Cas no 13568-45-1 (Lithium tungstate)

Lithium tungstate (Li?WO?) is an inorganic compound with notable properties, particularly in high-density aqueous solutions and specialized optical applications. Its key advantages include a high solubility in water, enabling the preparation of dense solutions used in density gradient centrifugation and radiation shielding. Lithium tungstate also exhibits excellent thermal stability and low hygroscopicity, making it suitable for high-temperature processes and moisture-sensitive environments. Additionally, its optical transparency in the near-infrared region makes it valuable for certain laser and photonic applications. The compound is chemically inert under standard conditions, ensuring reliability in industrial and research settings. These characteristics position lithium tungstate as a versatile material in both scientific and technical fields.
Lithium tungstate structure
Lithium tungstate structure
Product Name:Lithium tungstate
CAS No:13568-45-1
MF:Li2O4W
MW:261.719596862793
MDL:MFCD00016185
CID:87056
PubChem ID:24864967
Update Time:2025-05-25

Lithium tungstate Chemical and Physical Properties

Names and Identifiers

    • Lithium tungstate
    • Lithiumtungstatewhitepowder
    • dilithium wolframate
    • dilithium,dioxido(dioxo)tungsten
    • Lithium tungsten oxide
    • AC1NN4QG
    • AC1O1FVC
    • Dilithium tetraoxotungstate Lithium tungsten oxide
    • diLithoTab tungstate
    • Dilithium tetraoxotungstate
    • TUNGSTEN OXIDE
    • Tungstic acid dilithium salt
    • Ditungstic acid dilithium salt
    • Lithiumtungstate,98%
    • Lithium tungstate 98%
    • Tungstate (WO42-), dilithium, (T-4)-
    • Lithium tungstate, 98%
    • MFCD00016185
    • Lithium Tungsten Powder
    • 13568-45-1
    • dilithium;dioxido(dioxo)tungsten
    • dilithium(1+) tungstate
    • MDL: MFCD00016185
    • Inchi: 1S/2Li.4O.W/q2*+1;;;2*-1;
    • InChI Key: SCKKBXOJPMZVPF-UHFFFAOYSA-N
    • SMILES: [W](=O)(=O)([O-])[O-].[Li+].[Li+]

Computed Properties

  • Exact Mass: 261.96300
  • Monoisotopic Mass: 261.962599
  • Isotope Atom Count: 0
  • Hydrogen Bond Donor Count: 2
  • Hydrogen Bond Acceptor Count: 4
  • Heavy Atom Count: 7
  • Rotatable Bond Count: 0
  • Complexity: 62.2
  • Covalently-Bonded Unit Count: 3
  • Defined Atom Stereocenter Count: 0
  • Undefined Atom Stereocenter Count : 0
  • Defined Bond Stereocenter Count: 0
  • Undefined Bond Stereocenter Count: 0
  • Surface Charge: 0
  • Tautomer Count: nothing
  • XLogP3: nothing
  • Topological Polar Surface Area: 80.3

Experimental Properties

  • Color/Form: It has besio3 crystal lattice and colorless triangular crystals
  • Density: 3.71?g/mL?at 25?°C(lit.)
  • Melting Point: 742°C
  • Boiling Point: °Cat760mmHg
  • Flash Point: °C
  • Water Partition Coefficient: Soluble in water.
  • PSA: 80.26000
  • LogP: -0.47520
  • Solubility: Soluble

Lithium tungstate Security Information

  • Hazardous Material transportation number:NONH for all modes of transport
  • WGK Germany:3
  • Safety Instruction: S22-S24/25
  • TSCA:Yes

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Lithium tungstate Related Literature

Additional information on Lithium tungstate

Comprehensive Guide to Lithium Tungstate (CAS No. 13568-45-1): Properties, Applications, and Innovations

Lithium tungstate (CAS No. 13568-45-1) is an inorganic compound with the chemical formula Li2WO4. This white crystalline solid is highly soluble in water and exhibits unique electrochemical and optical properties, making it a material of interest in advanced technologies. The compound is synthesized through the reaction of lithium carbonate and tungstic acid, yielding a product with high purity and stability. Researchers and industries value lithium tungstate for its versatility in applications ranging from energy storage to catalysis.

One of the most notable properties of lithium tungstate is its role in solid-state electrolytes for lithium-ion batteries. With the global push toward renewable energy and electric vehicles (EVs), the demand for efficient and safe battery materials has surged. Lithium tungstate enhances ionic conductivity and thermal stability, addressing key challenges in next-generation batteries. Its compatibility with high-energy-density cathodes makes it a promising candidate for improving battery performance and longevity.

Beyond energy storage, lithium tungstate is utilized in optical coatings and photocatalysis. Its high refractive index and transparency in the ultraviolet (UV) spectrum enable its use in anti-reflective coatings for solar panels and precision lenses. In environmental applications, lithium tungstate-based catalysts are explored for water splitting and CO2 reduction, aligning with sustainability goals. These innovations highlight the compound's potential in addressing climate change and resource scarcity.

The synthesis and characterization of lithium tungstate are critical for optimizing its performance. Advanced techniques like X-ray diffraction (XRD) and scanning electron microscopy (SEM) are employed to analyze its crystal structure and morphology. Recent studies focus on nanostructuring the material to enhance surface area and reactivity, paving the way for breakthroughs in nanotechnology and material science.

In the medical field, lithium tungstate is investigated for its radiopaque properties, which improve imaging contrast in X-rays and CT scans. Its biocompatibility and low toxicity further expand its potential in diagnostic tools. Additionally, the compound's antimicrobial activity is being studied for applications in medical coatings and disinfectants, offering a novel approach to combating hospital-acquired infections.

Market trends indicate growing interest in lithium tungstate due to its multifaceted applications. Companies specializing in advanced materials and clean energy are investing in research to commercialize its uses. Meanwhile, academic institutions are exploring fundamental aspects to unlock new functionalities. As industries prioritize sustainability and innovation, lithium tungstate is poised to play a pivotal role in shaping future technologies.

For researchers and engineers, understanding the phase behavior and thermal stability of lithium tungstate is essential for tailoring its properties. Computational modeling and machine learning are increasingly used to predict its performance under varying conditions, accelerating material discovery. Collaborative efforts between academia and industry are expected to drive advancements in this field, ensuring lithium tungstate meets the demands of emerging applications.

In summary, lithium tungstate (CAS No. 13568-45-1) is a versatile compound with significant potential across multiple industries. Its unique properties and adaptability make it a key player in the transition to green energy, advanced healthcare, and sustainable manufacturing. As research progresses, the scope of its applications will undoubtedly expand, solidifying its importance in modern science and technology.

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