假电容器
电容
材料科学
质子
插层(化学)
电化学
过渡金属
储能
超级电容器
水溶液
金属
化学工程
化学物理
电子转移
质子输运
纳米结构
纳米技术
无机化学
电荷(物理)
电子传输链
锰铁矿
假电容
电子
质子耦合电子转移
离子运输机
作者
Huajie Ze,Yongkwon Song,Xijun Wang,Weiyan Ni,Xiaobing Hu,Jianan Erick Huang,Zeyan Liu,Hengzhou Liu,Xiao-Yan Li,Randall Q. Snurr,Mark C. Hersam,Ke Xie,Edward H. Sargent
标识
DOI:10.1038/s41467-026-76022-4
摘要
Abstract The charge storage capacitance of δ-MnO 2 -based pseudocapacitors stems from a combination of bulk cation intercalation/deintercalation and surface proton chemisorption/desorption. Here, we investigate the mechanistic origins of the enhanced capacitance in δ-MnO 2 with pre-intercalated Cu 2+ . To this end, we synthesize Au-core/δ-MnO 2 -shell nanostructures with and without Cu 2+ pre-intercalation, enabling real-time in situ spectroscopic monitoring of structure-function relationships during electrochemical cycling. Transition metal pre-intercalation preserves interlayer-confined water, which in turn supports proton-coupled charge storage via the reversible reaction of MnO 2 + H 2 O + e - ⇌ MnOOH + OH - . This confined water forms a hydrogen-bonded network that lowers the energy barrier for proton transport within the interlayer space. Similar mechanistic transition is also evident in δ-MnO 2 systems pre-intercalated with other transition metal ions, such as Co 2+ and Mg 2+ . By tuning the MnO 2 shell thickness, we decouple the relative contributions of proton- and cation-driven processes, revealing that proton intercalation delivers a markedly higher specific capacitance than cation intercalation. Electrolyte-dependent studies further reveal that Cu 2+ pre-intercalation promotes OH - transport within the interlayer space while preserving proton accessibility at active sites. These findings suggest that proton-coupled transport may offer further increases in charge storage performance in pseudocapacitors.
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