posted on 2025-01-18, 03:29authored byLei Li, Minghao Hua, Jiafeng Li, Peng Zhang, Yingjian Nie, Peng Wang, Xiaohang Lin, Zhiwei Zhang, Rutao Wang, Xiaoli Ge, Yuguang C. Li, Longwei Yin
To achieve a long cycle life and high-capacity performance
for
Li-O<sub>2</sub> batteries, it is critical to rationally modulate
the formation and decomposition pathway of the discharge product Li<sub>2</sub>O<sub>2</sub>. Herein, we designed a highly efficient catalyst
containing dual catalytic active sites of Pt single atoms (Pt<sub>SAs</sub>) paired with high-entropy alloy (HEA) nanoparticles for
oxygen reduction reaction (ORR) in Li-O<sub>2</sub> batteries. HEA
is designed with a moderate d-band center to enhance the surface adsorbed
LiO<sub>2</sub> intermediate (LiO<sub>2</sub>(ads)), while Pt<sub>SAs</sub> active sites exhibit weak adsorption energy and promote
the soluble LiO<sub>2</sub> pathway (LiO<sub>2</sub>(sol)). An optimal
ratio between LiO<sub>2</sub>(ads) and LiO<sub>2</sub>(sol) pathway
was realized to modulate Pt<sub>SAs</sub> and HEA active sites via
regulating the etching conditions in the dealloying synthesis process
for obtaining high-performance Li-O<sub>2</sub> batteries. The ORR
kinetics are accelerated, and the parasitic reactions are restrained
in the Li-O<sub>2</sub> batteries. As a result, Li-O<sub>2</sub> batteries
based on the HEA@Pt-Pt<sub>SAs</sub> catalyst demonstrate an ultralow
overpotential (0.3 V) and ultralong cycling performance of 470 cycles
at 1000 mA g<sup>–1</sup>. The insights into the synthetic
strategies and the importance of balancing the ORR pathways will offer
guidance for devising multisite synergistic catalysts to accelerate
redox-reaction kinetics for Li-O<sub>2</sub> batteries.