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Diphenylmercury

    • Product Name Diphenylmercury
    • Alias Mercury,diphenyl-
    • Einecs 204-330-5
    • 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

    821713

    chemical_name Diphenylmercury
    chemical_formula C12H10Hg
    molar_mass 354.80 g/mol
    appearance White crystalline solid
    melting_point 122-124 °C
    solubility_in_water Insoluble
    density 3.28 g/cm³
    CAS_number 587-85-9
    toxicity Highly toxic
    structure Hg(C6H5)2
    odor Odorless

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

    Packing & Storage
    Packing Diphenylmercury is supplied in a tightly sealed amber glass bottle, 25 grams, with clear hazard labeling and protective secondary containment.
    Shipping Diphenylmercury should be shipped in tightly sealed, chemically resistant containers, clearly labeled as toxic and environmentally hazardous. It must be packaged to prevent leaks, following all relevant hazardous materials regulations. Transport is typically restricted to specialized carriers, with documentation ensuring compliance with international shipping and safety standards for highly toxic chemicals.
    Storage Diphenylmercury should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from sources of ignition, heat, and direct sunlight. Keep it separate from acids, oxidizing agents, and incompatible materials. The storage area should be secure, labeled, and equipped to prevent environmental contamination, as diphenylmercury is highly toxic and poses significant health hazards.
    Application of Diphenylmercury

    Applications of Diphenylmercury in Industrial Manufacturing

    Diphenylmercury finds specialized application in several advanced industrial sectors due to its distinct chemical properties. As a manufacturer focused on high-purity diphenylmercury production, we support further transformation of this material by supplying batches that meet strict analytical requirements for controlled environments. The following scenarios highlight how downstream industries integrate diphenylmercury within precise processing workflows under regulated conditions.

    1. Reference Material Preparation for Analytical Instrument Calibration

    Accredited laboratories and standards organizations incorporate diphenylmercury as a primary reference material for spectrophotometric calibration, especially in mercury speciation studies. Its stability and defined chemical structure help ensure traceability for mercury quantification methods in quality assurance programs across environmental, clinical, and pharmaceutical facilities. Handling and use demand strict adherence to regulatory and laboratory safety protocols given the compound’s toxicity.

    Industry compliance standards

    • ISO/IEC 17025 (Testing and Calibration Laboratories)
    • ISO Guide 34/ISO 17034 (Reference Material Producers)
    • EPA SW-846 Method 7473 (Mercury Analysis in Solids)
    • OHSAS 18001/ISO 45001 (Occupational Health and Safety Management)

    Typical usage ratio

    • Concentration typically prepared at 1–100 ppm in organic solvents, depending on the calibration range needed for target instruments.

    Downstream process integration

    • Dissolve in high-purity organic solvents under fume hood with controlled temperature conditions, carefully diluted to achieve the target calibration standard for analytical batches.

    Final product types

    • Certified reference materials (CRM) for instrument calibration
    • Calibration standards for spectroscopic and chromatographic instruments
    • Quality control standards for laboratory proficiency testing

    2. Synthesis Intermediate in Advanced Organomercury Chemistry

    R&D centers and chemical synthesis facilities select diphenylmercury as a precursor for custom organomercury compounds, essential in the preparation of specific coordination complexes and reactivity studies. Strict process controls manage reagent stoichiometry and environmental containment, as production often proceeds at small scale within dedicated synthesis suites equipped for mercury handling.

    Industry compliance standards

    • Good Laboratory Practice (GLP) compliance (21 CFR Part 58, OECD Principles)
    • REACH Registration for Mercury Compounds (EU)
    • NIOSH/OSHA Mercury Workplace Guidelines
    • Chemical Hazard Communication Standards (GHS/CLP)

    Typical usage ratio

    • 0.01–0.2 molar equivalents, tailored according to target product yield and reaction stoichiometry. Chemist adjusts formulation based on desired degree of substitution or incorporation into final complex.

    Downstream process integration

    • Introduced during organometallic synthesis in inert atmosphere gloveboxes or Schlenk lines, typically at batch or semi-batch scale, followed by controlled quenching and isolation of the intended organomercury derivative.

    Final product types

    • Organomercury intermediates for academic research
    • Catalyst prototypes for specialty synthesis
    • Building blocks for photochemical compound libraries

    3. Calibration Source for Mercury Vapor Generation Systems

    Manufacturers of mercury vapor detection systems utilize diphenylmercury to generate controlled and reproducible atmospheres inside calibration setups. Its physicochemical profile, combined with accurate mass measurement, allows precise tuning of vapor-phase mercury in laboratory test rigs used for detector validation and selection. Use in this context requires containment engineering and routine monitoring of airborne concentrations.

    Industry compliance standards

    • US EPA Method 301 (Field Validation of Pollution Measurement Methods)
    • ASTM D6722 (Determination of Gaseous Elemental Mercury)
    • ANSI Z9.2 (Laboratory Ventilation)
    • OSHA 29 CFR 1910.1000 (Air Contaminants) — Mercury Exposure Limits

    Typical usage ratio

    • Introduced in amounts equivalent to 0.1–10 mg elemental mercury per vapor stream, with dosing adjusted based on flow rate and desired trace-level calibration point for analytical equipment.

    Downstream process integration

    • Added to sealed calibration cells interfaced with mercury vapor generators; heating protocols drive sublimation to precise vapor-phase concentrations monitored in real time. Frequent cleaning and recertification prevent system contamination.

    Final product types

    • Vapor-phase calibration kits for mercury analysis instruments
    • Detector performance validation assemblies
    • QA/QC reference modules for environmental sampling devices

    4. Academic and Scientific Standard for Mercury Chemistry Research

    University research groups and governmental laboratories rely on diphenylmercury as a control compound for toxicology studies, photochemical mechanism investigations, and in benchmarking analytical instrument response. Due to its well-documented chemical characteristics, it often serves as a reference point in peer-reviewed studies, provided researchers comply with all laboratory mercury protocols and conduct work in designated containment zones.

    Industry compliance standards

    • Institutional Chemical Hygiene Plans (OSHA Lab Standard 29 CFR 1910.1450)
    • Local Environmental and Safety Management Systems (ISO 14001)
    • Transport and Storage Regulation as per UN 2025 (Mercury Compounds)
    • Research Ethics Board material handling approvals

    Typical usage ratio

    • Varies between 10 μg–10 mg per reaction or assay, scaled according to experimental setup and detection sensitivity of analytical platforms.

    Downstream process integration

    • Measured directly into reaction vessels, extraction units, or chromatographic sample preparations, followed by careful containment and disposal as hazardous waste under institutional protocols.

    Final product types

    • Analytical standards for academic studies
    • Benchmark reagents for publication-grade experiments
    • Reference points in toxicology and photolytic mercury release models
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    Certification & Compliance
    More Introduction

    Diphenylmercury: Manufacturing Perspective on a Unique Organomercury Compound

    Introduction to Diphenylmercury in Modern Chemical Manufacturing

    Diphenylmercury stands out in the catalog of organometallic compounds. Over the decades in this business, we have watched demand for certain materials ebb and flow, but this substance remains a staple in labs where precision and clarity in mercury chemistry are non-negotiable. We know every batch we ship is bound for applications that truly rely on a material’s purity and well-documented production record.

    Our product, delivered as C12H10Hg, consistently meets high standards set by major research institutions. Chemists depend on trustworthy Diphenylmercury to investigate reaction mechanisms, calibrate analytical instruments, and develop new reagents based on aryl-mercury chemistry. We pay close attention to how the compound’s structure influences its properties, and operations in our facility are tuned to keep impurities far from the finished product.

    Quality Assurance Every Step of the Way

    Our production process begins with carefully sourced raw materials, monitored frequently for trace contaminants. It takes robust process engineering to keep organomercury reactions under control and ensure every gram comes out as unadulterated Diphenylmercury. These days, regulatory frameworks and growing demands on documentation have raised the bar, so traceability now forms part of every certificate we issue. Our samples regularly undergo third-party analysis, so buyers receive detailed data rather than generic reassurances.

    From years in the lab and on the plant floor, we know Diphenylmercury has a reputation for being less volatile than many organomercury alternatives. Handling procedures reflect its toxicity, and for us, safe packaging is more than compliance. Our product’s shelf life, crystalline stability, and low volatility appeal to those seeking maximum control over hazardous material inventories. Many organomercury compounds degrade or volatilize quickly; by contrast, Diphenylmercury’s robust aromatic bonds discourage breakdown even in long-term storage.

    Differentiation from Other Mercury Compounds

    Chemists familiar with Dimethylmercury, Phenylmercuric Acetate, and even simple mercuric salts often ask about the differences. Having synthesized and purified many variants over the years, we have come to appreciate Diphenylmercury’s uniquely balanced profile. Dimethylmercury’s volatility poses breathtaking risks, and its boiling point creates workplace hazards that demand extraordinary precautions. Diphenylmercury crystallizes as a stable solid, reducing exposure risk and making lab management somewhat friendlier.

    Unlike Phenylmercuric Acetate, which can disrupt biological processes and is notorious for environmental persistence, Diphenylmercury’s high molecular weight and crystalline form keep it less mobile under standard conditions. Its synthesis relies heavily on rigorous stoichiometric control so stray arylated byproducts don’t cloud analytical results. By focusing on precise process control and crystal purification, we supply a compound that stays free of residual mercury salts and partially arylated side-products. This clarity pays off for those running precise mechanistic studies or calibrating sensitive analytical platforms.

    Key Uses in Research and Industry

    Laboratory researchers often turn to Diphenylmercury as a reference material in organometallic studies. The arylmercury bond resists hydrolysis and oxidation better than many methyl or ethyl analogs. Colleagues in the academic world have shared how reliable replicability in synthesis hinges on reagent predictability. Week after week we hear about how our material’s physical and chemical consistency keeps instrument calibration tasks straightforward. A single run can extend months without unplanned maintenance simply because contaminant-free Diphenylmercury behaves accurately as expected.

    Some industrial clients explore its potential as a starting point for advanced mercury reagents. Its reactivity gives downstream chemists room to build custom ligands or probes with challenging functional group tolerance. Each shipment benefits from our understanding of batch-dependent subtleties—sometimes a nanoscopic trace impurity leads to downstream fouling or selectivity problems, so our work prioritizes reproducibility. We receive detailed questions about trace chloride content, or whether isomeric impurities might distort NMR spectra. Our answer always rests on bench-tested batches and full certificates of analysis, never on supplier guesswork.

    Operational Safety and Environmental Accountability

    Handling mercury compounds like Diphenylmercury brings a heavy responsibility. We design and maintain our processing areas to minimize exposure and environmental risk. Over the years, we’ve upgraded air handling, installed on-demand scrubbers, and trained teams in best-practices. We refuse to cut corners on environmental stewardship. Our process hinges on closed-system transfers and robust containment to eliminate off-gassing, splash, or cross-contamination.

    Disposal represents another layer of responsibility. Our waste streams are tracked by batch and neutralized under permitted protocols before they ever leave our site. Regulators have raised scrutiny on any operation that handles organomercurials, so we treat our environmental obligations as nonnegotiable. We routinely examine our own compliance records alongside evolving European and North American regulations to ensure every shipment leaves us with a full paper trail.

    Supporting Innovation Through Reliable Materials

    Innovation in mercury chemistry has changed a lot, but some fundamentals don’t fade. Stability, purity, and reproducibility form the backbone of good research. Our Diphenylmercury enables chemists to refine methodologies, build challenging molecular scaffolds, and develop processes that depend on mercury’s unique properties. One of our long-term partners described how a subtle change in crystal habit affected their reaction yields. By working collaboratively with their team, we adapted our recrystallization protocol and improved particle size distribution batch-to-batch. These partnerships with users on the ground shape how we refine our process controls and drive each improvement.

    Analytical teams benefit from our work as well, especially those developing calibration standards for advanced spectroscopic equipment. Diphenylmercury’s sharp spectral features and stability mean far fewer questions on instrument drift or baseline anomalies. Technicians working overtime to track trace impurities in industrial effluent know that the accuracy of their readings depends on sound standardization—our Diphenylmercury supports these efforts by offering a clean, stable signal that holds up across repeated preparations.

    Why Source Directly from the Manufacturer?

    Experience teaches that direct sourcing avoids surprises. Many clients was burnt by distributors that traded off traceability for speed or hand-waved questions about storage conditions. All our Diphenylmercury moves from synthesis to packaging under the same roof, tracked every step of the way. This continuity gives clients confidence that every vial matches exactly with last month’s order, and that batch records offer clear answers on everything from purity to residual solvents.

    Direct engagement with manufacturers also means you can request documentation or initiate custom purification runs with a quick turnaround. We respond to requests for custom batch sizes, tailored packaging, and even alternative shipping arrangements for emergent research projects. Collaboration with seasoned scientists forces us to rethink process bottlenecks and sometimes opens new avenues for downstream application. Through these relationships, our understanding of each client’s end goals helps us anticipate requirements rather than simply react to them.

    Insights from Years of Manufacturing Diphenylmercury

    Producing substantial volumes of Diphenylmercury requires technical skill and deep institutional memory. Scaling from the gram scale to bulk production teaches valuable lessons—heat control, stoichiometric precision, and cross-contamination avoidance can make or break a batch. Plants that cut corners suffer higher reject rates and trace issues that return as customer complaints. Meticulous cleaning and calibration routines interrupt workflow but prevent fouling or residue buildup in sensitive reactor lines.

    We have evolved our purification techniques through hands-on troubleshooting, learning which filtration media or crystallization solvents leave problematic residues. Small operator errors—like a poorly sealed flask or a pipetting misstep—can introduce disorder into a batch, so we emphasize ongoing skills training. These investments pay off through stable yields and near-zero batch rejects year after year.

    Customer Collaboration and Application Feedback

    Close relationships with customers put us in a position to refine quality control to better suit real-world usage. Sometimes a university group contacts us after noticing minute discrepancies between batch spectra, traceable to a shift in the cooling rate during crystallization. We take these observations as opportunities to tighten our manufacturing window. If a pharmaceutical researcher needs ultra-fine particle distribution or extra low chloride impurity for radioisotope labeling, we walk the process together and supply trial material before committing to full-scale modifications.

    Industry partnerships also push us to rethink packaging, labeling, and shipping protocols. We have responded to needs for tamper-evident closures, inert-atmosphere packaging, and private-labeling requests. Getting this substance into researchers’ hands safely and conveniently takes careful logistical planning—every shipment reflects lessons learned through hundreds of deliveries.

    Addressing Regulatory and Sustainability Challenges

    Legislation governing organomercury compounds is stringent and evolving. We don’t see compliance as a burden but as a chance to demonstrate credibility and stewardship. Each market has its own approach to permitting and reporting, and we keep current with registration requirements in regions that matter most to our customers. Our regulatory staff undergo routine training and take an active role in industry roundtables. Input from these venues often drives the adoption of new analytical methods or documentation standards, keeping our operations both legal and competitive.

    Interest in environmental sustainability is rising, and compounds containing mercury are rightly scrutinized. We support research into safer alternatives and improved containment by sharing anonymized process data or offering samples for degradation pathway studies. Our internal R&D department is tasked with finding recovery and recycling pathways for mercury used in process development. Every usable fraction we recover reduces our reliance on fresh feedstock, shrinking both ecological footprint and import costs.

    Why Consistent Quality Matters in Mercury Chemistry

    Mercury chemistry can suffer from low reproducibility unless reagents remain consistent between batches. Familiarity with the problems arising from batch-to-batch inconsistency drives our team to keep a tight rein on every synthesis variable. Impurities at trace levels—not just in mercury but in solvents and byproducts—can shift reaction outcomes. If an organic reaction produces an outlier NMR shift or unexplained yield dip, often the answer traces back to inconsistent starting material. In our experience, reproducible synthesis, uniform crystal habit, and unvarying purity make bigger differences than dramatic process overhauls.

    For Diphenylmercury, researchers expect not just a static product but a living record of quality improvement. We regularly publish changes in purification protocol and invite customer feedback to keep our specifications relevant, never just historical. By giving clients open channels to critique or comment, we have built a product line that fits the reality of contemporary organometallic research, not just the textbook mold.

    Pushing Boundaries with Continuous Improvement

    In a niche field like mercury chemistry, advances often come from small gains in reliability and safety. Every reformulation, procedural tweak, or documentation enhancement improves customer experience down the line. Our investment in analytical chemistry, quality systems, and personnel shows in the low rate of complaints and the high percentage of return orders. We have learned that product development never truly finishes—each application teaches new lessons, and every setback refines future batches.

    By staying close to both the academic and industrial camps, we keep our Diphenylmercury at the intersection of innovation and tradition. Whether supporting a new analytical platform or helping an experienced team optimize legacy syntheses, our job is to supply not just a chemical but a guarantee of performance, accountability, and partnership.

    Looking Forward: Meeting the Evolving Needs of Mercury Chemistry

    Demand for reliable Diphenylmercury is a reminder that science moves forward only as fast as its foundations. While ever-tightening regulations, logistical complexity, and customer expectations raise the stakes on accuracy, our operations concentrate on adding value over simply producing material. By focusing on total quality—from synthesis to shipping—we ensure that each gram reaching a lab, whether for fundamental research or industrial development, supports rigorous, ambitious chemistry. As new fields emerge, this commitment to reliability, safety, and partnership will continue guiding every Diphenylmercury batch we create.