电化学
电极
离子
电子转移
选择性
化学物理
氧化还原
分子
化学
电子
钠离子电池
材料科学
纳米技术
物理
无机化学
光化学
催化作用
法拉第效率
物理化学
量子力学
生物化学
有机化学
作者
Yaojie Lei,Xinxin Lü,Hideki Yoshikawa,Daiju Matsumura,Yuhang Fan,Lingfei Zhao,Jiayang Li,Shijian Wang,Qinfen Gu,Huan Liu,Shi Xue Dou,Devaraj Shanmukaraj,Teófilo Rojo,Wei‐Hong Lai,Michel Armand,Yunxiao Wang,Guoxiu Wang
标识
DOI:10.1038/s41467-024-47628-3
摘要
Abstract The effective flow of electrons through bulk electrodes is crucial for achieving high-performance batteries, although the poor conductivity of homocyclic sulfur molecules results in high barriers against the passage of electrons through electrode structures. This phenomenon causes incomplete reactions and the formation of metastable products. To enhance the performance of the electrode, it is important to place substitutable electrification units to accelerate the cleavage of sulfur molecules and increase the selectivity of stable products during charging and discharging. Herein, we develop a single-atom-charging strategy to address the electron transport issues in bulk sulfur electrodes. The establishment of the synergistic interaction between the adsorption model and electronic transfer helps us achieve a high level of selectivity towards the desirable short-chain sodium polysulfides during the practical battery test. These finding indicates that the atomic manganese sites have an enhanced ability to capture and donate electrons. Additionally, the charge transfer process facilitates the rearrangement of sodium ions, thereby accelerating the kinetics of the sodium ions through the electrostatic force. These combined effects improve pathway selectivity and conversion to stable products during the redox process, leading to superior electrochemical performance for room temperature sodium-sulfur batteries.
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