| Literature DB >> 31588653 |
Qinghe Zhao1, Xin Chen1, Ziqi Wang1, Luyi Yang1, Runzhi Qin1, Jinlong Yang1, Yongli Song1, Shouxiang Ding1, Mouyi Weng1, Weiyuan Huang1, Jiajie Liu1, Wenguang Zhao1, Guoyu Qian1, Kai Yang1, Yanhui Cui1, Haibiao Chen1, Feng Pan1.
Abstract
Aqueous Zn-MnO2 batteries using mild electrolyte show great potential in large-scale energy storage (LSES) application, due to high safety and low cost. However, structure collapse of manganese oxides upon cycling caused by the conversion mechanism (e.g., from tunnel to layer structures for α-, β-, and γ-phases) is one of the most urgent issues plaguing its practical applications. Herein, to avoid the phase conversion issue and enhance battery performance, a structurally robust novel phase of manganese oxide MnO2 H0.16 (H2 O)0.27 (MON) nanosheet with thickness of ≈2.5 nm is designed and synthesized as a promising cathode material, in which a nanosheet structure combined with a novel H+ /Zn2+ synergistic intercalation mechanism is demonstrated and evidenced. Accordingly, a high-performance Zn/MON cell is achieved, showing a high energy density of ≈228.5 Wh kg-1 , impressive cyclability with capacity retention of 96% at 0.5 C after 300 cycles, as well as exhibiting rate performance of 115.1 mAh g-1 at current rate of 10 C. To the best current knowledge, this H+ /Zn2+ synergistic intercalation mechanism is first reported in an aqueous battery system, which opens a new opportunity for development of high-performance aqueous Zn ion batteries for LSES.Entities:
Keywords: H+/Zn2+ synergistic intercalation; aqueous Zn batteries; cycling performance; manganite nanosheets
Year: 2019 PMID: 31588653 DOI: 10.1002/smll.201904545
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281