Mercuric Acetate

    • Product Name: Mercuric Acetate
    • Alias: Acetic acid, mercury(II) salt
    • Einecs: 204-073-8
    • Mininmum Order: 1 g
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
    • CONTACT NOW
    Specifications

    HS Code

    565893

    Chemical Name Mercuric Acetate
    Cas Number 1600-27-7
    Molecular Formula C4H6HgO4
    Molecular Weight 318.68 g/mol
    Appearance White crystalline solid
    Melting Point 177 °C (decomposes)
    Solubility In Water Soluble
    Density 3.28 g/cm³
    Odor Odorless
    Boiling Point Decomposes before boiling
    Ph 1 Solution 3.5
    Storage Temperature Store at room temperature, tightly closed
    Un Number 1629
    Hazard Class 6.1 (Toxic substance)

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

    Packing & Storage
    Packing Mercuric Acetate is packaged in a 100g amber glass bottle, tightly sealed, with hazard labels, and product identification clearly displayed.
    Shipping Mercuric acetate is shipped in tightly sealed, corrosion-resistant containers, typically glass, polyethylene, or Teflon bottles. It must be clearly labeled as toxic and handled as a hazardous material Class 6.1 (Poison). Shipment should comply with local, national, and international regulations for toxic substances, ensuring safe storage away from incompatible materials.
    Storage Mercuric acetate should be stored in a tightly closed container, in a cool, dry, well-ventilated area away from incompatible materials such as strong acids, ammonia, and reducing agents. Store it in a dedicated poison cabinet with clearly labeled, corrosion-resistant containers. Protect from light, moisture, and sources of ignition. Access should be restricted to authorized, properly trained personnel wearing appropriate personal protective equipment (PPE).
    Application of Mercuric Acetate

    Applications of Mercuric Acetate in Industrial Manufacturing

    Mercuric acetate plays a critical role in several specialized industrial and research-based chemical processes. As a direct manufacturer with deep experience in both bulk supply and collaborative technical support, we supply this compound to downstream partners who require consistent quality, traceability, and technical guidance for integration into regulated, high-value applications. Below, we outline the primary segments where our customers adopt mercuric acetate as a functional chemical intermediate or process catalyst, detailing its specific compliance, formulation, and process parameters in each context.

    1. Organic Synthesis: Acetoxymercuration–Demercuration Reactions

    Many pharmaceutical and specialty chemical producers utilize mercuric acetate as a catalyst and reagent for acetoxymercuration–demercuration, a key methodology for the regioselective addition of acetoxy groups to alkenes and alkynes. This transformation enables downstream assembly of fine chemical intermediates and complex active pharmaceutical ingredient (API) scaffolds with precise structural control, required for high-purity end products. We provide technical support for formulation and safe handling protocols, meeting the rigorous demands of multipurpose synthesis operations.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • 21 CFR Part 211 (U.S. FDA cGMP for Finished Pharmaceuticals)
    • EU Directive 2011/83/EU (API and excipient purity requirements)

    Typical usage ratio

    • 0.9–1.2 molar equivalents relative to alkene/alkyne substrate, with precise adjustment based on target yield and substrate reactivity; optimized in lab-scale validation runs before commercial batch implementation.

    Downstream process integration

    • Introduced in the initial reaction vessel with substrate and acetic acid solvent during the acetoxymercuration step, with in-line monitoring for pH and conversion. Mercury residues are recovered and treated according to waste minimization protocols before progressing to the demercuration step using sodium borohydride.

    Final product types

    • Alkoxy- and hydroxy-functional API intermediates
    • Acetoxy-functionalized fine chemicals for further derivatization
    • Specialty monomers for advanced polymer synthesis

    2. Analytical Reagents for Sulfide Detection

    Commercial and municipal laboratories select mercuric acetate as a standard reagent for the selective determination of sulfide ions in waters, gases, and biological samples, owing to its reliable reactivity and well-characterized end-point chemistry. Its application supports compliance with environmental quality control and public health surveillance, underpinning validated analytical methods for regulatory reporting. As a manufacturer, we maintain documentation and lot traceability to support metrological and audit requirements.

    Industry compliance standards

    • ISO 17378-2:2014 (Water quality – Determination of arsenic and selenium by hydride generation AAS – Part 2: Titration with mercuric acetate)
    • USEPA 376.2 (Sulfide DDTC spectrophotometric method)
    • Standard Methods for the Examination of Water and Wastewater, Method 4500-S2-

    Typical usage ratio

    • 50–100 mg/L, optimized per sample matrix and expected sulfide concentration range; method standardization evaluates interference and background to confirm detection limits.

    Downstream process integration

    • Added directly to reaction flasks or colorimetric cuvettes as part of prepared reagent solutions for titrimetric or spectrophotometric analysis; quality control checks include blank and spike recovery samples on each run.

    Final product types

    • Certified laboratory control and calibration standards
    • Water and wastewater analytical data packs for regulatory submission
    • Published environmental monitoring reports

    3. Ethylene Production Catalyst (Vinyl Acetate Monomer)

    Mercuric acetate serves as a catalyst precursor in certain acetoxylation processes for the production of vinyl acetate monomer (VAM) from ethylene, acetic acid, and oxygen. Its use supports reliable catalytic activity, process efficiency, and selectivity in older or specialty reactor configurations, particularly where downstream resin or copolymer product purity must meet exacting standards for food contact and medical applications. Our supply ensures consistent catalyst quality to reduce variability in VAM output.

    Industry compliance standards

    • REACH Regulation (EC) No 1907/2006 Annex XVII (mercury compounds in industrial use)
    • US EPA TSCA Mercury Inventory Reporting
    • ISO 9001:2015 (Quality Management Systems for chemical manufacturing)

    Typical usage ratio

    • 0.2–0.6 wt% of catalyst bed, with periodic adjustment based on catalyst degradation rates and reactor maintenance schedules; specific dosing tailored to process scale and continuous operation parameters.

    Downstream process integration

    • Loaded onto catalyst carriers within the reactor, in slurry or supported form; replenished during shutdown or scheduled maintenance after monitoring catalyst performance and conversion rates.

    Final product types

    • Vinyl acetate monomer (VAM) for polymerization
    • Polyvinyl acetate (PVAc) resins used in adhesives and coatings
    • Food-grade copolymers and medical-grade polymers

    4. Oxidative Cleavage in Carbohydrate Chemistry

    Research and specialty carbohydrate manufacturers rely on mercuric acetate for the selective oxidation and cleavage of glycosidic linkages, facilitating structural modification of polysaccharides and oligosaccharides during the synthesis of rare sugars and glycoprotein components. Careful application allows for control over molecular weight, functional group presentation, and physicochemical characteristics, which are critical for biomedical and functional food research materials.

    Industry compliance standards

    • USP <1021> Carbohydrate Analysis
    • ISO/IEC 17025 (Accreditation for laboratory use of hazardous chemicals)
    • OECD Guidelines for the Testing of Chemicals (Safety in research chemicals)

    Typical usage ratio

    • 1.0–2.5 molar equivalents per glycosidic site, with precise dose based on substrate complexity, reaction time, and desired end-point (partial or full cleavage).

    Downstream process integration

    • Dosed into aqueous phase reactors together with carbohydrate starting material, temperature, and pH tightly controlled; quenching and downstream purification steps ensure removal of mercury by chelation and filtration.

    Final product types

    • Modified oligosaccharides and rare sugars for research and pilot-scale supply
    • Glycoprotein reference standards
    • Enzyme substrates for diagnostics and pharma R&D

    5. Preparation of Mercury-Containing Reference Solutions

    Accredited chemical and metrology laboratories utilize mercuric acetate for the gravimetric preparation of certified mercury standard solutions, applied in atomic absorption spectroscopy (AAS), inductively coupled plasma (ICP) analysis, and quality control of environmental and biological monitoring. Our material supports accurate calibration and traceability, complying with reference material provider accreditation and regulatory audit requirements for environmental testing laboratories and government bodies.

    Industry compliance standards

    • ISO 17034 (General requirements for the competence of reference material producers)
    • ISO/IEC 17025 (Testing and calibration laboratories)
    • OECD Good Laboratory Practice (GLP) Principles

    Typical usage ratio

    • Concentration adjusted according to final reference solution specification, generally 0.1–10 mg/L mercric ion in HNO3 or HCl matrix based on instrument calibration requirements.

    Downstream process integration

    • Dissolved in trace-analytical grade acid solution, using calibrated balances and class A glassware; solution undergoes stability testing and homogeneity verification before bottling and certification.

    Final product types

    • Certified mercury reference solutions for AAS, ICP, and CVAFS instruments
    • Proficiency testing samples for monitoring laboratories
    • Quality control sets for standardization and method development
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    Certification & Compliance
    More Introduction

    Mercuric Acetate: Reliable Quality from a Trusted Manufacturer

    Understanding Mercuric Acetate from the Producer’s Perspective

    On the factory floor, chemists and engineers work with mercuric acetate every day. It comes to life from a careful reaction that demands controlled temperatures, skilled operators, and equipment that stands up to mercury’s unique challenges. The final product is not just a compound with a chemical formula—Hg(OAc)2—but a legacy built from decades of production experience and a deep understanding of the needs of researchers and industry. Here, every lot tells the story of the lab teams that measure, filter, dry, and analyze its purity. This isn’t just another off-the-shelf reagent. Each batch represents a commitment to safety, reproducibility, and the kind of reliability that only comes from overseeing the process from start to finish.

    What Sets Our Mercuric Acetate Apart

    In practice, the differences between manufacturer-supplied mercuric acetate and material sourced through trading firms or repackagers become obvious long before the bottle reaches your laboratory. Freshly produced mercuric acetate carries a traceable batch record, with analytical data linked directly to our own processes and in-house calibrated instruments. Production lines handle only mercury compounds, minimizing risk of cross-contamination. Routine monitoring keeps particulate matter and residual reactants low, giving the material a pale white appearance customers expect—never dull or yellowed from mishandling or moisture uptake.

    Procedures in our plants focus on small-batch control, allowing our teams to respond quickly if a reading strays from specification. We do not rely on third-party intermediaries to set standards for purity or performance. The analytical chemistry staff regularly publishes internal reports on residual chloride, sulfate, free acid, and metal impurities. Our customers know every gram comes with a history built on real factory data, not just generic claims.

    Specifications That Matter in Real-World Applications

    Researchers and manufacturers using mercuric acetate in organic synthesis or as an oxidation catalyst require consistency batch after batch. The product leaving our reactors routinely shows purity at or above 99 percent, with water content less than 0.5 percent by Karl Fischer titration. We measure particle size using sieving and laser diffraction, ensuring flow properties that match the needs of both bench-scale chemists and automated feed systems in larger facilities.

    Quality checks extend to the major and minor impurity profile. Each drum or bottle undergoes analysis for alkali and alkaline earth metals, transition metals, and key anions. This matters. Small amounts of contaminants can alter catalyst behavior, interfere in precise analytical work, or introduce unplanned side reactions in pharmaceutical intermediate manufacture. By handling all of this in-house, our teams stand ready to address questions about quality at a level unavailable when dealing with warehouse resellers.

    Handling and Packaging Built on Field Experience

    Mercuric acetate’s stability in storage and transport depends on air-tight packaging. Exposure to humidity or sunlight can degrade it or form basic mercury salts. On our lines, every container receives tamper-evident seals and is placed in high-density polyethylene or glass, tested to stand up to routine shipping hazards. Labels include full origin traceability, batch code, and analytical data. We understand the cost of a delayed experiment or spoiled material. Orders leave the factory only after these details are final.

    Traditional glass bottles serve laboratories working with small-scale syntheses, but we also offer larger sealed drums for industrial applications. Secondary containment, ventilation procedures, and spillage controls have grown from years of listening to customer feedback and learning from our own controlled trials. The difference between product handled by the manufacturer and that repacked in less rigorous environments lies in that chain of custody—every step has a safeguard, every person along the way is trained in handling mercury compounds using up-to-date best practices.

    Role of Mercuric Acetate in Synthesis and Analysis

    Mercuric acetate has earned its place in organic chemistry thanks to its unique balance of reactivity and selectivity. In the factory, production chemists see it move straight from the reactor to the hands of those carrying out oxymercuration-demercuration reactions. Here, it transforms alkenes into alcohols cleanly, avoiding the rearrangements or byproducts common with less selective oxidizers. Analytical laboratories receive shipments for use as a reagent in aldehyde determination, thanks to its ability to react predictably with certain organic substrates. Its presence in environmental analysis stems from the need for highly sensitive mercury detection—possible only when the base reagent is pure.

    Some industrial users deploy mercuric acetate in the manufacture of specialty chemicals—not just as a catalyst, but also to mediate reactions where gentle electrophilic activation is essential. In these roles, impurity levels matter. Even a minor amount of residual acetic acid or chloride can throw off a process, reducing product yield or causing equipment corrosion. The level of process oversight possible only in a tightly controlled manufacturing environment makes these applications viable at scale.

    Differences Compared to Other Mercury Compounds

    People often ask how mercuric acetate compares to alternatives like mercuric chloride, nitrate, or sulfate. The differences shape decisions in both lab and plant environments. Mercuric acetate dissolves much more readily in organic solvents and acetic acid compared to chloride and sulfate forms. This solubility makes it an attractive choice for reactions that call for homogeneous conditions or that require quick reagent incorporation. Mercuric chloride offers higher water solubility but less versatility in some organic transformations due to increased reactivity, which can lead to side products.

    Our experience has shown mercuric acetate gives better selectivity in oxymercuration and similar electrophilic approaches. Mercuric sulfate, while respected in electrochemistry and some industrial processes, lacks the organic solubility and reactivity profile needed for the nuanced reactions our customers carry out. Mercuric nitrate finds use in very specific oxidation schemes, typically under more acidic and hazardous conditions. Direct customer feedback pushes us to focus on mercuric acetate, because researchers value predictable results with a product that behaves the same way every run.

    Meeting Regulatory Standards and Worker Safety

    Chemical manufacturing brings real risks, particularly when mercury is involved. Our teams operate under strict local, national, and international rules. Efforts to reduce fugitive emissions and control waste set the foundation for safe work. Every production area uses mercury-specific ventilation and handling steps. Factory operators wear multi-layer protective equipment, and monitoring systems catch spills early.

    There has been an increase in scrutiny from regulators and auditors over the past decade. We welcome it. Facility upgrades continue every year—closed systems, improved scrubbing systems, and digital batch tracking keep operations transparent. Waste materials, including used filters and wash solutions, are handled in segregated, clearly labeled streams that move directly to approved hazardous waste handlers. Transparency with customers gives them confidence, whether buying for research or for processes that reach tens of metric tons. We value both the safety of our workforce and the long-term reliability of supply.

    Reducing Waste—Manufacturing Lessons Learned

    Every chemical process produces byproducts. On the mercuric acetate line, years of experience have led to continuous improvements in resource use and waste minimization. Reactant ratios are tuned to maximize product recovery with the least possible excess. Washing steps use recirculated solvents instead of single-pass. Filtration systems recover as much mercury as possible before it ever becomes a disposal problem. We invest in process optimization not just to save on raw materials, but because responsible operations matter to our people and partners.

    In the last decade, we developed a closed-loop system that captures emissions from the acetate reactor and directs condensed vapors back into the wash stream. This has lowered uncontrolled emissions to near detection limits, placing our plant ahead of typical industry benchmarks. Ongoing operator training reinforces vigilance and builds a culture of safety and efficiency on the floor. We share these best practices through safety data sheets and site visits with our key customers. These aren’t just regulatory boxes to tick—they are a visible part of each drum and bottle shipped with our name.

    Challenges in Sourcing and Raw Material Quality

    Reliable mercuric acetate production depends on access to high-purity starting materials, especially the source mercury and acetic acid. Over the years, we’ve learned that even trace levels of arsenic, lead, or organics in the mercury feedstock can ruin a batch. We maintain contracts directly with miners and primary refiners whose output meets our stringent specifications. Periodic third-party audits validate these supply lines. Acetic acid arrives by bulk containers, sampled, and analyzed for aldehydes, iron, and non-volatile residues before it enters the manufacturing stream.

    We act on container cleanliness, tracking batch-to-batch variations in each raw material lot, and work with suppliers on corrective actions when inconsistencies appear. Supplier relationships go back decades. Both sides know the stakes. Customer reports of impurity or process issues trace back to these early steps in the chain, so we address them long before the product heads to market.

    Supporting Technical and Application Questions Directly

    Customers who work with us benefit from direct access to the teams that make the product. This removes barriers common in three-step sales channels, where questions about batch history, process changes, or application suitability get filtered or lost. Our chemists field questions about scale-up, solvent compatibility, and possible interfering ions. Some customers run pilot tests on production lines and ask for custom analytical support; others seek guidance for regulatory filings tied to specific impurity contents. We don’t refer these questions to outside parties or generic knowledge bases. Support comes straight from the source—the manufacturers and quality assurance staff who know the process, the material, and the context.

    Technical bulletins grow from every conversation. Over time, they form an informal library that informs both our customers and our next process improvements. This cycle—direct feedback, rapid response, and documented best practices—benefits everyone down the line, from junior lab staff to multinational process chemists.

    Changes in Standards—Staying Ahead of the Curve

    Industry specifications and analytical requirements are not static. Regulatory bodies and research consortia frequently revise the allowable levels of trace impurities or set new protocols for handling and measurement. We track these updates and proactively adjust our internal standards. This keeps us compliant and gives end users confidence that material sourced directly from us will satisfy the latest requirements in both industrial and academic settings.

    By investing in digital recordkeeping, process automation, and analytic instrument upgrades, we shorten the time it takes us to identify shifts in product performance and implement necessary changes. This readiness helps our customers avoid disruptions—whether they stem from changes in international law or breakthroughs in scientific technique that demand greater reagent precision.

    Trust Built Through Consistent Product and Service

    Manufacturing mercuric acetate depends on disciplined process control, honest communication, and an ongoing commitment to technical excellence. Customers return to us not just for high-purity chemical, but for the confidence that comes with direct sourcing from people who take ownership of every step. Whether supporting a complex synthesis route, a scale-up from bench to plant, or the supply chain of a multinational laboratory network, our focus remains the same: reliable product, transparent support, and continual improvement grounded in actual operating experience.

    We’ve seen customers struggle with poor flowability, unexpected impurity levels, or delayed deliveries from unreliable sources. By owning every part of production—reagent blending, quality testing, safe packaging, technical support—we reduce risks that could slow down research or create regulatory headaches. In our experience, these fundamentals build trust and steady business, in a market that rarely forgives carelessness.

    Future Outlook—Responding to a Changing Market

    The demand for high-purity mercuric acetate shows little sign of decline in specialist applications, though environmental focus on mercury handling and disposal has steadily increased. We respond by investing in cleaner technologies, better monitoring, and ongoing worker training. Product innovation rests on these improvements: safer packaging, automated delivery systems, and more comprehensive real-time analytical controls. Factory shutdowns for scheduled maintenance sometimes disrupt other supply chains, but we plan several months ahead and keep open lines of communication with major customers to avoid last-minute shortages.

    Collaborative research partnerships with leading academic and industrial labs allow us to test new forms of mercuric acetate, whether lower-dust formulations or tailored blends for specific reaction types. These advances grow from real operational data and customer experiences—not from market speculation. Feedback loops between production, QC, and R&D ensure that the next generation of product addresses concrete needs, not marketing trends.

    Environmental Responsibility and Future Innovation

    Mercury remains a focus for global environmental initiatives. We support these efforts by maintaining strict control over emissions, waste, and worker exposures. Our investments in closed filtration systems, solvent recovery, and online emission monitors help minimize our impact beyond the plant gates. Regular reporting keeps local stakeholders informed about factory impacts and ongoing improvements. Innovations in reagent delivery, such as pre-dosed capsules or sealed ampules, have roots in this push for both operational safety and customer ease-of-use.

    Real progress comes from integrating both environmental responsibility and technical improvement into production at once. By building on years of shop-floor knowledge, responding to customer feedback, and adopting new tools for process automation, we keep raising the bar for mercuric acetate manufacturing. This approach delivers a product that meets not only compliance requirements, but also the practical needs of a changing industry.

    Conclusion: A Manufacturer’s Perspective on Mercuric Acetate

    Mercuric acetate from our plant stands as the result of decades of technical progress, process optimization, and direct engagement with the scientific community. Every batch combines safety, integrity, and honest reporting. The process does not end with the production run, but carries through packaging, documentation, and ongoing customer support. This testimonial comes from years behind the controls—serving the real needs of those who rely on this uniquely valuable compound in their research, manufacturing, and analysis.

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