Jiao Shangqing, Zhou Aiguo, Wu Mingzai, Hu Haibo
School of Physics and Materials Science Anhui University Hefei 230601 China.
School of Materials Science and Engineering Henan Polytechnic University Jiaozuo Henan 454000 China.
Adv Sci (Weinh). 2019 Apr 12;6(12):1900529. doi: 10.1002/advs.201900529. eCollection 2019 Jun 19.
Stretchable micropower sources with high energy density and stability under repeated tensile deformation are key components of flexible/wearable microelectronics. Herein, through the combination of strain engineering and modulation of the interlayer spacing, freestanding and lightweight MXene/bacterial cellulose (BC) composite papers with excellent mechanical stability and a high electrochemical performance are first designed and prepared via a facile all-solution-based paper-making process. Following a simple laser-cutting kirigami patterning process, bendable, twistable, and stretchable all-solid-state micro-supercapacitor arrays (MSCAs) are further fabricated. As expected, benefiting from the high-performance MXene/BC composite electrodes and rational sectional structural design, the resulting kirigami MSCAs exhibit a high areal capacitance of 111.5 mF cm, and are stable upon stretching of up to 100% elongation, and in bent or twisted states. The demonstrated combination of an all-solution-based MXene/BC composite paper-making method and an easily manipulated laser-cutting kirigami patterning technique enables the fabrication of MXene-based deformable all-solid-state planar MSCAs in a simple and efficient manner while achieving excellent areal performance metrics and high stretchability, making them promising micropower sources that are compatible with flexible/wearable microelectronics.
具有高能量密度且在反复拉伸变形下保持稳定的可拉伸微电源是柔性/可穿戴微电子设备的关键组件。在此,通过应变工程与层间距调制相结合,首次通过简便的全溶液基造纸工艺设计并制备出具有优异机械稳定性和高电化学性能的独立且轻质的MXene/细菌纤维素(BC)复合纸。经过简单的激光切割折纸图案化工艺,进一步制造出可弯曲、可扭曲和可拉伸的全固态微型超级电容器阵列(MSCA)。正如预期的那样,受益于高性能的MXene/BC复合电极和合理的截面结构设计,所得的折纸MSCA表现出111.5 mF/cm²的高面积电容,并且在高达100%伸长率的拉伸以及弯曲或扭曲状态下都保持稳定。所展示的全溶液基MXene/BC复合造纸方法与易于操作的激光切割折纸图案化技术的结合,能够以简单高效的方式制造基于MXene的可变形全固态平面MSCA,同时实现优异的面积性能指标和高拉伸性,使其成为与柔性/可穿戴微电子设备兼容的有前景的微电源。