Metal pre-intercalation promotes water-mediated proton-coupled electron transfer in layered δ-MnO2 for aqueous pseudocapacitive energy storage
- 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
2026-07-28
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.