Zhu Yuanyuan, Zheng Shuanghao, Qin Jieqiong, Ma Jiaxin, Das Pratteek, Zhou Feng, Wu Zhong-Shuai
State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China.
Key Laboratory of Spin Electron and Nanomaterials of Anhui Higher Education Institutes, Suzhou University, Suzhou 234000, China.
Fundam Res. 2022 Apr 22;4(2):307-314. doi: 10.1016/j.fmre.2022.03.021. eCollection 2024 Mar.
Two-dimensional MXenes are key high-capacitance electrode materials for micro-supercapacitors (MSCs) catering to integrated microsystems. However, the narrow electrochemical voltage windows of conventional aqueous electrolytes (≤ 1.23 V) and symmetric MXene MSCs (typically ≤ 0.6 V) substantially limit their output voltage and energy density. Highly concentrated aqueous electrolytes exhibit lower water molecule activity, which inhibits water splitting and consequently widens the operating voltage window. Herein, we report ultrahigh-voltage aqueous planar asymmetric MSCs (AMSCs) based on a highly concentrated LiCl-gel quasi-solid-state electrolyte with MXene (TiCT ) as the negative electrode and MnO nanosheets as the positive electrode (MXene//MnO-AMSCs). The MXene//MnO-AMSCs exhibit a high voltage of up to 2.4 V, attaining an ultrahigh volumetric energy density of 53 mWh cm. Furthermore, the in-plane geometry and the quasi-solid-state electrolyte enabled excellent mechanical flexibility and performance uniformity in the serially/parallel connected packs of our AMSCs. Notably, the MXene//MnO-AMSC-based integrated microsystem, in conjunction with solar cells and consumer electronics, could efficiently realize simultaneous energy harvesting, storage, and conversion. The findings of this study provide insights for constructing high-voltage aqueous MXene-based AMSCs as safe and self-sufficient micropower sources in smart integrated microsystems.
二维MXenes是适用于集成微系统的微型超级电容器(MSCs)的关键高电容电极材料。然而,传统水性电解质狭窄的电化学电压窗口(≤1.23 V)以及对称MXene MSCs(通常≤0.6 V)极大地限制了它们的输出电压和能量密度。高浓度水性电解质表现出较低的水分子活性,这抑制了水分解,从而拓宽了工作电压窗口。在此,我们报道了基于高浓度LiCl-凝胶准固态电解质的超高电压水性平面不对称MSCs(AMSCs),其以MXene(TiCT )为负极,MnO纳米片为正极(MXene//MnO-AMSCs)。MXene//MnO-AMSCs展现出高达2.4 V的高电压,实现了53 mWh cm的超高体积能量密度。此外,平面几何结构和准固态电解质使我们的AMSCs串联/并联电池组具有出色的机械柔韧性和性能均匀性。值得注意的是,基于MXene//MnO-AMSC的集成微系统,与太阳能电池和消费电子产品相结合,能够有效地实现能量同时采集、存储和转换。本研究结果为在智能集成微系统中构建基于MXene的高电压水性AMSCs作为安全且自给自足的微电源提供了见解。