锂(药物)
溶剂化
吸附
氧气
电极
阴极
动力学
化学
化学工程
材料科学
纳米技术
无机化学
物理化学
离子
有机化学
医学
物理
量子力学
工程类
内分泌学
作者
Yuying Gao,Zelin Zhao,Mingjun Zhu,Ming Li,Xiaorong Zhou,Junsheng Li,Jinping Liu,Liang Xiao
标识
DOI:10.1016/j.electacta.2025.146244
摘要
The donor number (DN) of electrolyte solvents was reported to be the key factor determining LiO 2 intermediate solvation and lithium−oxygen battery (LOB) kinetics. In low-DN solvents, LiO 2 tends to adsorb onto cathode surfaces and undergoes surface-mediated reduction to Li 2 O 2 , while in high-DN solvents, LiO 2 is preferentially solvated and subsequently disproportionates to Li 2 O 2 . However, prior studies overlooked a critical issue: whether cathode surfaces can provide sufficiently strong adsorption for LiO 2 , particularly in low-DN solvents. Herein, this study proposes MnO 2 , NiO, and Co 3 O 4 nanoarray models alongside carbon nanotubes to simultaneously investigate LiO 2 adsorption on different cathodes and solvent DN effects under consistent cathode architectures. Experimental and theoretical analyses reveal that the discharge of oxygen cathodes involves a competition between the solvation of LiO 2 intermediates and their adsorption on cathodes. When an oxygen cathode has strong adsorption of LiO 2 , the adsorption and solvation compete with each other, leading to a solution mechanism in high-DN solvents and a surface mechanism in low-DN solvents. Conversely, if an oxygen cathode shows weak adsorption of LiO 2 , a solution mechanism predominately occurs, regardless of whether in high- or low-DN solvents. Thus, when evaluating solvent effects on LOB kinetics, the adsorption capacity of cathode materials must be fully considered.
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