Xu Shanshan, Yang Hongxia, Wang Kaixi, Wang Bo, Xu Qun
College of Materials Science and Engineering, Zhengzhou University, Zhengzhou 450052, China.
Phys Chem Chem Phys. 2014 Apr 28;16(16):7350-7. doi: 10.1039/c3cp54957g.
In this paper, supercritical carbon dioxide (SC CO2) was first reported to help prepare unique flexible free-standing graphene oxide/nanofiber (GC) films. A novel hierarchical superior electrode material with polypyrrole (PPy) deposited on GO/CNF-SC (GC-SC) films was prepared via an in situ polymerization process. Our experimental results indicate that SC CO2 can not only enlarge the space between GO sheets but also improve the conductivity of the films. The electrochemical measurements show that the as-obtained PPy-coated GC-SC products display remarkably higher capacitive properties than pristine GC/PPy products as electrode materials. Excellent rate performance and stable capacitance retention (89% after 5000 cycles) were observed during the continuous charge-discharge cycles, which verify that SC CO2 provides a convenient route to the scalable production of hierarchical GO/CNF/PPy films for potential application in supercapacitors.
在本文中,首次报道了超临界二氧化碳(SC CO2)有助于制备独特的柔性自支撑氧化石墨烯/纳米纤维(GC)薄膜。通过原位聚合工艺制备了一种新型的具有在GO/CNF-SC(GC-SC)薄膜上沉积聚吡咯(PPy)的分级优质电极材料。我们的实验结果表明,SC CO2不仅可以扩大氧化石墨烯片层之间的间距,还能提高薄膜的导电性。电化学测量表明,所制备的涂覆有PPy的GC-SC产品作为电极材料,其电容性能明显高于原始的GC/PPy产品。在连续充放电循环过程中观察到了优异的倍率性能和稳定的电容保持率(5000次循环后为89%),这证实了SC CO2为大规模生产用于超级电容器潜在应用的分级GO/CNF/PPy薄膜提供了一条便捷途径。