Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing admin@sinochem-nanjing.com 3389378665@qq.com
Follow us:

Cesium Acetate

    • Product Name Cesium Acetate
    • Alias Acetic acid cesium salt
    • Einecs 214-666-8
    • 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
    VTB
    Specifications

    HS Code

    390300

    Chemical_Name Cesium Acetate
    Chemical_Formula CsC2H3O2
    Molar_Mass 191.94 g/mol
    CAS_Number 5794-13-8
    Appearance White crystalline solid
    Solubility_in_Water Very soluble
    Melting_Point 324 °C (615 °F)
    Density 2.43 g/cm³
    pH_of_1%_Solution 7.5-9.0
    Boiling_Point Decomposes before boiling
    Odor Odorless
    Storage_Conditions Store in a cool, dry place

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

    Packing & Storage
    Packing White, tightly-sealed plastic bottle containing 100 grams of Cesium Acetate; features hazard labeling, product details, and safety instructions on label.
    Shipping Cesium acetate should be shipped in tightly sealed containers, protected from moisture and physical damage. Package it according to applicable regulations for chemical transport. Label containers clearly, indicating the chemical name and hazard information. Transport should ensure temperature stability and prevent exposure to incompatible substances, following national and international shipping guidelines.
    Storage Cesium acetate should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area away from moisture, acids, and incompatible substances. Protect it from physical damage and sources of ignition. Store at room temperature and avoid exposure to air or humidity to prevent degradation. Clearly label the container and follow all relevant safety protocols when handling.
    Application of Cesium Acetate

    Applications of Cesium Acetate in Industrial Manufacturing

    Cesium acetate is widely adopted in several advanced industrial sectors, thanks to its unique chemical and physical properties, which enable precise control over formulation and performance characteristics. As a direct manufacturer, we supply this material in support of specialized downstream processes where regulation compliance, technical consistency, and application know-how are critical. Explore how leading sectors apply cesium acetate from qualification to final product output.

    1. Oil and Gas Well Drilling Fluids

    High-density brine systems for oil and gas drilling frequently require cesium acetate to manage hydrostatic pressure during shale and deep reservoir development, minimizing formation damage while supporting wellbore stability. Fluid engineers adjust dosages for formation characteristics and target density, adhering to strict environmental and performance standards.

    Industry compliance standards

    • API RP 13B (Recommended Practice for Field Testing Water-based Drilling Fluids)
    • ISO 13503 (Well completion fluids)
    • REACH Registration (EU Chemicals Regulation)
    • OHSAS 18001 (Occupational Health and Safety in drilling projects)

    Typical usage ratio

    • 35%–75% by weight in brine formulations; final concentration set to achieve fluid densities from 1.5 to 2.5 g/cm³.

    Downstream process integration

    • Added during the preparation of completion or workover fluids on site, dissolved in water as primary salt for brine weighting. Chemical QC checks verify solution clarity and density before field deployment.

    Final product types

    • High-density clear brine drilling fluids
    • Well completion and workover brine systems
    • Reservoir protection fluids for horizontal and deep wells
    • Hydrocarbon extraction support fluids

    2. Catalysts in Fine Organic Synthesis

    Chemical producers in the pharmaceutical and fragrance sectors use cesium acetate as a catalyst or reagent in transition-metal-catalyzed reactions, especially for carbon-oxygen and carbon-carbon bond formations. Selectivity, yield improvement, and compliance with pharmaceutical GMP regulations drive its adoption for advanced molecule construction.

    Industry compliance standards

    • ICH Q7 (Good Manufacturing Practice for Active Pharmaceutical Ingredients)
    • USP–NF (United States Pharmacopeia/National Formulary) for process reagents
    • 21 CFR Part 211 (cGMP for Finished Pharmaceuticals)
    • EU EudraLex Volume 4 (Pharmaceutical manufacturing)

    Typical usage ratio

    • 0.5–5 mol% relative to substrate for catalysis; up to 10 mol% for certain condensation or cross-coupling pathways. Final proportion depends on reaction scale and substrate sensitivity.

    Downstream process integration

    • Dosed into reaction vessels at pre-stirring stage or during controlled reagent addition, usually under inert atmosphere. Batch production monitored for conversion and product purity before downstream isolation and purification.

    Final product types

    • Active pharmaceutical ingredients (APIs)
    • Synthetic intermediates for drug and fragrance manufacture
    • Specialty fine chemicals with functionalized aromatic rings
    • Organometallic synthesis precursors

    3. Glass and Ceramics Manufacturing

    Manufacturers of technical glasses and ceramics use cesium acetate as a fluxing agent to lower melting points, refine grain structure, and improve optical quality. This application is prominent in precision optics and specialty enamels where alkali metal ion control impacts product clarity and color.

    Industry compliance standards

    • ISO 12137 (Testing of glass and glass-ceramics)
    • DIN 51086 (Ceramic raw materials, technical ceramics)
    • REACH (Raw material safety for industrial minerals)
    • RoHS Directive (Restriction of Hazardous Substances in electrical applications)

    Typical usage ratio

    • 0.1%–2% by total glass or ceramic batch weight, depending on impact required for melting behavior, coloration, or alkali exchange.

    Downstream process integration

    • Incorporated into batch mixing with other fluxes before melting; careful control during blending prevents segregation. Detailed QC logging of batch composition ensures color stability and final melt characteristics.

    Final product types

    • Optical glass for lenses and prisms
    • Glass-ceramic cooktops and specialty coatings
    • Technical ceramic capacitors and electroceramic components
    • Colored and decorative glass for electronics and lighting

    4. Isotope Separation and Nuclear Research

    Research institutions and isotope processing facilities use cesium acetate solutions in separation chemistry, aiding in selective precipitation, ion exchange, or preparative electrolysis for radioisotope production. Nuclear-grade traceability and analytical purity remain mandatory in these sensitive environments.

    Industry compliance standards

    • IAEA Safety Standards for Nuclear Applications
    • ANSI N42 (Nuclear material process monitoring)
    • ISO 17034 (Reference material producers in nuclear research)
    • OECD Good Laboratory Practice (GLP) for analytical work

    Typical usage ratio

    • 0.1–1.5 mol/L solution depending on targeted isotope and separation protocol; purity level matched to final radiochemical product requirements.

    Downstream process integration

    • Prepared as aqueous or mixed-solvent media, introduced to ion-exchange columns or precipitation vessels. QC confirmation by radioanalytical and mass spectrometry methods before product isolation and waste management procedures.

    Final product types

    • Purified cesium radioisotopes (e.g., Cs-137, Cs-134)
    • Certified reference solutions for radiometric calibration
    • Separation precursors in isotope laboratories
    • Nuclear medicine tracers and analytical reagents

    5. Electrolyte Additives for Advanced Batteries

    Battery manufacturers incorporate cesium acetate into electrolyte systems for niche secondary batteries, optimizing ionic conductivity and stabilizing electrode cycling, especially in research and pilot-scale lithium and sodium ion batteries. Chemical stability and trace contamination limits play a critical role in reproducibility and lifecycle performance.

    Industry compliance standards

    • IEC 62660-2 (Lithium-ion battery safety and performance for industrial applications)
    • UL 2580 (Electrical vehicle battery systems)
    • ISO 9001 (Quality management for battery materials manufacturing)
    • RoHS and REACH for raw material sourcing

    Typical usage ratio

    • 0.01–0.2 mol/L in electrolyte mixture, depending on battery chemistry and seeker performance parameters; adjusted after cell R&D validation.

    Downstream process integration

    • Added to electrolyte solution during mixing prior to cell assembly, often under inert atmosphere; routine conductivity and impurity checks carried out before filling cells on automated production lines.

    Final product types

    • High-cycle prototype lithium-ion battery cells
    • Specialty coin and pouch batteries for instrumentation
    • Development-stage sodium and mixed-alkali secondary cells
    • Electrochemical test platforms for laboratory research
    Free Quote

    Competitive Cesium Acetate prices that fit your budget—flexible terms and customized quotes for every order.

    For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.

    We will respond to you as soon as possible.

    Tel: +8615371019725

    Email: admin@sinochem-nanjing.com

    Get Free Quote of Sinochem Nanjing Corporation

    Flexible payment, competitive price, premium service - Inquire now!

    Certification & Compliance
    More Introduction

    Cesium Acetate: Reliable Supply from an Experienced Chemical Manufacturer

    Direct from Our Plant: High Purity Cesium Acetate

    Our team has specialized in producing Cesium Acetate for decades, constantly refining both our process and product performance. Cesium Acetate, offered here in the standard analytical and technical grades, plays a unique role in modern chemistry and advanced manufacturing challenges. Over the years, we’ve responded to shifting customer needs and strict quality standards, using customer feedback and years on the production floor to shape a stable, high-purity product that’s ready for complex applications ranging from organic synthesis to next-generation energy research.

    What Sets Cesium Acetate Apart?

    Some customers tell us they’ve used potassium or sodium salts in the past, but run into limitations during synthesis, especially when high solubility in polar solvents or minimal interference from cations is critical. Not every alkali metal acetate performs the same way. Cesium Acetate, with its larger ionic radius and distinct reactivity, facilitates transformations other acetates cannot. In our own trials and based on reports from labs using our product, it opens up alternative reaction pathways, often giving better selectivity and yields where other metal acetates create side reactions or stall. Much of this comes from the unique coordination behavior of cesium ions, which our technical team has studied extensively during support for pharmaceutical and materials science projects.

    Consistent Quality: Model and Specifications

    For the lab, pilot plant, or industrial reactor, our Cesium Acetate arrives as a colorless, free-flowing crystalline powder, with purity verified above 99.0% by atomic absorption analysis and loss on drying well below one percent. Over the years, some customers have needed specifications adapted for narrow solubility ranges or extra screening for trace alkali metal contamination, and we’ve refined our washing, crystallization, and monitoring stages based on those demands. Our experience has taught us that even trace residues—potassium or rubidium, for example—can skew downstream catalysis or chromatography results. We keep a vigilant watch on batch-to-batch consistency through both ICP-MS screening and regular internal audits, which we run with every production campaign, not just on spot checks. We also routinely share our in-house COA data and can demonstrate statistical quality control methods supporting our advertised specs.

    Users and Applications: Real-World Insights

    Researchers approach us for Cesium Acetate when nothing else will do. In the lab, chemists explore cross-coupling and alkylation chemistry where cesium’s character enables smoother reactions. One frequent story from material scientists—especially those working on perovskite solar cells—involves our Cesium Acetate used as a controlled cesium source for film deposition. Using lower-purity grades or switching to sodium acetate in these situations, users report unwanted phase formation or depressed device performance. In a recent collaborative effort with an electronics manufacturer, our team supported an investigation into dielectric materials; one surprising result, stemming from a seemingly minor batch impurity difference, confirmed how small variations in the acetate source could alter device capacitance and breakdown voltage.

    We’ve also had long-standing relationships with contract manufacturers preparing pharmaceutical intermediates. For many cross-coupling reactions—often palladium- or nickel-catalyzed—Cesium Acetate shapes product distributions in ways that potassium or sodium salts rarely manage, delivering cleaner separation and less troublesome workups. Over years of dialogue, we found researchers returning to Cesium Acetate for exactly these subtle but critical differences. In our plant’s feedback records, we’ve logged case studies showing cycle time improvements in kilo-scale syntheses when switching to a high-purity cesium source, leading to meaningful time and cost savings in campaign manufacturing.

    Comparison with Other Alkali Acetates

    Many users compare different alkali acetates hoping to cut costs or reduce regulatory burdens, though those savings don’t always materialize. Potassium Acetate and Sodium Acetate are staples for biological buffers and bulk chemistry. Their mass availability and low price tempt buyers to switch, but their activity in certain organic reactions and electronics fabrication isn’t always up to par. Cesium Acetate presents markedly higher solubility in organic media, and its ionic radius disrupts cation-π interactions less than potassium or sodium. In our work, we’ve tracked cleaner product profiles and higher target yields with Cesium, even though its procurement cost runs higher up front.

    Our own test runs and customer feedback both point out the perils of switching without proper validation. A customer in battery research came to us after initial runs with sodium acetate led to short cycle life and instability in electrode slurries. We supported head-to-head validations and provided detailed spectral and elemental analysis after each batch. The verdict: Cesium Acetate made the difference, especially for longevity and reproducibility, saving weeks of troubleshooting time. We see similar outcomes in fine chemical synthesis where buffer integrity and cation effects dictate project success.

    Supply Reliability and Handling Experience

    Some clients worry about sourcing Cesium compounds, concerned about global supply chains and the restricted number of authenticated producers. Our facility draws from a robust network of upstream suppliers, and we hold extra inventory of strategic raw materials. Over our years of operation, we’ve weathered numerous raw material shortages without compromising consistency or documentation. Reliable supply isn’t just about plant capacity, but also about detailed forward planning and transparent quality communication, something we make a regular point of with every client.

    Handling Cesium Acetate, the powder demands sensible storage and work protocols. Our team stores it in sealed HDPE drums under dry, inert atmosphere, and we coordinate closely with logistics partners to maintain integrity door-to-door. On-site, our operators and QC staff observe strict labeling, environmental monitoring, and emergency preparedness protocols. Engineering controls—not just paperwork—guide our product stewardship. Anybody scaling up should consult their own risk assessment procedures, but our support staff shares plant-tested guidance for safe dispensing, transfer, and spill management. Facility upgrades over the last five years—including improved dust collection and humidity monitoring—stemmed from lessons learned working in real production environments, not copied from generic safety sheets.

    Environmental and Regulatory Considerations

    Cesium Acetate isn’t just another commodity salt. Regulations on cesium compounds shift depending on region and application—sometimes unexpectedly—due to perceived risks. Our regulatory team tracks these changes closely, ready to supply relevant documentation and respond to inquiries from customs or environmental health officers. Over the years, customers have approached us during site audits requiring full chain-of-custody reports, and we maintain complete batch histories, traceable to individual lot numbers.

    We actively monitor our waste streams and emissions, returning purified process water and neutralized residues to accredited disposal centers. We learned early on that even small cesium losses could raise scrutiny, so we invested in closed-loop waste recovery. Every handling area and drain carries live monitoring for dissolved metals. Our approach to process sustainability means waste is tracked, sorted, and, where possible, recovered for reuse or safe destruction. Downstream users making pharmaceuticals, electronics, or advanced materials often request technical support during regulatory filings, a need we meet with real-time technical data, historical batch records, and years of practical compliance experience.

    Service and Technical Support: Meeting Specific Needs

    When a researcher or plant engineer calls us about Cesium Acetate, they usually seek more than a catalog spec. Often, a project brings a new challenge—a reaction failing due to low solubility, a device not meeting target specs, or an environmental reviewer asking for details about trace impurity profiles. Our technical team, some with decades on the production floor and others with advanced research backgrounds, fields these questions directly, and responds with firsthand knowledge of both product and process.

    We’ve worked through unusual customer requirements—gram-scale supply for research, multi-tonne orders for high-throughput manufacturing, even special packaging assignments to prevent cross-contamination or moisture uptake. Sometimes customers need tailored documentation—full metal analysis or contaminants screened to ultra-trace levels. We routinely run additional QC testing, support validation batches, and open our facility to customer audits where appropriate. Our on-the-ground plant managers have talked through process improvements with customer engineers, even collaborating on pilot-scale trial runs to optimize process parameters.

    Future Outlook: Innovation and Partnership

    Demand for Cesium Acetate continues to grow, especially as energy technology and electronic materials evolve. Clients ask us about upscaling for perovskite research, about solar absorbers, memory devices, and if our product can meet higher or even novel purity standards for cutting-edge applications. Our R&D program investigates both incremental improvements and disruptive manufacturing advances—like continuous crystallization and in-line impurity mapping—to keep pace. Every advance in process control has resulted from direct experience, customer dialogue, and persistence through hundreds of pilot batches, not just from chasing purity on paper.

    Looking forward, we continue to invite researcher collaboration and customer engagement, since it’s experience in the lab and plant that informs real product innovation. Working closely with users, we adapt specifications, packaging, and logistical support so each delivery meets the highest standards of quality and reliability. Drawing on the practical lessons gained from years in the field, we help our customers achieve their goals—better yields, cleaner product, and consistent performance batch after batch—with Cesium Acetate delivered from our plant.

    Summary: Experience Matters in Cesium Acetate Production

    Delivering Cesium Acetate as a chemical manufacturer, we’ve learned that everything comes down to the interaction between our process, the demands of real-world chemistry, and unwavering attention to the needs of our customers. The value of Cesium Acetate doesn’t end at its unique chemical properties. Performance, purity, documentation, safety, and experienced technical support add up to a partnership between manufacturer and user that makes ambitious research possible and turns production challenges into new directions. We’re proud to supply Cesium Acetate backed by experience, detailed technical knowledge, and years of reliable production.