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Confined Synthesis of Amorphous Al2 O3 Framework Nanocomposites Based on the Oxygen-Potential Diagram as Sulfur Hosts for Catalytic Conversion.


ABSTRACT: Sulfur cathodes in Li-S batteries suffer significant volumetric expansion and lack of catalytic activity for polysulfide conversion. In this study, a confined self-reduction synthetic route is developed for preparing nanocomposites using diverse metal ions (Mn2+ , Co2+ , Ni2+ , and Zn2+ )-introduced Al-MIL-96 as precursors. The Ni2+ -introduced Al-MIL-96-derived nanocomposite contains a "hardness unit", amorphous aluminum oxide framework, to restrain the volumetric expansion, and a "softness unit", Ni nanocrystals, to improve the catalytic activity. The oxygen-potential diagram theoretically explains why Ni2+ is preferentially reduced. Postmortem microstructure characterization confirms the suppressive volume expansion. The in situ ultraviolet-visible measurements are performed to probe the catalytic activity of polysulfide conversion. This study provides a new perspective for designing nanocomposites with "hardness units" and "softness units" as sulfur or other catalyst hosts.

SUBMITTER: Geng P 

PROVIDER: S-EPMC10460837 | biostudies-literature | 2023 Aug

REPOSITORIES: biostudies-literature

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Confined Synthesis of Amorphous Al<sub>2</sub> O<sub>3</sub> Framework Nanocomposites Based on the Oxygen-Potential Diagram as Sulfur Hosts for Catalytic Conversion.

Geng Pengbiao P   Lin Yuxing Y   Du Meng M   Wu Chunsheng C   Luo Tianxing T   Peng Yi Y   Wang Lei L   Jiang Xinyuan X   Wang Shuli S   Zhang Xiuyun X   Ni Lubin L   Chen Shuangqiang S   Shakouri Mohsen M   Pang Huan H  

Advanced science (Weinheim, Baden-Wurttemberg, Germany) 20230619 24


Sulfur cathodes in Li-S batteries suffer significant volumetric expansion and lack of catalytic activity for polysulfide conversion. In this study, a confined self-reduction synthetic route is developed for preparing nanocomposites using diverse metal ions (Mn<sup>2+</sup> , Co<sup>2+</sup> , Ni<sup>2+</sup> , and Zn<sup>2+</sup> )-introduced Al-MIL-96 as precursors. The Ni<sup>2+</sup> -introduced Al-MIL-96-derived nanocomposite contains a "hardness unit", amorphous aluminum oxide framework, to  ...[more]

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