Immobile polyanionic backbone enables a 900-μm-thick electrode for compact energy storage with unprecedented areal capacitance

Author:

Li Haoran12,Wu Zhitan123,Liu Xiaochen1,Lu Haotian123,Zhang Weichao12,Li Fangbing12,Yu Hongyuan12,Yu Jinyang12,Zhang Boya12,Xiong Zhenxin12,Tao Ying12,Yang Quan-Hong123ORCID

Affiliation:

1. Nanoyang Group, Tianjin Key Laboratory of Advanced Carbon and Electrochemical Energy Storage, School of Chemical Engineering and Technology, National Industry-Education Integration Platform of Energy Storage, and Collaborative Innovation Center of Chemical Science and Engineering, Tianjin University , Tianjin 300072 , China

2. Haihe Laboratory of Sustainable Chemical Transformations , Tianjin 300192 , China

3. Joint School of the National University of Singapore and Tianjin University, International Campus of Tianjin University , Fuzhou 350207 , China

Abstract

ABSTRACT Thickening of electrodes is crucial for maximizing the proportion of active components and thus improving the energy density of practical energy storage cells. Nevertheless, trade-offs between electrode thickness and electrochemical performance persist because of the considerably increased ion transport resistance of thick electrodes. Herein, we propose accelerating ion transport through thick and dense electrodes by establishing an immobile polyanionic backbone within the electrode pores; and as a proof of concept, gel polyacrylic electrolytes as such a backbone are in situ synthesized for supercapacitors. During charge and discharge, protons rapidly hop among RCOO− sites for oriented transport, fundamentally reducing the effects of electrode tortuosity and polarization resulting from concentration gradients. Consequently, nearly constant ion transport resistance per unit thickness is achieved, even in the case of a 900-μm-thick dense electrode, leading to unprecedented areal capacitances of 14.85 F cm−2 at 1 mA cm−2 and 4.26 F cm−2 at 100 mA cm−2. This study provides an efficient method for accelerating ion transport through thick and dense electrodes, indicating a significant solution for achieving high energy density in energy storage devices, including but not limited to supercapacitors.

Funder

National Key Research and Development Program of China

Fundamental Research Funds for the Central Universities

Publisher

Oxford University Press (OUP)

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