材料科学
异质结
锂(药物)
电场
自行车
调制(音乐)
电荷(物理)
领域(数学)
工程物理
纳米技术
凝聚态物理
光电子学
物理
量子力学
历史
纯数学
考古
内分泌学
医学
数学
声学
作者
Juanjuan Feng,Zhihao Li,Lingwen Zhao,Yujie Zong,Hao Sun,Bin Liu,Liangliang Li,Chunlei Wang,Hongchao Wang
标识
DOI:10.1002/adfm.202504803
摘要
Abstract To address the slow kinetics of Li 2 O 2 formation and the unwanted effects of the by‐product Li 2 CO 3 in lithium‐air batteries (LABs), it is crucial to develop high‐efficiency and stable catalytic materials. This study presents the application of coherent Bi 2 Te 3 @Sb 2 Te 3 heterostructures with exposed (001) facets as a catalyst in LABs. Theoretical analysis reveals that the difference in work function between Bi 2 Te 3 and Sb 2 Te 3 leads to electron rearrangement at the interfaces, forming a built‐in electric field. This results in an asymmetric charge distribution of Te atoms, which enhances the adsorption capacity of intermediate products and promotes the growth of discharge products. Furthermore, it boosts charge transfer between the adsorbed molecules and the catalytic heterostructure, increasing the overall electrical conductivity of the adsorption system and facilitating the subsequent reaction process. Additionally, the low lattice mismatch between Bi 2 Te 3 and Sb 2 Te 3 in the coherent heterojunction enhances the structural stability of the Bi 2 Te 3 @Sb 2 Te 3 heterostructure, ensuring stable cycling for LABs. LABs with a Bi 2 Te 3 @Sb 2 Te 3 ‐based cathode achieve 635 cycles in pure oxygen and 537 cycles in air ambient. To this end, this work provides insights into facilitating the applications of coherent heterojunctions with a built‐in potential and charge modulation as a highly stable catalyst for LABs.
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