Department of Textile Engineering, Chemistry and Science, North Carolina State University , Raleigh, North Carolina 27606, United States.
ACS Appl Mater Interfaces. 2017 Jul 26;9(29):24568-24576. doi: 10.1021/acsami.7b05982. Epub 2017 Jul 14.
One-dimensional flexible fiber supercapacitors (FSCs) have attracted great interest as promising energy-storage units that can be seamlessly incorporated into textiles via weaving, knitting, or braiding. The major challenges in this field are to develop tougher and more efficient FSCs with a relatively easy and scalable process. Here, we demonstrate a wet-spinning process to produce graphene oxide (GO) fibers from GO dispersions in N-methyl-2-pyrrolidone (NMP), with ethyl acetate as the coagulant. Upon chemical reduction of GO, the resulting NMP-based reduced GO (rGO) fibers (rGO@NMP-Fs) are twice as high in the surface area and toughness but comparable in tensile strength and conductivity as that of the water-based rGO fibers (rGO@HO-Fs). When assembled into parallel FSCs, rGO@NMP-F-based supercapacitors (rGO@NMP-FSCs) offered a specific capacitance of 196.7 F cm (147.5 mF cm), five times higher than that of rGO@HO-F-based supercapacitors (rGO@HO-FSCs) and also higher than most existing wet-spun rGO-FSCs, as well as those FSCs built with metal wires, graphene/carbon nanotube (CNT) fibers, or even pseudocapacitive materials. In addition, our rGO@NMP-FSCs can provide good bending and cycling stability. The energy density of our rGO@NMP-FSCs reaches ca. 6.8 mWh cm, comparable to that of a Li thin-film battery (4 V/500 μAh).
一维柔性纤维超级电容器(FSCs)作为有前途的储能单元,通过编织、针织或编织等方式可无缝集成到纺织品中,因此受到了极大的关注。该领域的主要挑战是开发更坚韧、更高效的 FSCs,且工艺相对简单、可扩展。在此,我们展示了一种湿法纺丝工艺,可从 N-甲基-2-吡咯烷酮(NMP)中的氧化石墨烯(GO)分散体中生产 GO 纤维,乙酸乙酯作为凝固剂。GO 经化学还原后,所得的 NMP 基还原氧化石墨烯(rGO)纤维(rGO@NMP-Fs)的比表面积和韧性提高了一倍,但拉伸强度和电导率与基于水的 rGO 纤维(rGO@HO-Fs)相当。当组装成平行 FSCs 时,基于 rGO@NMP-F 的超级电容器(rGO@NMP-FSCs)的比电容为 196.7 F cm(147.5 mF cm),是基于 rGO@HO-F 的超级电容器的 5 倍,也高于大多数现有的湿法纺丝 rGO-FSCs 以及基于金属丝、石墨烯/碳纳米管(CNT)纤维甚至赝电容材料的 FSCs。此外,我们的 rGO@NMP-FSCs 可提供良好的弯曲和循环稳定性。我们的 rGO@NMP-FSCs 的能量密度约为 6.8 mWh cm,与锂薄膜电池(4 V/500 μAh)相当。