Engineering (Ni, Co, Mn) Se nanoarrays with 3D-Printed wave-structure carbon-rich lattice towards ultrahigh-capacity, complex-stress and all-climate energy storage

CARBON(2022)

引用 15|浏览4
暂无评分
摘要
Energy storage capacity and environmental adaptability as the two important elements of energy storage devices towards an intelligent Internet of things era, the two often do not co-existence. The continuous exploration of advanced multifunctional electrodes is of great significance to achieve balance between superior capacity and complex service environment adaptability. Notably, it still remains a great challenge to realize high capacity under extreme complex stress and climate environments. Herein, coralline-like (Ni, Co, Mn) Se nanoarrays were synthesized on highly-conductive 3D-printed wave-structure carbon-rich periodic lattices as multitasking free-standing, binder and current collector-free electrodes towards editable ultrahigh-capacity, complex-stress and all-climate energy storage. As expected, the as-prepared wave-structure electrodes exhibit a combination of editable ultrahigh capacitive performance (5.6-7.8 F cm(-2) at 1 mA cm(-2)), superb mechanical resistance (up to 260 MPa) and wide climate compliance (temperature: from -20 to 85 degrees C; humidity: from 20 to 85% RH). More impressively, such a multipurpose device also demonstrates a record-high areal energy density of 260 mu Wh cm(-2), and an ultralong lifespan even under extreme conditions of 85 degrees C & 85% RH & 3 MPa. This strategy opens up novel avenues to explore various bespoke multifunctional integrated devices and multiscale structural materials for future smart life. (C) 2021 Elsevier Ltd. All rights reserved.
更多
查看译文
关键词
3D printing, Wave-structure carbon-rich lattice, Superb mechanical strength, High-density energy storage, All-climate adaptability
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要