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Review article

Hollow-Structured Materials for Advanced Energy Storage and Conversion: Rational Synthesis, Multifunctional Applications, and Mechanism Insights

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  • a School of Materials Science and Engineering, Zhengzhou University, Zhengzhou 450001, China. 

    b State Center for International Cooperation on Designer Low-carbon & Environmental Materials (CDLCEM), Zhengzhou University, Zhengzhou 450001, China. 

    c Nanoelectronics Center, Advanced Technology Institute, University of Surrey , Guildford GU2 7XH, UK 

    d Zhengzhou Materials Genome Institute (ZMGI), Zhongyuanzhigu, Building 2, Xingyang 450100, China.

Received date: 2025-06-01

  Revised date: 2025-09-25

  Accepted date: 2025-09-28

  Online published: 2025-09-28

Supported by

The work was supported by the National Natural Science Foundation of China (No. 52472110,U2004172, 51972287), the Central Plains Science and Technology Innovation Leading Talents (254200510052), the National Natural Science Foundation of Henan Province (No. 242300421008), and the Program for Science& Technology Innovation Talents in Universities of Henan Province (23HASTIT001).

Abstract

Hollow-structured materials exhibit breakthrough potential in energy storage and conversion, leveraging unique advantages including high specific surface area, controllable cavity architecture, and short-range mass transfer pathways, alongside tunable functional properties. This review synthesizes recent progress, emphasizing the constitutive relationships governing material synthesis, structural engineering, and resultant performance. Key synthesis strategies including encompassing hard-templating, soft-templating, and template-free approaches are delineated with respect to their mechanisms and characteristics. Subsequently, cutting-edge applications in energy storage systems (e.g., lithium-ion batteries, supercapacitors), conversion systems (e.g., photoelectrocatalysis) and the application of partial in-situ testing technology for exploring the reaction mechanism are highlighted. The review concludes by outlining critical challenges and opportunities pertaining to scalable fabrication, structural stability, and device integration, providing a roadmap for the precise design and performance optimization of these materials.

Cite this article

Yiran Sun, Changqu Liu, Shuqi Ji , Jinbo Ni, Xiangning Wu, Sembukuttiarachilage Ravi Pradip Silva, Meng Cai, Guosheng Shao, Peng Zhang . Hollow-Structured Materials for Advanced Energy Storage and Conversion: Rational Synthesis, Multifunctional Applications, and Mechanism Insights[J]. Composite Functional Materials, 0 : 0 -0 . DOI: 10.63823/20250202

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