| HS Code | 539251 |
| Chemical Name | Mercuric Gluconate |
| Molecular Formula | C12H20HgO14 |
| Molecular Weight | 652.86 g/mol |
| Appearance | White to off-white powder |
| Solubility | Soluble in water |
| Melting Point | Decomposes before melting |
| Cas Number | 18424-25-6 |
| Storage Conditions | Store in a cool, dry place; keep container tightly closed |
| Hazard Classification | Toxic; may be harmful if swallowed, inhaled, or absorbed through skin |
| Usage | Primarily used for research purposes |
As an accredited Mercuric Gluconate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Mercuric Gluconate, 100g, securely sealed in an amber glass bottle with a tamper-evident cap; labeled with hazard warnings. |
| Shipping | Mercuric Gluconate should be shipped in tightly sealed, corrosion-resistant containers, clearly labeled as toxic and hazardous. It must be handled by trained personnel, following all local, national, and international regulations for toxic and environmentally hazardous substances. Protective measures should prevent spillage, exposure, and environmental contamination during transit. |
| Storage | Mercuric gluconate should be stored in tightly closed containers, away from light and moisture, in a cool, dry, and well-ventilated area. It should be kept separate from incompatible substances like strong acids and bases. Proper labeling and secure storage are essential to avoid accidental exposure, and access should be limited to trained personnel due to its toxic and hazardous nature. |
Mercuric Gluconate, produced in strict compliance with international quality frameworks, serves as a specialty reagent in select chemical industry processes. Its applications are concentrated within sectors that require precise trace metal introduction, controlled redox chemistry, or organomercury catalysts, and must observe high-level environmental and occupational controls due to the unique properties and regulatory status of mercury compounds. Below are the main downstream application scenarios where our material provides targeted industrial value across distinct process steps and end-use products.
Leading environmental laboratories apply this compound in wet chemistry methods for trace analysis of inorganic contaminants, especially in the quantification and speciation of mercury by wet digestion, redox titration, or as a calibration standard for atomic absorption and fluorescence detection. Reliable handling and precision are necessary in sample prep labs, as they integrate this input during contaminant analysis in water, soil, and industrial waste samples to meet statutory reporting obligations.
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Several API precursor synthesis routes utilize this material as a mercuration catalyst for controlled conversion steps, such as oxymercuration-demercuration reactions, achieved under closely monitored reaction conditions. Downstream pharmaceutical ingredient facilities select this metal gluconate variant due to its solubility profile and reactivity, especially where stringent material traceability and reaction yield control are required for later cGMP production.
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Within hospital, forensic, and academic pathology units, mercury-based fixatives formed with this compound enable enhanced nuclear and cytoplasmic staining in select diagnostic workflows, notably for microscopy-based assessment of tissues and cell samples. Laboratories deploy this input as part of Bouin’s or Helly’s fixative variants when certain staining results cannot be achieved with formalin alternatives, following specialized SOPs to ensure reagent containment and exposure controls.
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Quality-assured mercury reference electrodes, used across electroanalytical industries and research settings, require controlled production with reagent-grade mercury salts. This compound enters established electrode filling and plating processes, where its solubility and predictable reduction potential facilitate the deposition or inclusion of elemental mercury in electrode assemblies after purification and quality verification.
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Competitive Mercuric Gluconate prices that fit your budget—flexible terms and customized quotes for every order.
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In modern labs and specialty manufacturing processes, accuracy and consistency remain non-negotiable. From our side, every batch of Mercuric Gluconate undergoes scrutiny from raw material selection forward. With this product, the chemistry stays simple: elemental mercury complexed with gluconic acid. Our process follows protocols established through years of hands-on production, constant monitoring, and results checked for purity every step of the way. You can expect Mercuric Gluconate in its best state—white to slightly off-white powder, offering solubility in water that fits both wet chemistry and industrial requirements.
We have refined production to deliver Mercuric Gluconate (often known in scientific entries as Mercury(II) gluconate, with the formula C12H22O14Hg) to specifications supported by decades in chemical synthesis. Each lot leaves our site with mercury content and residual organics verified by trained chemists who inspect the output for trace contaminants, heavy metals, and proper crystalline form. Most users look for small amounts of chloride, sulfate, and related ionic impurities to stay below industry guidance, and that's the benchmark we hit: these levels rarely register in our finished material. Moisture content hovers in a tight range, with stability confirmed against both thermal and humid environments during inventory cycles. Typical appearance avoids clumping and discoloration common to older, mishandled stocks in the market.
What does all this mean for the professional expecting top-notch quality? Reliable results in analytical and synthetic routes. Open that new container—whether receiving a few grams for pilot studies or ordering bulk for ongoing projects—and you get a freely flowing powder, no caking, smooth to the spatula. Traceback links every lot to its process data—batch logs, testing notes, and reagent sources. Manufacturing capacity scales by project, so a kilo-lot gets the same care as an early-stage bottle. We keep the process transparent for those who value oversight and predictable supply.
Our clients and partners often push the boundaries with new protocols, diagnostics, and material synthesis. Mercuric Gluconate, with its unique reactivity profile, finds its place in specialty lab work. Chemists choose it for the solubility and the controlled delivery of mercury ions in aqueous systems, making it ideal for studies where quick complexation is a key requirement. Some medical research groups utilize it in specific pharmaceutical explorations (under strict regulation), mainly for its consistent dissociation in solution. Biochemical labs look at this compound when other mercury sources, like chlorides or oxides, introduce too many interfering side-products or solubility problems. We have seen our material replace less refined, impure alternatives brought in from more fragmented supply chains, simply because a smoother, cleaner run saves time troubleshooting.
Those working in analytical chemistry use Mercuric Gluconate when they need defined and replicable endpoints. In precipitation reactions or trace-level detection, the ability to dissolve Mercury(II) ions into reaction mixtures without extra workups lets users focus more on the result and less on technical snags. Preparative work benefits from reduced background contamination, lowering false positives in environmental assays or bioassay screens. Our feedback loop with clients means we hear about marginal gains and work to maintain those advantages.
Mercury compounds serve a range of applications, but they are not interchangeable. Take Mercuric Chloride, a more widely known cousin: it delivers high reactivity, but also introduces strong halide backgrounds and poses specific concerns regarding toxicity and volatility, especially in less controlled settings. Mercuric Oxide presents handling risks due to dust inhalation and often imparts solubility issues in certain reactions. Mercuric Sulfate, another frequent reference point, brings extra sulfates which can skew biological experiments.
Choosing Mercuric Gluconate comes down to balancing reactivity, solubility, and manageable toxicity for advanced lab use. The gluconate ligand, by stabilizing the mercury in solution, reduces the risk of uncontrolled release and supports slower, more predictable reaction profiles. This simplifies both dosing in chemical protocols and the subsequent cleanup or neutralization steps, particularly when scaling research up to preparative levels. Where some competitors sell more generalized mercury salts that require second-stage purification, our focus remains firmly on fully processed, ready-to-use Mercuric Gluconate. The result: time saved, and studies less prone to unexplained outliers.
Some customers point out the issue of trace contaminants in third-party or repacked products. Bulk resellers might cut corners—'stretching' the compound with less-pure excipients, storing it in substandard conditions, or letting containers remain open to humidity swings during long transits. As a manufacturer, this is preventable by simply never letting the material leave the controlled line until final QA checks are written into the batch data. Our assurance comes not from flashy certifications, but direct stewardship by the people who stand behind each shipment.
Users often ask about the right method for handling and applying Mercuric Gluconate. Based on observation over many years, most issues arise from mismatches between lab protocols and the compound’s particular characteristics. Solubility in water looks straightforward, but improper dispersion—tossing a lump straight into vigorous stirring—can lead to undissolved fragments and inconsistent results. The better approach is to pre-wet small portions and slowly introduce them with gentle swirling, which avoids localized overdosing and creates a truly uniform solution. Temperature should remain ambient; rapid heating accelerates breakdown and, in worst cases, generates unwanted byproducts.
Packing fresh Mercuric Gluconate under nitrogen or in double-sealed pouches pays dividends in long-term storage. Some industrial settings attempt to store all chemicals in the same bulk area, but this compound shows its best shelf life when humidity and light exposure remain low. Simple measures, like desiccant packs and opaque containers, make a difference—something learned not from textbooks but from hundreds of feedback calls about 'mystery' degradation.
Equipment cleaning deserves equal attention. Mercury compounds do not just linger on benchtops, they can interact with glassware or plastic, leading to cumulative contamination if not thoroughly removed. Overlooking this step risks both future experiment fidelity and operator safety. On the factory floor, we dedicate separate lines for mercury chemistry, separating it from all other workflows. This policy, proven over several regulatory audits, simply reflects good sense—what is managed well here translates to cleaner lab results outside.
We have seen research environments evolve, with stricter procurement rules and rising scrutiny over supply provenance. Legislation in most jurisdictions demands clear tracking of all mercury compounds, pushing both buyers and sellers to document every gram. Reliability in delivery—especially for academic or pharmaceutical clients—now means more than just correct weights and labels. It means demonstrating a closed loop from the raw elements onward, providing test data, responding to new regulatory forms, and standing ready for back-and-forth with compliance teams.
Questions often arise about replacing or restricting mercury in certain sectors due to rising environmental policies. Some users limit compound use to specialized diagnostics, choosing gluconate over more volatile or hazardous salts. We track every material movement on secure, audit-verified systems, matching both local and international laws. It's not just about ticking off paperwork; it's about trust—building repeat partnerships with those who know any deviation can set back years of research.
Years of firsthand work with chemists and process engineers tell us there is no substitute for detailed process understanding. Off-the-shelf supply from third parties can cut price, but rarely keeps up on traceability or lot-to-lot consistency. Routine feedback shows minor impurities, erratic dissolving times, or off-appearance powders still plague some materials on the market, especially those that have sat in warehouses or changed hands too many times. Without direct manufacturing oversight, technical issues multiply. By keeping the entire workflow in-house—from raw material vetting, through lab-scale pilotization, to full-scale batches—unexpected variability gets eliminated before it hits your bench.
For those working in multi-site or regulated facilities, detailed Certificates of Analysis do not tell the whole story. We regularly discuss with partners how process drift can affect experimental reproducibility—issues as small as ambient temperature during synthesis, or packaging quirks during humid months, show up in unexpected test results. We provide not just documentation, but also historical production insights, sharing process notes when new requirements surface. This level of openness comes from dealing directly with actual users, not resellers or aggregation platforms.
The presence of mercury in any product calls for careful attention to health and environment. Over the past decade, improvements in containment and waste management cut accidental releases at every stage. Waste streams now get neutralized in controlled reactors, reducing risk of operator exposure and minimizing what leaves the site. We keep these steps front-and-center in manufacturing, not as a cosmetic afterthought, but as a duty to long-term partnerships and regulatory stewardship. Regular training for everyone involved—line operators, QC chemists, and shipment staff—makes this a daily priority.
Clients also ask about lifecycle and environmental obligations. As global mercury controls grow tighter—especially under Minamata and related conventions—direct sourcing from reputable manufacturers has become central for those maintaining compliance. Materials leaving our factory travel in documented, sealed containers, with disclosed disposal procedures and downstream waste tracking. We provide end-users with information on neutralization methods and responsible recycling for unused portions—translating abstract policy into real, workable lab guidelines. This not only satisfies external audits but makes project risk assessment easier for research groups with public or private funding scrutiny.
Manufacturing chemical products at any scale requires an ear for what works (and what does not) in the real world. Experience shows that traditional instruction sheets fall short when unique process quirks show up—unexpected solubility changes, shelf-life behavior shifts, or cross-contamination from unrelated workflow steps. We rely on regular check-ins with users, gathering problems encountered and unexpected experimental results. These stories drive changes in lot handling, timeline flexibility, and even small tweaks in packaging or batch granularity. Research settings change quickly; we adapt by keeping direct channels open, refining processes as soon as patterns appear in field feedback.
For longstanding clients, especially those running complex projects or multi-center studies, we offer customized support. Some request minor modifications—grain size, packaging sizes, advance notification on lot changes—so we organize production runs to match those specifics. Our willingness to refine or segment batches sets us apart from faceless wholesaling operations, giving project leads the confidence that their workflows will not get derailed by supply inconsistency or unexpected substitutions.
Chemical research looks very different than a decade ago, and so do the expectations for compound quality. As labs move toward smarter documentation, electronic lab notebooks, and integrated compliance checks, there’s less room for error in base materials. Direct-from-manufacturer delivery of Mercuric Gluconate helps eliminate guesswork. Many users now demand confirmation of both chemical and process origins—not just a lab report but a transparent story behind each vial. Having produced and shipped this material for years, we find the best advances come not from radical changes, but from incremental, practically-informed adjustments to every stage.
Under increased scrutiny, peer-reviewed publications and regulatory filings often request direct references to the sourcing and batch rationale of key compounds used. Anomalies from untraceable material mean more work, retesting, and lost momentum. Our mission: keeping quality, process reliability, and communication ahead of the shifting curve—putting trusted material into the hands of scientists, clinicians, and engineers who make the big discoveries possible.
Buying from a source with real manufacturing experience brings more than just material. It means fewer questions at audit, reduced troubleshooting, and technical partnership through every stage of the sourcing relationship. For users needing reliable Mercuric Gluconate—no matter the amount, project scope, or complexity—our experience in direct manufacture matters. We bring practical process control, deep product insight, transparent communication, and an eye always turned toward future needs. With every shipment, we deliver more than a chemical: we deliver the benefits of doing it right, from raw material clearing all the way to your workspace.