Hei Peng, Sai Ya, Li Wenjie, Meng Jianming, Lin Yulai, Sun Xiaoqi, Wang Jing, Song Yu, Liu Xiao-Xia
Department of Chemistry, Northeastern University, 3-11, Wenhua Road, Heping district, Shenyang, 110819, China.
National Frontiers Science Center for Industrial Intelligence and Systems Optimization, Northeastern University, 3-11, Wenhua Road, Heping district, Shenyang, 110819, China.
Angew Chem Int Ed Engl. 2024 Dec 2;63(49):e202410848. doi: 10.1002/anie.202410848. Epub 2024 Oct 30.
There has been a growing interest in developing catalysts to enable the reversible iodine conversion reaction for high-performance aqueous zinc-iodine batteries (AZIBs). While diatomic catalysts (DACs) have demonstrated superior performance in various catalytic reactions due to their ability to facilitate synergistic charge interactions, their application in AZIBs remains unexplored. Herein, we present, for the first time, a DAC comprising Mn-Zn dual atoms anchored on a nitrogen-doped carbon matrix (MnZn-NC) for iodine loading, resulting in a high-performance AZIB with a capacity of 224 mAh g at 1 A g and remarkable cycling stability over 320,000 cycles. The electron hopping along the Mn-N-Zn bridge is stimulated via a spin exchange mechanism. This process broadens the Mn 3d band width and enhances the metallic character of the catalyst, thus facilitating charge transfer between the catalysts and reaction intermediates. Additionally, the increased electron occupancy within the d-orbital of Zn elevates Zn's d-band center, thereby enhancing chemical interactions between MnZn-NC and I-based species. Furthermore, our mechanism demonstrates potential applicability to other Metal-Zn-NC DACs with spin-polarized atoms. Our work elucidates a clear mechanistic understanding of diatomic catalysts and provides new insights into catalyst design for AZIBs.
人们对开发用于高性能水系锌碘电池(AZIBs)的可逆碘转化反应催化剂的兴趣与日俱增。虽然双原子催化剂(DACs)由于能够促进协同电荷相互作用,在各种催化反应中已展现出卓越性能,但其在AZIBs中的应用仍未得到探索。在此,我们首次展示了一种双原子催化剂,它由锚定在氮掺杂碳基质(MnZn-NC)上的锰-锌双原子组成,用于碘负载,从而得到一种高性能的AZIB,在1 A g下容量为224 mAh g,并且在超过320,000次循环中具有出色的循环稳定性。沿着Mn-N-Zn桥的电子跳跃通过自旋交换机制被激发。这个过程拓宽了锰的3d带宽并增强了催化剂的金属特性,从而促进了催化剂与反应中间体之间的电荷转移。此外,锌的d轨道内电子占据的增加提高了锌的d带中心,从而增强了MnZn-NC与碘基物种之间的化学相互作用。此外,我们的机理证明了对其他具有自旋极化原子的金属-锌-氮掺杂碳双原子催化剂具有潜在适用性。我们的工作阐明了对双原子催化剂的清晰机理理解,并为AZIBs的催化剂设计提供了新的见解。