过电位
化学
磷化物
电化学
阴极
电子转移
电池(电)
催化作用
储能
钴
化学工程
法拉第效率
纳米技术
光化学
无机化学
电子
反键分子轨道
电极
吸附
氧化还原
电化学动力学
钾离子电池
作者
Xing-Yuan Du,LI Jian-jun,Li−Na Song,Lu Feng,Shuang Liang,Yue Wang,Yonglei An,Ji-Jing Xu
摘要
Lithium-nitrogen (Li-N2) battery represents an emerging electrochemical technology for energy storage and N2 fixation. However, its practical implementation is hindered by the inherent electrochemical inertness of N2 and the inferior catalytic activity of conventional cathode materials. In this study, we report a defective cobalt phosphide (CoPv) photoelectrocatalytic cathode featuring high-spin states, engineered through strategic introduction of phosphorus vacancies. The operational mechanism involves a sophisticated synergy, where P vacancies serve as N2 adsorption sites, while spin-polarized electrons from high-spin-state Co sites facilitate electron transfer to adsorbed N2. Under illumination, photoexcited electrons are directly injected into the π* antibonding orbital of N2 via the P vacancies, significantly enhancing nitrogen activation and accelerating the nitrogen reduction reaction (NRR) kinetics during discharge. Furthermore, light also facilitates the formation of a uniform film-like discharge product, enhancing nitrogen evolution reaction (NER) kinetics. Thus, the photoassisted Li-N2 battery demonstrates exceptional performance metrics: a high discharge specific capacity of 2.71 mAh cm-2, excellent cyclic stability (∼900 h), and an ultralow overpotential of 1.3 V, the lowest overpotential reported to date. Significant nitrogen fixation is achieved in the photoassisted process, offering crucial mechanistic insights into photoassisted Li-N2 batteries and suggesting an innovative approach to enhance Li-N2 battery technology toward energy storage applications.
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