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说明:以下列出经编委会审查通过,被本刊录用的文章。这些文章尚未确定具体刊出日期, 其个别内容、版式可能与最后的发表版本稍有差异, 请以最后发表为准。本刊已经为这些文章分配了文章唯一和持久的doi,您可以使用doi直接引用本文。

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  • Yiran Sun, Changqu Liu, Shuqi Ji , Jinbo Ni, Xiangning Wu, Sembukuttiarachilage Ravi Pradip Silva, Meng Cai, Guosheng Shao, Peng Zhang
    Composite Functional Materials. https://doi.org/10.63823/20250202
    录用日期: 2025-09-28
    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.
  • Huanhuan Zhang, Yanping Fan, Shuyan Guan, Wen-Gang Cui, Mingchang Zhang, Zhenglong Li, Yuhai Dou, Jiarui Yang, Zechao Zhuang, Zhenluo Yuan, Shiqian Zhao, Dingsheng Wang, Baozhong Liu, and Hongge Pan
    Composite Functional Materials. https://doi.org/10.63823/20250201
    录用日期: 2025-09-23
    Magnesium hydride (MgH2) as a solid-state hydrogen storage material has obtained intense attention in extensive research because of its high hydrogen-storage capacity, excellent reversibility, and a relatively low cost. However, two primary obstacles of slow kinetics during hydrogenation/dehydrogenation process and high thermodynamic stability of Mg-H bond hinders the large-scale application of MgH2. Therefore, developing high-efficiency catalysts is necessary for hydrogen storage system. Titanium (Ti) as an active element has the promising in enhancing hydrogen storage activity and has been reported extensively. Herein, this review summarized the synthesis approaches, testing technology, and hydrogen storage performance of various Ti-based additives in detail. The structure-activity relationship of Ti-based materials was researched by combining experiment and DFT simulations. In particular, the focus is on the investigation of synthesis, characterization and reaction mechanism of various Ti-based additives. The real active sites and different reaction mechanisms during MgH2 hydrogen storage system are discussed. Finally, a summary and outlook were also presented. This review may have potential in designing high-efficient catalysts and providing embedded guidance for future development and application of Mg-based materials during the system of hydrogen storage.