Department of Chemical Engineering and Applied Chemistry, University of Toronto, 200 College Street, Toronto, ON, M5S 3E5, Canada.
Department of Materials Science and Engineering, University of Toronto, 184 College Street, Toronto, ON, M5S 3E5, Canada.
ChemSusChem. 2021 Feb 18;14(4):1057-1067. doi: 10.1002/cssc.202002558. Epub 2020 Dec 9.
The increasing demand for wearable electronics has driven the development of supercapacitor electrode materials toward enhanced energy density, while being mechanically strong, flexible, as well as environmentally friendly and low-cost. Taking advantage of faradaic reaction of quinone groups in natural lignin that is covalently bound to the high-strength cellulose nanofibrils, the fabrication of a novel class of mechanically strong and flexible thin film electrodes with high energy storage performance is reported. The electrodes were made by growing polyaniline (PANI) on flexible films composed of lignin-containing cellulose nanofibrils (LCNF) and reduced graphene oxide (rGO) nanosheets at various loading levels. The highest specific capacitance was observed for the LCNF/rGO/PANI electrode with 20 wt% rGO nanosheets (475 F g at 10 mV s and 733 F g at 1 mV s ), which represented a 68 % improvement as compared to a similar electrode made without lignin. In addition, the LCNF/rGO(20)/PANI electrode demonstrated high rate performance and cycle life (87 % after 5000 cycles). These results indicated that LCNF functioned as an electrochemically active multifunctional component to impart the composite electrode with mechanical strength and flexibility and enhanced overall energy storage performance. LCNF/rGO(20)/PANI electrode was further integrated in a flexible supercapacitor device, revealing the excellent promise of LCNF for fabrication of advanced flexible electrodes with reduced cost and environmental footprint and enhanced mechanical and energy storage performances.
对可穿戴电子产品需求的不断增加推动了超级电容器电极材料的发展,以提高能量密度,同时保持机械强度、柔韧性,以及环境友好性和低成本。利用天然木质素中醌基团与高强度纤维素纳米纤维共价结合的法拉第反应,制备了具有高储能性能的新型机械强度高、柔韧性好的薄膜电极。这些电极是通过在含有木质素的纤维素纳米纤维(LCNF)和还原氧化石墨烯(rGO)纳米片组成的柔性薄膜上生长聚苯胺(PANI)来制备的,其中 rGO 纳米片的负载水平不同。在含有 20wt%rGO 纳米片的 LCNF/rGO/PANI 电极中观察到最高的比电容(在 10mV/s 时为 475F/g,在 1mV/s 时为 733F/g),与没有木质素的类似电极相比,提高了 68%。此外,LCNF/rGO(20)/PANI 电极还表现出高倍率性能和循环寿命(循环 5000 次后保持 87%)。这些结果表明,LCNF 作为一种电化学活性的多功能组分,赋予复合电极机械强度和柔韧性,并提高了整体储能性能。将 LCNF/rGO(20)/PANI 电极进一步集成到柔性超级电容器装置中,进一步证明了 LCNF 在制造具有降低成本和环境足迹、增强机械性能和储能性能的先进柔性电极方面具有广阔的应用前景。