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优化单钴位点的空间密度以促进可持续析氧反应的分子间距

Optimizing the Spatial Density of Single Co Sites Molecular Spacing for Facilitating Sustainable Water Oxidation.

作者信息

Zhang Jia, Chen Hao, Liu Shoujie, Wang Li-Dong, Zhang Xue-Feng, Wu Jun-Xi, Yu Li-Hong, Zhang Xiao-Han, Zhong Shengliang, Du Zi-Yi, He Chun-Ting, Chen Xiao-Ming

机构信息

Key Lab of Fluorine and Silicon for Energy Materials and Chemistry of Ministry of Education, College of Chemistry and Chemical Engineering, and College of Life Science, Jiangxi Normal University, Nanchang 330022, China.

School of Materials Science and Engineering, Anhui University, Hefei 230601, China.

出版信息

J Am Chem Soc. 2023 Sep 13;145(36):20000-20008. doi: 10.1021/jacs.3c06665. Epub 2023 Aug 23.

Abstract

Advances in single-atom (-site) catalysts (SACs) provide a new solution of atomic economy and accuracy for designing efficient electrocatalysts. In addition to a precise local coordination environment, controllable spatial active structure and tolerance under harsh operating conditions remain great challenges in the development of SACs. Here, we show a series of molecule-spaced SACs (msSACs) using different acid anhydrides to regulate the spatial density of discrete metal phthalocyanines with single Co sites, which significantly improve the effective active-site numbers and mass transfer, enabling one of the msSACs connected by pyromellitic dianhydride to exhibit an outstanding mass activity of (1.63 ± 0.01) × 10 A·g and TOF of 27.66 ± 1.59 s at 1.58 V ( RHE) and long-term durability at an ultrahigh current density of 2.0 A·cm under industrial conditions for oxygen evolution reaction. This study demonstrates that the accessible spatial density of single atom sites can be another important parameter to enhance the overall performance of catalysts.

摘要

单原子(位点)催化剂(SACs)的进展为设计高效电催化剂提供了原子经济性和精确性的新解决方案。除了精确的局部配位环境外,可控的空间活性结构以及在苛刻操作条件下的耐受性仍是SACs开发中的巨大挑战。在此,我们展示了一系列分子间隔的SACs(msSACs),使用不同的酸酐来调节具有单个Co位点的离散金属酞菁的空间密度,这显著提高了有效活性位点数量和传质,使得由均苯四甲酸二酐连接的一种msSACs在1.58 V(RHE)下表现出(1.63±0.01)×10 A·g的出色质量活性和27.66±1.59 s⁻¹的TOF,并在工业条件下的析氧反应中在2.0 A·cm⁻²的超高电流密度下具有长期耐久性。这项研究表明,单原子位点的可及空间密度可以是提高催化剂整体性能的另一个重要参数。

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