Zn2+-blocking effects of a proton-rich polyaniline layer enable Ah-level Zn–MnO2 batteries

Abstract

Low-cost and high-theoretical capacity manganese dioxide (MnO2) has garnered great attention in developing aqueous Zn–MnO2 batteries (AZMBs). However, achieving high-capacity and long-cycle-life AZMBs remains challenging owing to “dead” MnO2 formation and irreversible Zn2+ insertion. Herein, we introduced polyaniline (PANI) to provide a proton-rich micro-environment for organic modified MnO2 (denoted as P-MnO2) as an effective cathode with carbon nanotubes as conductive networks. The P-MnO2 cathode exhibits a remarkable capacity of 510 mAh g−1 at 0.2 A g−1 and a capacity retention of 87% over 14 000 cycles at 5 A g−1. Even under a high loading of 23.5 mg cm−2, the as-constructed Zn//P-MnO2 pouch cell demonstrates a capacity of 275 mAh after 110 cycles at 0.73 mA cm−2. Its maximum capacity could even reach up to 1.5 Ah at 0.15 mA cm−2, with a coulombic efficiency of 99.1%. Elemental mapping reveals that proton conductive PANI acts as a “Zn2+ filter”, selectively blocking Zn2+ insertion while facilitating proton transport, thereby preventing irreversible ZnMn2O4 generation and stimulating deposited MnO2 reuse. Combined in/ex situ characterizations and theoretical calculations confirm the formation of interfacial Mn–N bonds and their functions to improve the structural robustness of the P-MnO2 cathode, demonstrating the great potential of organic–inorganic interface engineering for advanced AZMBs.

Graphical abstract: Zn2+-blocking effects of a proton-rich polyaniline layer enable Ah-level Zn–MnO2 batteries

Supplementary files

Article information

Article type
Paper
Submitted
21 Apr 2025
Accepted
17 Jun 2025
First published
16 Jul 2025

Energy Environ. Sci., 2025, Advance Article

Zn2+-blocking effects of a proton-rich polyaniline layer enable Ah-level Zn–MnO2 batteries

Q. Li, M. Xu, S. Wei, A. Kumar, K. K. Abdalla, Y. Wang, L. Yu, M. Liu, X. Jin, J. Li, L. Song, Y. Zhao and X. Sun, Energy Environ. Sci., 2025, Advance Article , DOI: 10.1039/D5EE02213D

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