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Mercuric Gluconate

    • Product Name Mercuric Gluconate
    • Alias Mercury bis(D-gluconate)
    • Einecs 236-859-1
    • 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

    941728

    Chemical Name Mercuric Gluconate
    Chemical Formula C12H22HgO14
    Molecular Weight 645.91 g/mol
    Appearance White to off-white powder
    Solubility In Water Soluble
    Melting Point Decomposes before melting
    Cas Number 18424-55-4
    Storage Conditions Store in a cool, dry place; keep container tightly closed
    Toxicity Highly toxic, particularly to kidneys and central nervous system
    Usage Antiseptic and disinfectant (historical, rarely used today)
    Mercury Content Contains approximately 31% mercury by mass
    Stability Stable under recommended storage conditions

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

    Packing & Storage
    Packing The packaging for Mercuric Gluconate is a sealed amber glass bottle containing 100 grams, labeled with hazard warnings and proper handling instructions.
    Shipping Mercuric Gluconate should be shipped in tightly sealed, corrosion-resistant containers, clearly labeled with hazard warnings. Transport must comply with local, national, and international regulations for toxic substances. The chemical should be protected from physical damage, stored away from incompatible materials, and handled by trained personnel using appropriate safety precautions.
    Storage **Mercuric Gluconate** should be stored in tightly closed containers, away from light and moisture. Keep it in a cool, dry, and well-ventilated area, separated from incompatible substances such as strong acids and bases. Ensure the storage area is secure and labeled, minimizing exposure to heat and direct sunlight. Always follow legal and safety guidelines for storing toxic chemicals.
    Application of Mercuric Gluconate

    Applications of Mercuric Gluconate in Industrial Manufacturing

    Mercuric Gluconate, recognized for its stable mercury content and solubility profile, serves as a specialty chemical ingredient in high-precision sectors with distinct regulatory and process requirements. Below, we outline the established industrial application pathways in which our manufacturing expertise ensures compliance, reliable supply, and formulation consistency for large-scale downstream users.

    1. Vaccine Antiseptic and Preservation Systems

    Manufacturers in the pharmaceutical sector utilize Mercuric Gluconate in vaccine and antitoxin production, where its antimicrobial activity ensures preservation of multivalent liquid biologicals during processing and storage. Our product meets critical parameters demanded in injectable formulations, supporting preservative functions as prescribed by regulatory authorities.

    Industry compliance standards

    • European Pharmacopoeia (Ph. Eur.) chapters on vaccine preparation and preservative agents
    • United States Pharmacopeia (USP) Monograph requirements for antimicrobial preservative testing
    • Good Manufacturing Practice (GMP) for sterile biologicals (EU GMP Vol.4 Annex 1, WHO TRS 961)
    • US FDA Code of Federal Regulations (21 CFR Part 610) for biological products

    Typical usage ratio

    • Commonly dosed within 0.01%–0.05% (w/v) depending on the vaccine type, with exact incorporation levels determined by antigen sensitivity and validated stability profiles

    Downstream process integration

    • Introduced to the liquid formulation tank after antigen and excipient combination, prior to aseptic filtration and vial filling

    Final product types

    • Pediatric combination vaccines (e.g., DTP, Hepatitis B)
    • Veterinary biological antitoxins
    • Multidose inactivated viral vaccines
    • Bacterial toxoid vaccine components

    2. Diagnostic Reagent Synthesis

    Mercuric Gluconate acts as a specialty source of ionic mercury in the preparation of certain wet chemistry reagent kits and colorimetric assay systems, effectively participating in controlled redox reactions and protein precipitation processes vital to laboratory analytic standards.

    Industry compliance standards

    • ISO 13485:2016 for in vitro diagnostic reagent manufacturing
    • REACH (EC 1907/2006) substance registration for reagent-grade chemicals
    • CLSI (Clinical & Laboratory Standards Institute) protocols for analytical accuracy
    • OECD Guidelines for the Testing of Chemicals – Analytical methods

    Typical usage ratio

    • Between 0.005%–0.1% (w/v) solution concentration, fine-tuned according to the required molarity for each specific test kit and substrate sensitivity

    Downstream process integration

    • Added during reagent blending, following substrate and buffer solution preparation, with final filter sterilization and kit assembly

    Final product types

    • Blood analysis colorimetric test kits
    • Urine protein precipitation reagents
    • Biochemical diagnostic panels for clinical laboratories
    • Mercury-specific analytical standards

    3. Catalyst for Fine Organomercury Synthesis

    Chemical synthesis facilities employ this compound as a catalyst or reactant for creating organomercury intermediates, notable in research and specialty chemical development where controlled mercury atom transfer is required. Its solution-phase activity allows for reproducible yields in tightly regulated batch reactors.

    Industry compliance standards

    • ISO 9001:2015 Quality Management for chemical manufacturing
    • Occupational exposure requirements—OSHA standard 29 CFR 1910.1000 (Mercury exposure limits)
    • Responsible Care® guidelines for specialty synthesis operations
    • Local government hazardous chemical handling permits and reporting

    Typical usage ratio

    • Varies from 0.2%–3.0% by mass based on stoichiometry and intended conversion levels, adjusted according to substrate reactivity and reactor scale

    Downstream process integration

    • Fed into glass-lined or stainless-steel reactors during intermediate formation, commonly following substrate charging and pre-mix homogenization, with in-process sampling and post-reaction extraction

    Final product types

    • Organomercury laboratory reference chemicals
    • Pharmaceutical grade intermediates (for R&D use)
    • Specialized reagents for functional group transformations
    • Synthetic precursors for advanced organic synthesis

    4. Microbial Growth Inhibition in Biomedical Research

    Biomedical research suppliers incorporate Mercuric Gluconate into specialized growth media and tissue preservation solutions where targeted inhibition of microbial contaminants is critical, especially when cultivating slow-growing cell types or storing biological specimens for extended periods under variable conditions.

    Industry compliance standards

    • ISO 11133:2014 for microbiology culture media preparation
    • US NIH Guidelines for Research Involving Recombinant DNA Molecules
    • Local Institutional Biosafety Committee (IBC) approvals
    • ISO 17025 laboratory quality management for research reagents

    Typical usage ratio

    • Added at concentrations between 1–25 ppm, adjusted according to specimen type and required preservation timeframe, with validation per research protocol

    Downstream process integration

    • Dosed into autoclaved or sterile-filtered culture medium at the final step prior to aliquoting into vessels for cell seeding or specimen immersion

    Final product types

    • Preservation buffer solutions for tissue samples
    • Preformulated anti-contaminant microbiological media
    • Research-use-only biological storage reagents
    • Specialized microbial growth inhibition supplements

    5. Reference Standard Preparation for Analytical Science

    Producers of laboratory reference materials use Mercuric Gluconate as a stable and traceable source of mercury in the calibration and validation of analytical instruments, including ICP-MS and AAS platforms. The reproducibility of the ingredient ensures high accuracy in certified reference materials and analytical standards distributed to laboratories and inspection agencies.

    Industry compliance standards

    • ISO 17034:2016 for reference material producers
    • ISO/IEC 17025:2017 for testing and calibration laboratories
    • NIST (National Institute of Standards and Technology) traceability documentation
    • Accreditation according to ILAC (International Laboratory Accreditation Cooperation)

    Typical usage ratio

    • Formulated into reference solutions in the range of 10–1000 µg/L, with dilution procedures strictly controlled by batch records and required traceability setpoints

    Downstream process integration

    • Accurately measured and dissolved at the analytical reference solution preparation stage, using precision balances in trace metal cleanrooms

    Final product types

    • Certified mercury reference solutions for atomic absorption or ICP-MS
    • Calibration standards for regulatory laboratories
    • Analytical quality control sample sets for environmental monitoring
    • Custom reference mixtures for instrument validation
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    Certification & Compliance
    More Introduction

    Mercuric Gluconate: Manufacturer’s Perspective on Quality, Applications, and Industry Value

    Understanding Mercuric Gluconate—A Closer Look From Our Production Floor

    We produce mercuric gluconate for customers who demand high-purity reagents with reliable and tested performance. Our work with this compound spans years of hands-on experience and troubleshooting both in synthesis and client collaboration. With the formula C12H22HgO14, mercuric gluconate involves a delicate interplay between glucuronic acid ligands and mercury ions, resulting in a material useful to several specialized sectors. Our typical product features a pale yellow crystalline powder, carefully dried to maintain stability and extended shelf life. We monitor trace elements and moisture content to keep impurity levels strictly within the tight limits that research and industrial users set.

    Refining the Production Process—Consistency Built on Experience

    Mercuric gluconate’s qualities emerge from a precise manufacturing approach, not mere bulk mixing. We’ve learned that slight temperature variations during the gluconic acid neutralization step can sway the final product’s solubility and heavy metal profile. That kind of batch-to-batch drift shows up later in critical applications, so we run repeated pilot trials to fine-tune our controls. Our reactors use high-grade glass-lined surfaces to avoid leaching or cross-contamination. The final product passes through strictly monitored filtration and drying steps. Ash residue, water content, and residual organics each trigger their own set of analytical tests, not just a single certificate. This vigilance pays off with a compound that research teams and production managers rely on.

    Distinctive Features—What Sets Our Mercuric Gluconate Apart

    Manufacturing experience makes all the difference. We often hear about subtle problems with off-color product or samples that clump under moderate humidity. These tend not to show up in the datasheet stage, but they definitely bog down workflow for our customers. By controlling humidity at every drying and packaging step, we can maintain a free-flowing powder without introducing anti-caking agents or unnecessary additives. Solubility behavior, especially in slightly acidic to neutral pH, holds steady due to our attention to reaction purity. We compare our runs not just to technical grade benchmarks but to the higher standards of analytical and research-grade supply. This focused vigilance means our lots do not come with the odor, high chloride content, or variable pH so common with hastily neutralized or minimally washed batches from less attentive sources.

    Applications Driven by Real Needs—Laboratory to Industry

    Our customers know what they’re looking for long before the sample vial arrives. Mercuric gluconate moves through a range of sectors, but fine analytical chemistry and select bacteriological applications stand out. Some customers working in zinc or copper electroplating include mercuric gluconate as a process additive; the stability and redox properties of this mercury salt help fine-tune deposition under controlled conditions. For teams tasked with vaccine production and research reagent synthesis, the materials’ background purity and predictable reactivity hold more weight than its catalog number. Many teams use this compound in protocols requiring distinct ionic mercury species without the trace contamination that free metallic or inorganic-mercury salts commonly introduce.

    We often work with academic labs developing new detection assays or experimental metalloprotein research. They require assurance that the organic ligands in mercuric gluconate will not interfere with sensitive colorimetric endpoints or co-precipitate with other cations during their runs. Our quality assurance programs—a mix of chromatography, mass spectrometry, and direct titration—prove critical for these demanding users. The product’s solubility profile and lack of extraneous mineral ions support reliable and replicable experiments.

    Comparing to Other Mercury Compounds—Not Just Another Mercury Salt

    Mercuric chloride and nitrate attract the most attention among mercury salts, but neither matches mercuric gluconate’s unique profile. Mercuric chloride, while widely available and potent, brings significant toxicity, rapid precipitation in complex matrices, and high corrosive properties that damage equipment over time. This often rules it out for biochemistry work. Mercuric nitrate shares some of these issues, especially with respect to sudden precipitation, non-trivial solubility limits, and nitrate background contamination complicating downstream chemistry.

    By contrast, mercuric gluconate offers a moderately lower toxicity profile due to the sugar acid ligands, forming a more stable coordinated environment for the Hg2+ ion. Its water solubility aligns better with protocols built on buffered media, and the lack of significant secondary ions (such as chlorides or nitrates) removes a notable source of interference. Our pharmaceutical and analytical partners often point out that while potency is important, consistent background purity and reproducible reactivity rates matter far more in critical applications. The sugar acid ligand also introduces extra opportunities for those working at the interface between inorganic and organic chemistry, especially where traditional ligands complicate isolation or interpretation of results.

    Supporting Repeatable Outcomes—Our Approach to Traceability and Transparency

    Raw material sourcing stands near the front of our logistics chain. Gluconic acid starts with select glucose feedstocks, controlled for trace organics and rare-earth impurities. We do not cut corners with the mercury source, instead working with certified high-purity grade metallic mercury fully documented regarding origin and processing. Every drum of mercury is tested for trace contaminants, especially alkali and earth-alkali metals that might slip by less thorough batch control. The neutralization process involves stepwise monitoring of pH and mercury:glucose ratios, avoiding both excessive acidity (that accelerates side formation) and residual alkali (that causes instability months down the line).

    Traceability is more than a buzzword from our end; we maintain run-by-run logs, in-process batch controls, and retain samples for all product leaving our facility. Laboratory analyses at every stage appear in our certificates, but more importantly, we keep the raw chromatograms and original instrument files should questions arise. Clients have asked us to revisit data years after a batch leaves our warehouse—we always answer with actual scan results and real-time records, not generic summary sheets. This commitment helps researchers and QC chemists resolve discrepancies rapidly and confidently.

    Why Stability and Purity Matter More Than Street Price

    Sometimes the market treats all mercury reagents as interchangeable, assuming any sample labeled “merc. gluconate” fits. That attitude leads to unexpected headaches during scale-up or advanced testing. A key challenge we address involves the slow polymerization and slight decomposition of less pure mercuric gluconate stored at uncontrolled temperatures. In our experience, a regular pattern appears: researchers using off-grade material report minor changes in reaction rates, sudden yellow-to-brown color shifts, or unexplained particulate appearing mid-procedure. None of these effects stem from the core chemistry—they point directly to poorly managed manufacturing and packaging.

    We fix these issues through two fronts: thorough drying inside controlled-atmosphere packaging lines, and double-sealing units meant for long-term laboratory storage. In preparation for export, especially to regions with high humidity, we adjust final moisture content and include specialized gas-impermeable packaging. These measures aren’t just belt-and-suspenders—they reflect repeated requests from real-world users who no longer want to gamble with inconsistent reagent behavior.

    Navigating Regulatory and Safety Requirements—From Factory to Bench

    Mercuric gluconate, like other mercury compounds, falls under rigorous safety guidelines. Our facility complies with local and international protocols for production, handling, and transport. That means training our staff on safe weighing, vessel management, and real-time spill control. Packaging staff receive dedicated PPE and periodic health monitoring. We keep detailed disposal logs and operate with the understanding that responsible stewardship doesn’t end at the loading dock; we provide updated handling protocols for all shipments, even when customers don’t request them directly.

    In addition, we monitor regulatory shifts globally, not just in our home market, adjusting labeling and documentation so shipments move safely and predictably through customs. This anticipatory work prevents product detention, delays, or regulatory mismatches that disrupt research or production schedules at the point of delivery.

    Collaborative Problem-Solving—Listening and Responding to User Experience

    We take pride in a culture where feedback from the lab bench or production floor helps shape future product runs. In multiple cases, clients approached us after unexpected pH drift or solubility drops during their critical runs. Our production and QC teams investigated batch logs, ran side-by-side solubility and precipitation tests, and identified the root causes—often previously undetected iron or alumina contamination during early synthetic steps. By refining our pre-filtration and post-treatment, and openly sharing updated analytical files with users, we closed the feedback loop.

    This ongoing engagement means our batches today perform with far tighter reproducibility than industry averages. We encourage open channels for detail reporting, not just formal complaints, so incremental improvements drive collective performance upward for everyone relying on this material.

    Addressing Customer Concerns—Transparency, Documentation, and Real Solutions

    We recognize concerns beyond price and nominal purity—some users value extended shelf life, tighter batch-to-batch color uniformity, or even more granular certificate-of-analysis data. We routinely run long-term stability studies on representative samples, including accelerated aging under heat and humidity, then present the findings to the clients directly. Our certificates include expanded data: heavy metal breakdown, trace organic screener results, and photo documentation of representative sample appearance. Customers sometimes use these records for procurement vetting or in regulatory submissions, and we support that process without hesitation.

    In addition, our technical support extends to advice on storage, recommended working concentrations, and pre-use preparation, especially in large-scale or critical research work. We have distilled a number of trouble-shooting guides based on patterns reported by users—covering everything from optimal dissolution rates to best practices minimizing mercury exposure in various laboratory and industrial environments.

    Depth of Knowledge Gained Over Time—What Experience Adds

    Many details only surface with hands-on production experience. Years ago, we underestimated the importance of early-stage color monitoring during the initial reaction and neutralization. Slight yellowing appeared in a few lots only after drying, but by then, iron and manganese content had already drifted into non-compliant territory. Now, we sample, scan, and adjust at every stage, especially before concentrating solutions for crystallization.

    Lessons learned also shape how we maintain equipment and schedule cleaning routines. Our process engineers track build-up timelines for every reactor and filter, preemptively swapping seals and gaskets before cross-contamination risks emerge. This kind of vigilance doesn’t show up on formal QA documentation, but it preserves reliable output year-round.

    Ongoing Improvements—Staying Ahead of Changing Needs

    Users and regulatory agencies keep standards moving. If a client’s R&D team demands lower arsenic or lead levels, we update our analytical methods and raise internal acceptance standards, then update certificates accordingly. Even as methods evolve, we continually upgrade our lab instrumentation and adopt digital tracking for every piece of analytical data. We see these as investments in our relationship with the scientific and industrial community, not as sunk costs or regulatory hurdles.

    We also monitor emerging literature on mercury compound disposal, environmental fate, and toxicity profiles. As new findings appear, we integrate safer handling and waste management instructions, and adjust our internal spill-response teams’ procedures. This future-proofing approach ensures that our goods not only meet current standards but anticipate tighter controls likely to develop in coming years.

    Conclusion—More Than a Reagent: Building Reliability Into Every Lot

    Producing mercuric gluconate with consistency and transparency means more than combining ingredients and running quick tests. It means understanding every detail from raw materials to end use, listening to unique concerns from end-users, and troubleshooting challenges with both technical know-how and honest communication. We focus on quality and reliability because our customers depend on predictable, well-characterized inputs to deliver their scientific and industrial breakthroughs. With each batch that leaves our plant, we reinforce our commitment to quality, safety, and performance proven by experience—not just words on a label.