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用于柔性平面超级电容器的激光诱导石墨烯-MXene复合电极的可编程图案化制造

Programmable patterning fabrication of laser-induced graphene-MXene composite electrodes for flexible planar supercapacitors.

作者信息

Fu Xiu-Yan, Zhang Yu-Yin, Ma Chang-Jing, Jiang Hao-Bo

出版信息

Opt Lett. 2022 Mar 15;47(6):1502-1505. doi: 10.1364/OL.447221.

DOI:10.1364/OL.447221
PMID:35290349
Abstract

The development of laser-induced graphene (LIG) has been regarded as an effective method for satisfying the substantial requirements for the scalable fabrication of graphene-based electrode materials. Despite the rapid progress in fabricating LIG-based supercapacitors, the incompatibility between material modification and the device planarization process remains a challenging problem to be resolved. In this study, we demonstrate the attributes of novel LIG-MXene (LIG-M) composite electrodes for flexible planar supercapacitors fabricated by direct laser writing (DLW) of MXene-coated polyimide (PI) films. During the DLW process, PI was transformed into LIG, while MXene was simultaneously introduced to produce LIG-M. Combining the porous structure of LIG and the high conductivity of MXene, the as-prepared LIG-M-based supercapacitor exhibited superior specific capacitance, five times higher than that of the pristine LIG-based supercapacitor. The enhanced capacitance of LIG-M also benefited from the pseudocapacitive performance of the abundant active sites offered by MXene. Moreover, the planar LIG-M-based device delivered excellent cycling stability and flexibility. No significant performance degradation was observed after bending tests. Arbitrary electrode patterns could be obtained using the DLW technique. The patterned in-series LIG-M supercapacitor was able to power a light-emitting diode, demonstrating significant potential for practical applications.

摘要

激光诱导石墨烯(LIG)的发展被视为满足大规模制备基于石墨烯的电极材料大量需求的有效方法。尽管在制造基于LIG的超级电容器方面取得了快速进展,但材料改性与器件平面化过程之间的不相容性仍然是一个有待解决的具有挑战性的问题。在本研究中,我们展示了通过对涂覆有MXene的聚酰亚胺(PI)薄膜进行直接激光写入(DLW)制备的用于柔性平面超级电容器的新型LIG-MXene(LIG-M)复合电极的特性。在DLW过程中,PI转变为LIG,同时引入MXene以制备LIG-M。结合LIG的多孔结构和MXene的高导电性,所制备的基于LIG-M的超级电容器表现出优异的比电容,比原始基于LIG的超级电容器高五倍。LIG-M电容的增强还受益于MXene提供的丰富活性位点的赝电容性能。此外,基于平面LIG-M的器件具有出色的循环稳定性和柔韧性。弯曲测试后未观察到明显的性能下降。使用DLW技术可以获得任意的电极图案。图案化的串联LIG-M超级电容器能够为发光二极管供电,显示出巨大的实际应用潜力。

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