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3,5-Diacetoxyacetophenone

    • Product Name 3,5-Diacetoxyacetophenone
    • Alias PNSVPAUAMDDPAD-UHFFFAOYSA-N
    • Einecs 216-099-3
    • 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

    585640

    Product Name 3,5-Diacetoxyacetophenone
    Cas Number 61412-57-3
    Molecular Formula C12H12O5
    Molecular Weight 236.22
    Appearance White to off-white solid
    Melting Point 122-125°C
    Solubility Slightly soluble in water, soluble in organic solvents
    Smiles CC(=O)Oc1cc(cc(c1)C(=O)C)OC(=O)C
    Inchi InChI=1S/C12H12O5/c1-7(13)16-9-3-8(6-10(14)4-9)17-12(15)5-11(12)2/h3-6H,1-2H3
    Synonyms 3,5-Bis(acetoxy)acetophenone
    Storage Temperature 2-8°C (refrigerated)
    Purity Typically ≥98%

    As an accredited 3,5-Diacetoxyacetophenone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 3,5-Diacetoxyacetophenone is supplied in a 100g amber glass bottle, tightly sealed, with clear labeling and safety information provided.
    Shipping 3,5-Diacetoxyacetophenone is shipped in tightly sealed containers, protected from light, moisture, and extreme temperatures. It should be handled in accordance with all applicable chemical safety guidelines and transported according to relevant regulations, such as DOT or IATA, for non-hazardous laboratory chemicals. Ensure proper labeling and documentation during shipping.
    Storage Store 3,5-Diacetoxyacetophenone in a tightly sealed container in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible materials such as strong oxidizing agents. Protect from moisture, light, and direct sunlight. Label container appropriately, and handle under an inert atmosphere if necessary. Ensure access to appropriate safety equipment and follow standard laboratory safety protocols.
    Application of 3,5-Diacetoxyacetophenone

    Applications of 3,5-Diacetoxyacetophenone in Industrial Manufacturing

    As a specialized manufacturer of 3,5-Diacetoxyacetophenone, we focus on serving established industrial downstream segments where this raw material consistently demonstrates technical and commercial value. Below, we detail its core application scenarios, practical integration points, industry compliance protocols, and formulation details based on deployed use in key global manufacturing lines.

    1. UV-Curable Coatings for Electronics

    In electronics manufacturing, formulators leverage this compound as a photo-initiator for highly responsive UV-curable coatings. Its acetoxy functionality enables fast activation under low UV energy, which supports high-throughput processes for printed circuit boards, connectors, and display modules. The product features precise activation without compromising heat-sensitive substrates, aligning with the miniaturization trend in electronics assembly. Manufacturers apply this ingredient to control cure profiles, edge definition, and surface finish reliability in OEM electronics plants.

    Industry compliance standards

    • RoHS (Restriction of Hazardous Substances Directive)
    • IEC 61249-2-21 for halogen-free materials
    • IPC-4101C specification for base materials in PCBs
    • ISO 9001:2015 for electronics quality management

    Typical usage ratio

    • 0.5–2.0% by weight of total resin formulation, adjusted according to substrate sensitivity and layer thickness requirements.

    Downstream process integration

    • Inclusion during UV-curable resin preparation, prior to solvent addition and pigment dispersion; precise metering ensures optimal photoinitiation response in automated coating lines.

    Final product types

    • Solder masks for rigid and flexible PCBs
    • Conformal coatings for microelectronic assemblies
    • UV-cured adhesives in touch-sensor modules
    • Protective overcoats for electronic displays

    2. Pharmaceutical Intermediate Synthesis

    Pharmaceutical companies use this molecule in synthesizing advanced intermediates for analgesic and anti-inflammatory APIs, capitalizing on its ortho-diacetoxy substitution pattern to construct aromatic scaffolds. Medicinal chemists select it for high-yield acetylation reactions, facilitating downstream stepwise modifications with minimal impurity carryover. Its tight specification and low residual content support GMP-compliant process chemistry, with regular analytical verification required for every batch targeting regulated drug substance manufacture.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • USP–NF (United States Pharmacopeia–National Formulary) relevant monographs
    • EMEA Guidelines on Non-clinical and Clinical Standards
    • 21 CFR Part 211 (US FDA GMP for Finished Pharmaceuticals)

    Typical usage ratio

    • Used stoichiometrically in aromatic acetylation or as a limiting reagent; typically 1.0–1.1 molar equivalents, optimized per route-specific process validation.

    Downstream process integration

    • Charging at the protected aryl stage in multi-step syntheses, initiated prior to oxidative cleavage or downstream hydrolysis for constructing key molecular motifs.

    Final product types

    • Non-steroidal anti-inflammatory drug (NSAID) intermediates
    • Antihistamine precursor compounds
    • Custom intermediates for small-molecule APIs

    3. Light-Sensitive Photoresist Formulations

    This raw material is adopted by semiconductor fabricators in the formulation of specialty photoresists for microlithography. Its unique absorption profile enhances contrast and resolution at specific UV wavelengths, which allows process engineers to develop sharper pattern transfer during etching or deposition stages. By fine-tuning its concentration, plants minimize micro-defect rates and optimize production cycle times for advanced integrated circuits and MEMS structures, while maintaining batch-to-batch consistency under cleanroom protocols.

    Industry compliance standards

    • SEMI S2/S8 (Semiconductor Equipment and Materials International)
    • JEITA Chemical Guidelines for photolithography
    • ISO 14644-1 Cleanrooms and associated controlled environments
    • REACH Annex XVII compliance

    Typical usage ratio

    • 0.3–1.2% by solid content of photoresist, with adjustments based on targeted critical dimension and spectral properties of exposure tools.

    Downstream process integration

    • Dispersion into monomer or oligomer photoresist base under controlled solvent conditions, followed by filtration, homogenization, and packaging into production-ready photoresist systems.

    Final product types

    • Positive and negative photoresists for IC fabrication
    • Microelectromechanical systems (MEMS) pattern resins
    • Image sensor fabrication materials

    4. Fine Chemical Building Block for Organic Synthesis

    Chemical synthesis houses and custom manufacturing labs utilize the product as a protected phenol building block for constructing specialty functionalized benzenes. Researchers rely on its diacetoxy groups to enable controlled ortho-para substitution and subsequent deprotection. This enables scalable route development for dyes, agrochemical actives, and advanced laboratory reagents. The manufacturing-grade purity ensures high conversion rates and isolation yield with defined contamination limits across multi-step syntheses and process scale-up batches.

    Industry compliance standards

    • ISO 9001:2015 (Quality management for specialty chemicals)
    • Chemical Facility Anti-Terrorism Standards (CFATS, US DHS)
    • OECD Guidelines for the Testing of Chemicals
    • GHS (Globally Harmonized System for Labeling and Classification)

    Typical usage ratio

    • Reaction-scale dependent; typically 0.8–1.2 molar equivalent based on the target molecule and the length of the synthetic route.

    Downstream process integration

    • Dosed at strategic stages for stepwise assembly; introduced after base aromatic activation and prior to final deprotection or coupling reactions.

    Final product types

    • Specialty dyes for colorant manufacturers
    • Agrochemical actives for plant protection
    • Advanced analytical reagents
    • Research-grade chemical intermediates
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    Certification & Compliance
    More Introduction

    Introducing 3,5-Diacetoxyacetophenone: A Perspective from the Factory Floor

    Understanding 3,5-Diacetoxyacetophenone and Its Role in Application Development

    Every day here in the plant, we handle tons of different acetophenone derivatives, but 3,5-Diacetoxyacetophenone stands out for its consistency and reliability. Over the years, we've watched chemists and engineers look for not just functional groups on a benzene ring, but very specific reactivity—something this compound delivers. Our production lines have always responded to the demand for quality, and this molecule has been at the core of reactions that call for mild yet effective acetylating agents or intermediates in complex organic synthesis.

    Chemically named 1-(3,5-diacetoxyphenyl)ethanone, this fine white crystalline powder emerges from our reactors with a purity that has come to define our standard: typically not less than 99%. The molecule has a unique signature: two acetoxy groups at the 3 and 5 positions, giving the benzene ring new possibilities for downstream reactions. Unlike the basic acetophenone or simple monoacetoxy variants, 3,5-Diacetoxyacetophenone brings electronic effects that change how the molecule behaves when entering condensation, substitution, or cross-coupling reactions.

    Origin on the Line: Practical Aspects of Quality and Handling

    Witnessing the daily operation, I can say the diligence in our quality control has direct roots in years of production experience. After synthesis, we test every lot for melting point, HPLC purity, water content, and often even residual solvents. The high melting point, usually between 109 and 112°C, gives processors some breathing room—there are fewer worries about degradation or unwanted decomposition during moderate heating. Moisture? We keep it below 0.5%—a critical point for those who need predictable reactivity in their next step.

    Some buyers only see the end product in a drum or a fiber container lined with PE bags, but on the plant floor, each batch faces sniff tests for off-odors and visual checks to confirm that only clear, white or off-white material moves forward. Lab teams don’t miss a beat: thin-layer chromatography backs up content claims for researchers who build upon our product.

    Standing Apart: What Sets 3,5-Diacetoxyacetophenone Apart from Other Acetophenones

    Not all acetophenones behave the same way at the bench or in the reactor. Some customers start with the plain parent compound, hoping to control substitution themselves, but results often drift. Monoacetoxyacetophenones block only one spot on the ring, creating more opportunities for side reactions, especially in condensation or electrophilic aromatic substitution. What makes 3,5-Diacetoxyacetophenone effective? Those two acetoxy groups, symmetrically placed, restrict the ring’s accessibility and tune the electron density. In aldol-type reactions or selective aromatic halogenations, the performance difference becomes clear: less tar, more product, fewer by-products. That’s not a claim we make lightly; it comes from years of seeing yields hold steady from lab scale to tonnage.

    All this has led manufacturers and academic labs to prefer our compound when strict para/meta positioning determines the downstream functionalization schemes. Whether the product goes into making pharmaceuticals, agrochemicals, or specialty flavors, the reliability in reaction outcome traces straight back to the purity and predictability built into every kilogram we ship.

    Hands-On Use: Why Processors Value Predictability and Consistency

    On the plant floor, waste equals lost money and extra work, so consistency means everything. Processors want to know their ingredients will react the same way, each time, whether they’re running a kilo or scaling to tons. Experience has taught us that small changes in acetoxy substitution patterns on the ring can alter a downstream product’s color, purity, or efficiency. With 3,5-Diacetoxyacetophenone, customers gain more control over their syntheses; the blocked positions mean fewer surprises. This is especially critical in fine chemical production, where even minor process disruptions can create bottlenecks or plant shutdowns.

    Our technical support team fields calls from process chemists looking to adjust their conditions for better yields or less by-product. More often than not, predictability from our 3,5-Diacetoxyacetophenone puts these users ahead, outpacing batches made with monoacetylated or non-acetylated analogs. That isn’t just good for their bottom lines—it’s good for ours as well, since satisfied customers keep coming back.

    Applications We See in the Real World

    Textbooks might list this product as an intermediate, but experience on the ground shows its use is more dynamic. The pharmaceutical sector leans on the molecule for building substituted benzene frameworks, targeting controlled functionalizations that become active ingredients or key intermediates. Those working in flavor chemistry or aroma chemicals use it for specific esters and the unique volatiles only possible when precise acetylation is part of the process. In agricultural chemistry, it underpins synthesis steps that need strong electron-withdrawing groups on the aromatic ring to encourage the next transformation or to control stability in the environment.

    The physical stability of the material means it doesn’t clump or cake in storage if kept free of moisture. The small particle size, achieved by refining our drying and granulation cycles over the years, ensures even dispersion during reaction charging. This hands-on improvement reduces dust loss, keeping reactions cleaner in both batch and continuous operations.

    Process Innovation: Experiences from Our Production Journey

    A few decades ago, early batches came out with yellow tinges and unpredictable purity. Through rigorous investment in new crystallization and purification methods, we eliminated color bodies and tuned impurity profiles. Rather than rely on trial-and-error, our R&D team partnered closely with custom synthesis clients to identify which impurities caused trouble later down the line. We developed a high-efficiency solvent system for extraction and a vacuum-drying protocol that sets moisture content consistently low.

    Every improvement followed feedback from customers and our own plant workers. Some changes seem minor—such as switching drum liners or redesigning the screw conveyor to avoid cross-contamination from previous products—but these process tweaks have built long-term trust. Raw material sourcing, once a bottleneck, now benefits from robust vendor qualification, allowing us to guarantee full traceability from the incoming acid chlorides and ketones to the outgoing finished product.

    Responsiveness to Changing Regulatory Expectations

    Clients in regulated industries know our documentation keeps pace with their needs. From certificates of analysis matching international ICH guidelines to trace impurity data, our team supports customer compliance efforts. We track regulatory changes in global markets and adjust production as soon as new thresholds take effect. Ethically and transparently sourced, our product lines reflect a priority for compliance, confirmed through audits and customer-site visits. These efforts help our partners operate with confidence, whether registering a new excipient or meeting seasonal demand spikes for agricultural applications.

    We back every batch with full documentation—material safety data, batch analytics, and, where required, method validation for customer-specific applications. Over the years, we’ve learned there’s no shortcut for complete records; missed paperwork or ambiguous reporting only causes costly delays later on. Watching our own shipments clear customs with ease underscores the effectiveness of this preparation.

    Supporting Sustainable Chemistry and Environmental Priorities

    Chemical manufacture today means facing bigger questions about environmental impact. Compared to less substituted acetophenone derivatives, 3,5-Diacetoxyacetophenone gives processors a way to minimize hazardous waste. Its increased selectivity in end-use reactions translates to more desired product per input and less by-product to dispose. Our production lines use closed systems and solvent recycling to curb emissions, and each step from raw materials to finished product follows strict waste minimization policies.

    We handle waste solvents via distillation and coordinate with waste handlers certified in hazardous chemical recovery, avoiding simple landfill. In the past, open-vat evaporation was commonplace, but the cost to both business and environment proved unsustainable. Today’s tightly controlled systems result from direct feedback and ongoing industry monitoring.

    Across every lot run, we track not only basic KPIs like yield and cycle time, but broader indicators—energy consumed per kilogram made, total volumes of recovered solvents, and hazardous waste generated. These aren’t just numbers to improve on paper; they shape how we prioritize plant upgrades and which projects go forward in R&D.

    Real Problems and Real Solutions: What Long-Term Customers Value

    Many of our customers operate processes that tolerate little variation. Over time, they’ve shared countless stories about ruined batches caused by trace impurities or inconsistent reactivity from other suppliers. That frustration pushed us to refine not just our synthesis but how we certify final products, how we store and ship, and how we listen to user feedback. The demands aren’t academic—missed delivery dates or failed downstream chemistry can mean lost contracts or idle output lines.

    Our reliability springs from experience, not marketing. Batches move straight from reactor to drying and packing without unnecessary hold times, so the risk of uncontrolled moisture pick-up or contamination drops. We built our inventory buffers around real-world usage patterns, using customer forecasts and order histories to limit backorders and short shipments.

    Even when global freight schedules break down, we keep strategic volumes close to major customers to avoid disruption. Through years of listening and adapting, we’ve learned the importance of transparency if we face any actual delays—a simple, accurate explanation goes further than promises or blame-shifting.

    What We’ve Learned from Technical Collaborations

    Research teams need more than just high-purity chemicals—they want rapid answers to technical questions, especially when scaling from bench to pilot or full production. Our application scientists, many of whom made the same molecules in a previous lab life, offer hands-on troubleshooting support. This means sending sample packets to compare process responses or coaching on best practices for storage and reactivity.

    It’s common for customer-side engineers to ask about the performance of 3,5-Diacetoxyacetophenone in less-common solvents or under unusual thermodynamic conditions. Experience lets us guide clients away from pathways that risk premature deacetylation or unwanted side reactions. Our role doesn’t end with the shipment—it continues through application development and even into the support of patent or regulatory documentation.

    Sometimes the improvements are small—changing a drying method or adjusting filtration—to boost downstream yields or solve a recurring problem. In other cases, we work with clients to modify the product, adjusting particle size or packaging to support automated dosing or micro-reaction systems. These open lines of communication help push the industry forward and bring new, safer finished goods to market faster.

    Training and Anticipating User Needs

    From our vantage point, we see both seasoned process chemists and early-career researchers learning the ropes. Our teams regularly conduct site training, helping customers recognize subtle signals: a shift in powder color, early onset of exothermic reaction, or the best way to recover excess product. These lessons draw straight from our own trial and error.

    Demand for smaller packed units has grown as labs scale down pilot projects to cut waste. We now fill both multi-ton containers and small, sealed packs, letting users minimize air exposure and reduce loss, especially when strict batch-traceability rules govern R&D or cGMP environments.

    Receiving clear feedback helps us anticipate new trends or identify which product variants deserve R&D priority. Clients will sometimes ask for alternate counterions or solvates; we track these requests, testing feasibility on our own pilot lines. Careful attention to changing needs helps everyone build stronger and more adaptable manufacturing networks.

    Looking Ahead: Future Developments in Production and Customer Support

    Anticipating changes in the chemical industry, we’ve invested in digital tools that track every reactor batch. This lets us address problems quickly and share real-time data with customers needing immediate answers. Blockchain systems help some customers with regulatory traceability, and we’re piloting expanded remote analytics for clients with distributed sites.

    Adapting to market changes means remaining ready for both smaller specialty runs and large-scale campaigns. We keep a flexible reactor-pool approach, switching batch sizes to match seasonality or unexpected customer surges. Raw material security remains a top priority—our close integration with suppliers avoids single-source risk that can cripple less-prepared manufacturers.

    For partners developing new applications, we offer technical workshops and detailed case studies showing how 3,5-Diacetoxyacetophenone has solved real-world synthetic challenges. Knowledge transfer and support build long-term trust and help industry leaders stay agile as regulations and supply chains shift.

    Quality through Every Step: A Commitment from Manufacturer to Customer

    In producing 3,5-Diacetoxyacetophenone, we put customer trust at the heart of every process improvement and shipment. Experience teaches us that every kilogram counts—not just in physical weight but in the confidence that what leaves our door will perform as promised. Whether the customer runs a single reactor or an entire suite of continuous lines, we stand ready to support their projects with high-purity products, responsive service, and practical technical collaboration built on real-world results.

    No theoretical promise replaces experience gained batch by batch, year after year. Today’s customers expect more than simple compliance; they demand products and partnerships that improve outcomes, limit risk, and support innovation. We deliver that performance one order at a time—and with every shipment of our 3,5-Diacetoxyacetophenone, we keep that commitment moving forward.