental monitoring devices)

    Typical usage ratio

    • 1–5% by weight in diacetylene monomer blends; adjusted according to desired film responsiveness and target analyte interaction strength

    Downstream process integration

    • Adds to monomer phase during formulation of sensor film solutions prior to coating or casting
    • Participates in UV-induced polymerization step to form colorimetric indicator films
    • Incorporates within multi-layer sensor architectures for specific analyte targeting

    Final product types

    • Colorimetric test strips for environmental hazard detection
    • Rapid food spoilage and contamination indicators
    • Wearable sensor labels for healthcare diagnostics
    • Laboratory microfluidic chips with built-in visible response films

    2. Surface Modification Agents in Biosensor Platforms

    Original equipment manufacturers in the biosensing sector leverage the distinctive amphiphilic structure of 10,12-Tricosadiynoic Acid to create functionalized surfaces for selective biomolecule attachment. Its application as a self-assembling monolayer or as a co-monomer ensures consistent molecular orientation, which directly impacts probe immobilization reproducibility and device signal clarity. This material is relied upon in the fabrication of next-generation electronic and optical biosensors where cleanliness, reproducibility, and biocompatible presentation of surface groups are critical for commercial diagnostic cartridges.

    Industry compliance standards

    • ISO 10993-1 (Biocompatibility for medical devices)
    • cGMP guidelines (21 CFR Parts 210/211)
    • EN ISO 9001:2015 (for biosensor manufacturing environments)
    • USP <1041> (Surface active agents for medical devices)

    Typical usage ratio

    • 0.1–2.0% (w/w) in surface modification baths or spin-coating solutions; titrated according to substrate area and required density of functional groups

    Downstream process integration

    • Applies in post-cleaning stage as a coating or dipping step on sensor chips or microplates
    • Utilizes in UV or thermal initiated cross-linking to establish stable self-assembled monolayers (SAMs)
    • Enables subsequent covalent or supramolecular attachment of antibodies, DNA probes, or peptide ligands under controlled humidity and cleanliness

    Final product types

    • Microarray slides for genomics and proteomics surveys
    • Lab-on-a-chip biosensors for point-of-care diagnostics
    • Electronic immunosensor cartridges
    • Optical waveguide sensors for clinical and industrial monitoring

    3. Optical Data Storage Media R&D

    R&D divisions at data storage component companies incorporate 10,12-Tricosadiynoic Acid for its photochromatic phase transitions within experimental rewritable optical storage architectures. Its predictable chromatic response to laser exposure forms the technical basis for research into high-density, durable data recording materials. The compound’s reliability during repeated write-erase cycles and low-threshold activation underpin work to expand storage platform lifespans and data integrity in next-generation media.

    Industry compliance standards

    • IEC 60950-1 (Information technology equipment safety)
    • EN ISO 14644-1 (Cleanroom manufacturing for data-grade materials)
    • ISO 14721:2012 (Open archival information system—relevant for long-term storage R&D)
    • Internal R&D protocols for photostability and environmental stress testing

    Typical usage ratio

    • 0.5–3.0% by weight in optical media layer formulations; adjusted according to required resolution, data longevity, and recording density targets

    Downstream process integration

    • Integrates during slurry preparation for spin-coating or dip-coating onto polymer or glass substrates
    • Polymerizes under controlled light or heat during formation of data storage layers
    • Functions within multi-layered test wafers for laser readability assessment

    Final product types

    • Prototype rewritable optical memory disks
    • Photoresponsive archival data storage films
    • Research samples of high-density patterning media
    • Experimental phase-change chips for academic and commercial evaluation

    4. Solid-State Colorimetric Packaging Indicators

    Global packaging innovation centers integrate 10,12-Tricosadiynoic Acid into composite indicator elements to develop irreversible spoilage monitors for perishable goods. These color-changing inserts trigger visible alerts upon exposure to cumulative temperature abuse, oxygen ingress, or volatile spoilage markers within food and pharma logistics chains. Close control of formulation and surface immobilization processes is necessary to guarantee consistent visual endpoint signaling that aligns with modern traceability and anti-counterfeiting requirements.

    Industry compliance standards

    • EU Food Contact Materials Regulation (EC) No 1935/2004
    • US FDA 21 CFR 175.300 (Resinous and polymeric coatings for packaging applications)
    • ISO 22000:2018 (Food safety management systems)
    • Guidelines from Active and Intelligent Packaging Industry Association (AIPIA)

    Typical usage ratio

    • 0.2–2.0% by weight as part of polymer matrix or ink formulation; fine-tuned based on desired threshold sensitivity and label format size

    Downstream process integration

    • Dispersion into polyurethane, polystyrene, or cellulose-based matrices during active label production
    • Incorporates prior to extrusion, solvent casting, or inkjet printing of indicator segments
    • UV-cures as a final step to stabilize color-change functionality

    Final product types

    • Freshness and spoilage indicator labels for chilled and frozen foods
    • Oxygen breach monitors for pre-packaged pharmaceuticals
    • Transport abuse sensors for cold chain distribution
    • Moisture and solvent vapor exposure tags for industrial bulk goods
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    Certification & Compliance
    More Introduction

    10,12-Tricosadiynoic Acid: Practical Insights from a Manufacturer’s Floor

    Making specialty monomers like 10,12-Tricosadiynoic Acid means navigating a lot more than just chemistry. Every batch reflects years spent improving consistency, addressing scale-up challenges, and responding directly to customers in research, diagnostics, and nanotech fields. For us, 10,12-Tricosadiynoic Acid isn’t just another long-chain fatty acid with a couple of special double and triple bonds. It represents one part of a set of tools that scientists count on for responsive materials, sensor development, and other demanding roles.

    Structure and Handling: From Synthesis to Storage

    We make 10,12-Tricosadiynoic Acid here in our own facility, starting with select hydrocarbons and monitoring every stage for purity. The distinctiveness comes from its diyne segment—conjugated triple bonds at carbons 10 and 12 along the 23-carbon backbone. This arrangement produces very reactive sites, crucial for photopolymerization. Our technicians see firsthand how even slight deviations in solvent, temperature, or oxygen levels ripple through the final product’s performance. Each kilogram leaves only after it passes rigorous checks: precise melting point, NMR, and chromatography—everything required to verify its single functionality and purity, because sensitive applications cannot tolerate surprises.

    The raw material arrives as a fine powder, faintly off-white, with a mild fatty odor. Storing this material in dark, airtight containers keeps its characteristics from drifting over time. Temperature swings or excess humidity can catalyze unwanted side reactions, so our warehouse maintains a steady, cool environment. We enforce tight inventory rotation. Small research batches usually move quickly, but we use FIFO for larger lots, so customers receive materials at peak stability.

    Why 10,12-Tricosadiynoic Acid?

    Most buyers we work with do not seek 10,12-Tricosadiynoic Acid for basic organic experiments. Instead, they look for ultra-pure diyne compounds to make responsive thin films and vesicles—materials that change color or conductivity upon stimuli like heat, pH, or molecular binding. Our product forms the backbone for these systems because the diyne groups react easily under UV exposure, creating robust polydiacetylene structures. By controlling crystallinity and packing, researchers tune the finished material’s behavior.

    Working with this molecule brings unique challenges and advantages. Its long hydrocarbon chain helps create stable layered assemblies, while the diyne segment lets users design signal-triggering mechanisms. We frequently see demand from groups developing biosensors. They coat surfaces or encapsulate probes in 10,12-Tricosadiynoic Acid-based assemblies, then rely on the color change that occurs after photopolymerization. Custom lipid mixtures incorporating this acid enable everything from toxin sensors in food safety to biomolecular interaction detection on microarrays.

    Specifications That Matter on the Lab Bench

    Within our facility, quality means repeatability. For 10,12-Tricosadiynoic Acid, this involves more than meeting a numeric assay—our experience tells us that subtle impurities, cosmetics, and crystal form all affect downstream performance. We target a minimum purity above 98% by HPLC, but the real differentiator lies in minimizing side products that would otherwise block photopolymerization.

    Packing density and flow properties influence how the acid blends into lipid solutions, micelles, or films. Over the years, we’ve tuned grind sizes and drying methods so researchers can dissolve and recrystallize the material efficiently, even at small scales. This is especially critical for those preparing monolayers or small unilamellar vesicles: inconsistent particle size leads to uneven spreading or poor polymerization upon irradiation. We never undervalue feedback from the bench—we listen and improve, often tailoring batch properties to customer protocols or new instrumentation as methods evolve.

    Comparisons: Where 10,12-Tricosadiynoic Acid Fits in the Toolbox

    Our catalog includes several diynoic and monounsaturated fatty acids—each with its own sweet spot. 10,12-Tricosadiynoic Acid distinguishes itself by the position and conjugation of the diyne system, balancing reactivity with manageable hydrophobicity. For those working in membranes or coatings, chain length affects everything from membrane permeability to kinetics of self-assembly. Try a shorter diynoic acid and you’ll likely see differences in film robustness or vesicle formation.

    The acid’s chain length of 23 carbons offers noticeable differences compared to 1,2-bis(tricosa-10,12-diynoyl)-sn-glycero-3-phosphocholine (DC8,9PC) or shorter diynes like 9,11-octadecadynoic acid. The longer carbon tail of 10,12-Tricosadiynoic Acid pulls layers tighter and yields denser packing in Langmuir-Blodgett films and vesicular suspensions. For those concerned about chain-matching in lipid bilayers or mixed micelles, this acid fits well with natural and synthetic fatty acid blends, enabling more robust and reproducible film formation. In our facility, we see steady requests from researchers who tried shorter chain alternatives but found them too susceptible to aggregation or too difficult to handle.

    Applications Done Right—Case Experiences from Researchers

    Our staff works with universities, startups, food testing labs, and medical device developers. For each, we see different makeshift approaches and the occasional resourceful adaptation. The most popular use remains the formation of chromatic polydiacetylene films. This process begins when researchers deposit a mixed solution—often with cholesterol or phospholipids—onto a substrate, then expose it to low levels of UV to trigger polymerization. The resulting film exhibits a vibrant blue-to-red transition upon contact with specific analytes. Medical groups employ this for rapid toxin or pathogen indicators, where the naked eye can catch a response in seconds.

    Another frequent request comes from teams designing vesicles for molecular recognition studies. We advise on best practices for dissolving 10,12-Tricosadiynoic Acid in chloroform or other compatible solvents, then forming multilamellar vesicles via hydration and extrusion. Users report the acid’s ability to align and polymerize consistently, outperforming many shorter or branched analogs in terms of mechanical stability and colorimetric responsiveness. These vesicles end up in test strip coatings, disposable diagnostic tools, and microfluidic systems for real-time environmental monitoring.

    Synthetic chemists approach us for a different reason: the diynoic acid’s unique electronic properties lead to further derivatizations and cross-couplings. They fashion terminal groups, build into dendrimers, or use it as a building block for more elaborate supramolecular structures. The balance of reactivity and chain flexibility attracts materials scientists interested in advanced coatings or responsive gels.

    Optimization: Lessons from the Production Line

    The first industrial-scale synthetic runs taught us tough lessons about temperature control, filtering procedures, and impurities from raw materials. Batch failures—rare but educational—often trace back to overlooked moisture or nonvolatile residues that hinder photopolymerization. We introduced new drying protocols and routine spectroscopic analysis at multiple stages to catch these problems before they ever reach packaging. Our production crew meets weekly to review run data and customer feedback. If a batch doesn’t dissolve well or yields a sluggish response in a sensor test, we dig into drying step records or check for overlooked by-products. Mistakes become improvement plans.

    Over time, our chemists found that using fresh reagents, keeping transfer lines free from plasticizers, and monitoring UV exposure during storage make a noticeable impact in material quality. We label storage tanks by lot and expiration to avoid cross-contamination. Creating a reproducible product means not only perfecting the synthesis but keeping every drum and flask aligned with best practices. We apply strict standards designed alongside researchers who stake their results on every gram.

    Scale-Up Challenges and Real-World Solutions

    Working beyond lab scale required us to reconsider solvents, crystallization tanks, and even blade geometries. Slight misalignments in agitation speed lead to different crystal morphologies, so we rely as much on technician know-how as on formal process validation. Scaling up revealed that what works in a 100 ml flask can behave unpredictably in a 200 L vessel. We had to juggle physical limitations of equipment with the intimate molecular needs of our product.

    We’ve seen that solvent residues and oxygen traps cause headaches for users working on high-sensitivity sensor platforms. Our senior engineers implemented evacuation and nitrogen backfilling at every packing station, which keeps each batch fresh and unreacted by atmospheric moisture or oxygen. This detail might seem minor, but repeated reports from clients about color fidelity and shelf life confirmed the approach. It’s small upgrades like these that define the difference between material that inspires confidence and material that ends up suspect on a shelf.

    Production Perspective: Meeting Evolving Standards

    Every year, new applications emerge—some crossing from research to product development, others raising demands for even tighter quality control. Environmental monitoring groups began ordering larger quantities once lateral flow rapid tests became popular. Suddenly, material traceability became as important as cost. Our records stretch back a decade for each lot, covering not just analysis reports but also storage temperatures, transfer logs, and cleaning records for every vessel that touched the acid.

    For growing sectors like food safety, the material’s role centers on quick and reliable detection of pesticides or harmful bacteria. We’ve worked with teams to troubleshoot unexpected background signals in assay strips, tracing it back to trace impurities in the acid itself. Adjusting purification methods—a combination of crystallization, recrystallization, and column methods—means their strips respond accurately, without errant positives or sluggish color changes. Building direct relationships with users replaced guesswork with feedback and adaptation.

    Competitive Differences—Inside Information

    From the outside, 10,12-Tricosadiynoic Acid often looks interchangeable with similar long-chain diynoic acids. On the production line, small differences in how the material is produced, ground, and packed make all the difference. We get requests from users who struggle with off-brands or outdated stock, reporting weak or inconsistent photoresponses. Their issues usually trace to overlooked oxidation or solvent impurities, often the silent culprits behind underperforming films or unstable assay results.

    We use only fresh, well-sealed raw materials and transparent process controls because every failed experiment ultimately returns to material quality. Our customers get consistent notification of lot changes, process improvements, and testing protocols. Some have even sent their own QA inspectors to observe or review processes. We welcome scrutiny. Proving reliability isn’t about words or certifications; it’s about batches that work, again and again, in the hands of the most demanding users.

    Listening and Adapting: A Culture of Direct Support

    Being a direct manufacturer gives us a front-row seat to the daily realities researchers face. Challenges arise that have no single solution—unexpected aggregation, finicky film formation, or stubborn residues in microfluidic chips. We respond not just with fresh batches and certificates, but with hands-on troubleshooting. Often, we talk through protocols, suggest alternate solvents, or share tips learned from dozens of labs using our acid in different systems.

    Sometimes, we prototype tailored batches—changing grind size, density, or drying time—to see what yields better results. A collaborative approach drives us. If our acid doesn’t deliver exactly what a new application demands, we look for routes to tweak the process or reformulate. Our technical team keeps up with scientific literature and works alongside instrument manufacturers and end-use engineers to anticipate new production needs.

    Regulatory Considerations and Sustainability Efforts

    In recent years, usability and regulatory compliance grew in importance. Some clients require full trace documentation for audits. We keep comprehensive material data records, support hazard communication, and proactively phase out problematic solvents, responding both to new regulations and to customer values. Our facility has moved to greener extraction and washing agents, replacing legacy methods where possible with bio-based or less hazardous alternatives. We recycle and treat process waste to meet local and international guidelines, keeping future access to markets secure while protecting operators and the environment.

    Sustainability, for us, means both resource efficiency on the plant floor and transparency for the end user. Tracking solvent usage, minimizing waste, and extending product shelf life all feed into a cycle where performance, safety, and responsibility reinforce each other. Many clients now value disclosure and provenance as much as purity or price, so we invest in both cleaner processes and clear communication.

    Looking Forward: Meeting Tomorrow’s Demands

    The chemical landscape never stands still. New methods in nanofabrication and biotechnology demand even higher standards for all specialty monomers. We’re seeing an uptick in collaborative development as more companies and research groups outsource sensitive steps like photopolymerizable monomer production. This places new weight on transparency, reliability, and direct accountability. Being involved in the full cycle, from raw material purchase to final user feedback, lets us maintain the quality loop and build trust.

    Technicians, chemists, and field engineers all share credit for the reputation we’ve built around 10,12-Tricosadiynoic Acid. Each advancement in production, quality assurance, or storage serves a real-world need, not marketing copy. We stake our name on every shipment—because we see firsthand how even the smallest error can hold up research breakthroughs or compromise life-saving devices.

    Conclusion: The Manufacturer’s Commitment

    To us, 10,12-Tricosadiynoic Acid is not just another specialty chemical; it’s an example of how attention to detail and honest dialogue drive both science and business. Long days in the plant, routine process audits, and hands-on troubleshooting all reinforce that quality is a practice, not a buzzword. We’ve learned that making a difference starts with listening, continues with adapting, and only ends with a satisfied scientist or end user out in the field. Our promise is simple: every batch leaves our doors carrying the experience, standards, and dedication of everyone who handled it along the way.