Atomfair Lithium manganate Li2MnO4

Description Lithium Manganate (Li2MnO4) is a high-purity inorganic compound widely utilized in advanced electrochemical applications, particularly as a cathode material in lithium-ion batteries. Its unique crystal structure and redox properties contribute to enhanced stability, capacity, and cycling performance in energy storage systems. This product is synthesized under stringent conditions to ensure optimal stoichiometry, particle size distribution, and minimal impurities, making it ideal for research and industrial-scale battery development. Available in powder form with customizable particle morphologies, our Lithium Manganate is characterized by XRD, SEM, and electrochemical testing to guarantee consistent quality. Suitable for solid-state batteries, hybrid supercapacitors, and next-generation energy…

Description

Description

Lithium Manganate (Li2MnO4) is a high-purity inorganic compound widely utilized in advanced electrochemical applications, particularly as a cathode material in lithium-ion batteries. Its unique crystal structure and redox properties contribute to enhanced stability, capacity, and cycling performance in energy storage systems. This product is synthesized under stringent conditions to ensure optimal stoichiometry, particle size distribution, and minimal impurities, making it ideal for research and industrial-scale battery development. Available in powder form with customizable particle morphologies, our Lithium Manganate is characterized by XRD, SEM, and electrochemical testing to guarantee consistent quality. Suitable for solid-state batteries, hybrid supercapacitors, and next-generation energy solutions.

  • CAS No: 12057-17-9
  • Molecular Formula: Li2MnO4
  • Molecular Weight: 132.9
  • Exact Mass: 132.949708
  • Monoisotopic Mass: 132.949708
  • IUPAC Name: dilithium;dioxido(dioxo)manganese
  • SMILES: [Li+].[Li+].[O-][Mn](=O)(=O)[O-]
  • Synonyms: Lithium manganate, Q36431105

Application

Lithium Manganate is primarily employed as a cathode material in lithium-ion batteries due to its high theoretical capacity and structural stability. Researchers leverage its manganese-based redox activity to develop cost-effective, high-energy-density batteries for electric vehicles and grid storage. It also serves as a precursor for doped or composite electrodes to improve rate capability and thermal safety. Additionally, its use extends to fundamental studies in solid-state ionics and electrocatalysis.

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