Published June 16, 2025
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A Comprehensive Overview of Co3O4 Nanoparticles: Solution Combustion Synthesis and Potential Applications.

  • 1. Department of Chemistry, Faculty of Natural Sciences, L.N. Gumilyov Eurasian National University, Astana 010008, Kazakhstan.
  • 2. Department of Chemical Physics and Material Science, Al-Farabi Kazakh National University, 71 Al-Farabi Avenue, Almaty 050040, Kazakhstan.
  • 3. Department of Chemistry, Faculty of Education, Institute of Higher Education Mirwais Khan Nika, Qalat 4001, Zabul, Afghanistan.
  • 4. Institute of Combustion Problems, 172 Bogenbai Batyr Street, Almaty 050012, Kazakhstan.
  • 5. UNESCO Chair in Sustainable Development, Al-Farabi Kazakh National University, 71 Al-Farabi Avenue, Almaty 050038, Kazakhstan.
  • 6. Scientific Research Laboratory on Water Quality, Department of Chemistry and Biotechnology of the Pedagogical Institute, Sh. Ualikhanov Kokshetau University, 76 Abai Street, Kokshetau 020000, Kazakhstan.
  • 7. O.A. BaikonurovMining and Metallurgical Institute, Departament of Materials Science and Engineering Physics, Satbayev University, Almaty 050013, Kazakhstan.
  • 8. Departament of Mathematical and Computer Modelling, International Information Technology University, 34/1 Manas Street, Almaty 050040, Kazakhstan.

Description

Co3O4 nanoparticles synthesized by solution combustion synthesis present a versatile platform for the development of porous nanostructures with tunable morphology and physicochemical properties. Synthesis conditions and parameters such as fuel type; fuel-to-oxidizer ratio and temperature control lead yielding; and Co3O4 NPs with fine particle size, surface area, and porosity result in enhancing their electrochemical and catalytic capabilities. This review evaluates present studies about SCS Co3O4 NPs to study how synthesis parameter modifications affect both surface morphology and material structure characteristics including porosity features, which make their improved performance ideal for lithium-ion batteries and supercapacitors. Moreover, the integration of dopants with carbon-based hybrid composites enhances material conductivity and stability by addressing both capacity fading and low electronic conductivity concerns. This review mainly aims to explore the significant relation between fundamental material design principles together with practical uses and provides predictions about future research advancements that aim to enhance the performance of Co3O4 NPs in next-generation energy and environmental technology applications.
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