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Cis-Dichlorobis(Diethylsulfide)Platinum(II)

    • Product Name Cis-Dichlorobis(Diethylsulfide)Platinum(II)
    • Alias cis-Diethylsulfideplatinum(II) chloride
    • Einecs 240-809-2
    • 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

    467711

    Chemical Name Cis-Dichlorobis(Diethylsulfide)Platinum(II)
    Formula C8H20Cl2PtS2
    Appearance Yellow crystalline solid
    Melting Point 150-155°C (decomposes)
    Solubility Slightly soluble in water; soluble in organic solvents like chloroform
    Cas Number 15604-36-1
    Purity Typically >98%
    Platinum Content Approximately 42%
    Storage Conditions Store in a cool, dry place in a tightly closed container away from light
    Inchi InChI=1S/2C4H10S.2ClH.Pt/c2*1-3-5-4-2;;;/h2*3-4H2,1-2H3;2*1H;/q;;;;+2/p-2
    Ec Number 239-615-5

    As an accredited Cis-Dichlorobis(Diethylsulfide)Platinum(II) factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 250 mg of Cis-Dichlorobis(Diethylsulfide)Platinum(II) is supplied in a sealed amber glass vial with a tamper-evident cap.
    Shipping Cis-Dichlorobis(Diethylsulfide)Platinum(II) is shipped in tightly sealed, chemical-resistant containers to prevent moisture and air exposure. The package is clearly labeled as hazardous, following relevant regulations. Transport occurs under controlled temperature, typically at ambient conditions, with appropriate documentation and handling precautions to ensure safety and integrity during transit.
    Storage Cis-Dichlorobis(Diethylsulfide)Platinum(II) should be stored in a tightly sealed container, protected from light and moisture, in a cool, dry, and well-ventilated area. Keep away from incompatible substances such as strong oxidizers. Handle under an inert atmosphere, such as nitrogen or argon, if possible. Store at room temperature and follow all relevant chemical safety protocols and regulations.
    Application of Cis-Dichlorobis(Diethylsulfide)Platinum(II)

    Applications of Cis-Dichlorobis(Diethylsulfide)Platinum(II) in Industrial Manufacturing

    Cis-Dichlorobis(Diethylsulfide)Platinum(II) serves as a specialized compound in platinum chemistry, supporting advanced synthesis, catalyst systems, and electronic material development. As an original manufacturer, we supply this raw material to sectors that require strict compliance and controlled performance. Below we specify key industrial applications with detailed compliance, ratio guidance, process positions, and typical end-use products.

    1. Homogeneous Catalysts for Hydrosilylation Processes

    Hydrosilylation of olefins, carbonyls, and alkynes uses well-defined platinum complexes as active catalysts. Manufacturers rely on this platinum compound for precise catalytic activity, especially for addition of Si–H bonds to unsaturated substrates in the synthesis of organosilicon intermediates. In this sector, product purity and predictable platinum loading affect both process efficiency and final material specifications.

    Industry compliance standards

    • REACH Regulation (EC) No 1907/2006
    • ISO 9001:2015 Quality Management Systems
    • Technical specifications for silicone manufacturers (Wacker, Dow Chemical internal guidelines)
    • Responsible Care Global Charter (ICCA)

    Typical usage ratio

    • 0.5–10 ppm platinum by weight relative to substrate
    • Adjusted based on required conversion rate and target product quality

    Downstream process integration

    • Pretreatment of the platinum complex in inert solvent before addition to reactor
    • Continuous or batchwise addition during main hydrosilylation stage
    • Spent catalyst handling as per internal plant EHS procedures

    Final product types

    • Organosilicon resins (polysiloxanes, silane coupling agents)
    • Silicone sealants and adhesives
    • Functionalized silicone fluids for electronic encapsulation

    2. Intermediate Source for Pharmaceutical Platinum Compounds

    Several platinum-based pharmaceuticals originate from advanced synthesis routes requiring stable and pure Pt(II) intermediates. Our material is adopted by fine chemical processors manufacturing APIs such as cisplatin analogues and investigational platinum drugs. Strict documentation and traceability ensure compliance throughout the entire synthesis cycle.

    Industry compliance standards

    • European Pharmacopoeia (Ph. Eur.) monographs as applicable
    • USP General Chapter <232> Elemental Impurities—Limits
    • Good Manufacturing Practice (GMP) EU Guidelines Part II
    • ICH Q3D Guideline for Elemental Impurities

    Typical usage ratio

    • Varies from 1–5% molar equivalent relative to main reactant in API precursor synthesis
    • Adjustment based on target yield and downstream process scale

    Downstream process integration

    • Added as precursor salt in organometallic conversion stages
    • Strictly controlled dissolution and filtration before further transformation
    • Sampling and Pt content verification by ICP-MS or AAS

    Final product types

    • Active pharmaceutical ingredient bulk (cisplatin family and analogues)
    • Research chemicals for clinical trial supply
    • Injectable final drug products (subject to downstream formulation)

    3. Precursor for Electronic-Grade Platinum Thin Films

    Electronic device manufacturers demand highly pure platinum sources for sputtering targets, CVD precursors, or surface modification. The compound allows for controlled decomposition and reliable deposition in thin-film production. Our production records supply chain traceability and consistent physical properties for integration into advanced assembly lines.

    Industry compliance standards

    • RoHS Directive 2011/65/EU
    • IEC 60747 Semiconductor Devices—General rules
    • SEMATECH guidelines for precursor purity (electronics industry)
    • ISO 14001:2015 Environmental Management Systems (where applicable)

    Typical usage ratio

    • 0.1–5 mg per cm² of substrate during film growth
    • Optimization depends on desired film thickness and device spec

    Downstream process integration

    • Dissolved or vaporized for chemical vapor deposition (CVD) or inkjet application
    • Precursor purity checked by trace elemental analysis
    • Thermal decomposition or plasma processing in cleanroom environment

    Final product types

    • Platinum microelectrodes and contact pads in MEMS
    • Platinum-based thin film resistors
    • Chip-scale sensors (e.g., temperature, gas)

    4. Catalyst Precursor in Petrochemical Hydrogenation

    Selective hydrogenation steps in fine chemical and petrochemical refining processes require tailored platinum catalyst precursors, often supplied in soluble organometallic form. Our product meets refiner and specialty chemical producer needs for targeted isomerization, aromatics hydrogenation, and alkene purification. Performance is validated batch-wise for process yield, reproducibility, and regulatory alignment.

    Industry compliance standards

    • API 682 Sealing Systems for Petroleum Industries
    • ISO 10438 Lubrication, Shaft-Sealing, and Control-Oil Systems
    • UOP 915 for Catalyst Testing and Evaluation
    • Local emissions control regulations (e.g., U.S. EPA MACT)

    Typical usage ratio

    • Platinum loading typically 0.05–0.2 wt% relative to support material
    • Adjusted according to reactor design and feed characteristics

    Downstream process integration

    • Added to impregnation solution for supported catalyst preparation
    • Activated under inert gas or hydrogen at elevated temperature
    • Incorporated into fixed-bed, trickle-bed, or slurry reactors as finished catalyst

    Final product types

    • Refined hydrocarbons with reduced impurities
    • High-purity paraffins and olefins for polymer manufacturing
    • Aromatic hydrocarbon intermediates for fine chemical synthesis

    5. Lab-Scale Synthesis of Platinum Nanoparticles

    Academic and industrial research facilities employ platinum(II) precursors for colloidal nanoparticle synthesis. This application focuses on developing catalysts, sensors, or new functional materials at bench scale. Proper material documentation, small-quantity packaging, and supply chain transparency are essential for R&D traceability.

    Industry compliance standards

    • GLP—Good Laboratory Practice (OECD Principles)
    • Institutional laboratory chemical approval (R&D protocols)
    • Material Safety Data Sheet (MSDS) as per GHS requirements
    • NIH guidelines for nanomaterial handling (for funded research)

    Typical usage ratio

    • Typically 0.01–1 mmol per experiment, depending on target nanoparticle size and batch scale
    • Further modification based on support matrix and reducing agent selection

    Downstream process integration

    • Dissolved in aqueous or organic media as initial Pt(II) source
    • Reduced by chemical, electrochemical, or photochemical methods
    • Purified by dialysis, precipitation, or chromatography prior to testing

    Final product types

    • Pt nanoparticle catalysts for laboratory research
    • Prototype materials for electrocatalysis
    • Model systems for structure–activity studies
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    More Introduction

    Cis-Dichlorobis(Diethylsulfide)Platinum(II): A Closer Look from the Factory Floor

    Understanding Our Journey with Cis-Dichlorobis(Diethylsulfide)Platinum(II)

    As a longstanding chemical manufacturer, the path from raw materials to a finished coordination complex like Cis-Dichlorobis(Diethylsulfide)Platinum(II) demands careful attention, dedication, and genuine curiosity. Over the years, our team has gained a practical understanding of what makes this platinum compound both unique and valuable to specific industries, notably research, catalysis, and materials development.

    Product Overview and Production Insight

    Cis-Dichlorobis(Diethylsulfide)Platinum(II), recognized by its molecular formula PtCl2(C4H10S)2, stands out among platinum complexes for its chemical stability and ease of handling in laboratory and pilot plant environments. Our batches of this compound are synthesized using high-purity platinum sponge, carefully oxidized and reacted under controlled conditions. This method yields a solid complex, usually appearing as a pale yellow crystalline powder, fine enough to dissolve readily in most common non-polar organic solvents, which is critical for its downstream uses.

    We monitor every synthesis for trace contaminants, as platinum chemistry can get easily derailed by uncontrolled metallic or organosulfur impurities. After years of scale-up and fine-tuning, our standard approach includes repeated recrystallization and staged solvent stripping. Each lot's composition is confirmed with spectroscopic and elemental analysis, so end users receive predictable performance batch after batch. Our facilities incorporate dedicated reaction lines and exhaust treatment systems to eliminate cross-contamination and ensure operator safety when working with volatile sulfur ligands.

    Our technical team works with kilogram-scale reactors fit for advanced coordination chemistry. Temperature and humidity both influence the reaction yield and the physical characteristics of the product. High humidity, for example, tends to affect crystal morphology and can complicate handling on the processing line. This is why we always operate under tightly controlled climate conditions and store our product in sealed, inert containers.

    Model and Specification Focus

    Market needs pushed us to standardize our production for the research and specialty catalyst sectors. Each batch comes as Cis-Dichlorobis(Diethylsulfide)Platinum(II) with a platinum content of around 34.5 percent by weight, and chloride content above 14 percent, matching the expected theoretical values for this particular geometry. Many buyers look for freedom from platinum black (Pt(0)) or unusual byproducts, which not only cloud the yellow color but can also poison catalytic systems during deployment. Our in-house analysts run both elemental and spectral purity checks before packaging anything for shipment.

    We noticed a growing interest among research groups in the electronic and solid-state areas. In those cases, requests often revolve around reproducibility and the ligand environment around the platinum core. The diethylsulfide ligands, offering bulk and electron-donating properties, help stabilize the platinum(II) center in a cis-coordination geometry. This structural consistency supports studies in bonding, reactivity, and catalysis far more reliably than some older grades, where the ligand sphere could be irregular or undefined.

    Applications We See Most Often

    Our customers mostly use Cis-Dichlorobis(Diethylsulfide)Platinum(II) as a precursor for platinum-based catalytic complexes. In practice, chemists employ it to introduce platinum(II) centers under mild conditions, with the diethylsulfide ligands displaced as needed in the presence of stronger chelating or donor ligands. This flexibility makes the compound a favorite starting material for synthesizing new coordination complexes, especially since the cis geometry remains stable right up until ligand exchange.

    In some cases, our clients explore using this complex directly in homogeneous catalysis, often in carbon-carbon bond-forming or hydrogen transfer reactions. Industrial users tend to require specific documentation about purity and structural isomerism, as even minor trans contaminants alter reactivity profiles. Our factory’s monitoring setup rarely picks up more than a fraction of a percent of the trans isomer under normal conditions, minimizing such concerns.

    Electronics makers occasionally request this compound for thin film or nanomaterial synthesis. This usually involves thermally decomposing Cis-Dichlorobis(Diethylsulfide)Platinum(II) under controlled vacuum or in the presence of weak reducing agents to deposit metallic platinum or create doped materials for sensor technology. In each case, our technical staff fields plenty of queries about batch consistency, decomposition temperature, and residual ligand levels—points that only get addressed through rigorous manufacturing routines and transparent documentation.

    Distinguishing Factors: What Sets This Compound Apart?

    Hard-earned practical experience shows clear differences between Cis-Dichlorobis(Diethylsulfide)Platinum(II) and alternative platinum precursors. Some manufacturers rely on chloroplatinic acid or PtCl2, which lack defined ligand environments and introduce variability in downstream chemistry. By contrast, our complex remains stable in air at ambient temperature and has a specific ligand field determined by the two diethylsulfides. This configuration tunes both the solubility and the lability of the platinum, which often matters to researchers seeking fine control over kinetic substitution reactions.

    The diethylsulfide ligands contribute to favorable solubility in organic solvents, such as dichloromethane, chloroform, and ether. This behavior differs from other platinum dichloride derivatives, such as those based on amine or phosphine ligands, which bring higher resistance to ligand exchange but less compatibility in classic organic reaction media. End users in academic labs, materials science, and pharmaceutical development pay close attention to these properties. Our technical feedback loop relies on customer reports: we see that some clients prefer our product specifically for cases where the gentle sulfur donors promote selective ligand substitution, compared with much harder chloride-only or phosphine-anchored precursors.

    In catalysis work, chemists care deeply about how readily a platinum(II) center activates in the presence of reactants. Cis-Dichlorobis(Diethylsulfide)Platinum(II) occupies a sweet spot—not as inert as phosphine-stabilized systems, but not as unpredictable as chloride-only forms. Our laboratory spends a fair share of its time demonstrating ligand exchange rates, running comparative studies, and tracking side reaction profiles with new batches, so we have documented evidence for our claims. This responsiveness to practical concerns has shaped our production approach as much as any formal specification sheet.

    Lessons Learned After Years in Production

    No day in the factory is exactly the same. We’ve learned to respect the subtleties of platinum chemistry, especially the balance required to keep the cis geometry locked in throughput conditions. Small changes in temperature or reactant addition rates during synthesis can favor unwanted isomerization, leading to less-consistent product. This was a real issue in earlier years until process optimization steps—like more precise solvent control and better agitation—cut out the uncertainty. With these lessons behind us, we can promise a product that behaves exactly as our technical data says it should.

    Stability in shipping and storage sits near the top of our priority list. Cis-Dichlorobis(Diethylsulfide)Platinum(II) holds up well under ambient storage in its sealed primary package, but exposure to light or excessive humidity can start to discolor the crystals or form minor decomposition products. To counter this, we switched to light-blocking, inert-lined containers that survive shipping to distant labs without issue. Our packaging division runs regular shelf-life checks: findings so far confirm that our batches maintain stated purity for years, provided the seal stays intact.

    Safety remains central across all operations. Diethylsulfide’s volatility is easily managed with standard ventilated enclosures and modern PPE, though early on, we learned just how persistent the odor can be in poorly ventilated areas. We built odor control into our workflow, so nobody complains of residual sulfur smells on packaging or paperwork.

    The Role of Cis-Dichlorobis(Diethylsulfide)Platinum(II) in Research and Industry

    As fresh research directions emerge, so do new expectations for platinum reagents. In recent years, our sales team has noted a steady uptick in orders from groups working on photonic materials, organometallic synthesis, and even biochemistry. Each line of research puts different demands on us as a manufacturer—some want lowest-possible trace metals, others demand high throughput and short lead times. Our background in scale-up chemistry means we’re ready for most of it, but every conversation with a scientist on the other end has deepened our own appreciation for this compound’s scope.

    Those working in advanced catalysis use Cis-Dichlorobis(Diethylsulfide)Platinum(II) as a quick entry point to ligand screening: platinum(II) complexes play roles in selective hydrogenation, hydrosilylation, and C–C bond activation reactions. Our technical team reviews the latest literature and frequently collaborates with outside researchers to stay ahead of developing trends. We document abnormal behavior—like changes in solubility or reactivity from crystallization artifacts—so every future batch performs predictably.

    Quality control for us means more than ticking off a purity percentage. Our QC staff tests for batch-to-batch reproducibility, residue analysis, color, particle size, and ease of dissolution. Any batch failing these criteria doesn’t leave our site. Customers visiting our facility get a firsthand look at our approach, and their feedback keeps us improving. Sometimes we uncover points to fix right away, such as equipment cleaning intervals or reagent shelf life; other times, the learning feeds back into better process notes for future synthesis runs.

    The Bigger Picture: Challenges and Responses

    From our side, the global platinum market affects both supply chain stability and pricing. Over the last decade, sourcing reliably pure platinum inputs has challenged everyone in our position, especially when geopolitical events or mining disruptions affect the market. Our procurement staff maintains close relationships with primary refiners, and any changes in platinum source show up in tighter QC and certification efforts. Users deserve to know exactly where their complex originated, so we provide full documentation when asked.

    Environmental regulations have tightened for chemical producers, particularly in managing effluent streams and air quality. Our team completely redesigned our ventilation and scrubbing systems to tackle any escaped diethylsulfide vapors, not just for legal compliance but for worker health. Waste treatment technology now integrates real-time monitoring, helping us minimize both environmental impact and the risk of batch contamination from backflows or vapor leaks.

    Sustainability remains a moving target in this field. Recycling platinum residues back into our feedstock stream helps conserve resources and manage costs, but separating catalyst fines or spent reagents from production waste brings extra complexity. We invest continuously in improving our in-house recovery lab. Recent upgrades include better filtration for Pt-containing sludges and closed-loop precipitation schemes that regenerate feed-grade platinum salts.

    Expectations for transparency and ethical sourcing climb year after year. We know academic groups and industrial buyers want statements on ethical platinum sourcing. Our compliance officer tracks chain-of-custody for every batch, referencing the latest regulations and best practices. This paperwork doesn’t slow us down—it builds trust with clients who depend on these materials for sensitive, high-stakes work.

    Innovation and the Future of Platinum Complex Synthesis

    Science keeps moving, and every advance in platinum chemistry brings new synthetic targets, new mechanisms, and new needs for precision. Cis-Dichlorobis(Diethylsulfide)Platinum(II) fits as a bridge—a carefully defined starting material that both old-guard and new-entrant researchers trust. It’s satisfying to know our decades of technical progress get channeled directly into labs driving fresh breakthroughs in catalysis, materials science, and chemistry education.

    We regularly review how experimental results match up with our production methods. If a customer encounters issues, our lab runs parallel syntheses to replicate their findings and pinpoint solutions. Sometimes it’s a trace impurity affecting a ligand exchange rate, sometimes it’s a tweaking of the crystal form that solves a solubility hiccup. This iterative, hands-on approach keeps our processes evolving and maintains our reputation among the technical community.

    Digital transformation reshapes even our corner of heavy chemistry. Automation and analytics reduce manual handling and standardize outcomes in ways that older batch approaches could only dream about. Our most recent investment introduced integrated reactor analytics for endpoint detection—every run gets logged and analyzed, reducing human error and providing a data trail for regulatory or scientific auditing.

    Direct conversations with researchers inform our product development pipeline. If a new application emerges—for example, platinum nanoparticles from Cis-Dichlorobis(Diethylsulfide)Platinum(II) for medical imaging or sensor arrays—we collaborate with the client to validate all critical steps. We don’t just ship chemicals; we drive progress from the core of our own manufacturing background.

    Supporting Claims with Proven Results

    Basing trust on experience beats any marketing gloss. Our technical experts don’t take shortcuts: before endorsing any property or claim about Cis-Dichlorobis(Diethylsulfide)Platinum(II), we run side-by-side comparisons against alternative platinum(II) complexes. For example, repeated ligand exchange tests establish that the diethylsulfide ligands come off easily compared to notoriously stubborn phosphine-based relatives, lending more flexibility for rapid academic screening.

    Spectroscopic tracking during aging trials demonstrates that our compound holds up well over time, with no significant increase in byproducts or change in color when kept as directed. Feedback from university research groups confirms that substituted versions—such as complexes with longer-chain sulfides or different halide counterions—rarely match the handling benefits and clarity provided by our standardized material.

    In seeking to minimize user risks, our safety and compliance program keeps customers informed about handling instructions grounded in actual manufacturing practice. Only someone who works daily with these chemicals recognizes the subtle shifts that might spell trouble down the line—a faint color change, a shift in smell, or a new haze on scratching a crystal sample. By documenting these details over years, we stay one step ahead of problems for the end user.

    Conclusion

    Making Cis-Dichlorobis(Diethylsulfide)Platinum(II) takes more than technical competence—it demands ongoing study of process, careful listening to research partners, and a willingness to improve each production run based on feedback and results. Drawing from real factory floor experience, our team stands behind every batch, ensuring both scientific reliability and a responsive approach to new challenges in platinum complex synthesis. This philosophy keeps us going year after year as manufacturing evolves and research boundaries keep shifting.