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Fabrication and electrochemical properties of flexible transparent supercapacitor electrode materials based on cellulose nanofibrils and reduced graphene oxide

机译:基于纤维素纳米纤维的柔性透明超级涂物电极材料的制造和电化学性能和氧化石墨烯氧化物

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In this research, flexible transparent supercapacitor electrode materials were fabricated using cellulose nanofibrils (CNFs) and reduced graphene oxide (RGO) via a layer-by-layer (LbL) self-assembly method. First, a transparent film was obtained by vacuum filtration of a CNF suspension, which was isolated from bamboo materials using a combination of 2,2,6,6-tetramethylpiperidin-1-oxyl radical catalytic oxidation and ultrasonic treatment. Subsequently, graphene oxide (GO) was deposited on the surface of the CNF film using Cu2+ as a cross-linking agent via the LbL self-assembly technique and then was reduced by L-ascorbic acid under mild reaction conditions. The degree of reduction of the GO on the CNF film surface was investigated by X-ray photoelectron spectroscopy (XPS), Raman spectroscopy (Raman), and Fourier transform infrared spectroscopy (FT-IR); concurrently, the effect of the number of self-assembly times on the transparency, mechanical properties, and conductivity was also evaluated. The XPS, Raman, and FT-IR spectral analyses proved that the CNFs/GO composite films were successfully reduced to CNFs/RGO composite films, of which the transparency and mechanical properties decreased with the increase in the number of self-assembly times, while the conductivity remarkably raised. Based on the analysis of the results, the CNFs/RGO composite film obtained after 18 self-assembly cycles exhibited excellent transparency, good tensile strength, and a high conductivity. Therefore, the CNFs/RGO composite film was selected to fabricate a supercapacitor electrode material, and the obtained supercapacitor displayed excellent electrochemical properties, in which the areal specific capacitance was 2.25 mF cm(-2) at a current density of 0.01 mA cm(-2) and the capacitance retention reached 97.3% after 1500 cycles. The presented strategy provides a good reference for the development of transparent and portable energy storage devices.
机译:在该研究中,使用纤维素纳米纤维(CNF)和通过层自组装方法(LBL)自组装方法,使用纤维素纳米纤维(CNF)和还原氧化物(RGO)制造柔性透明超级涂物电极材料。首先,通过使用2,2,6,6-四甲基哌啶-1-氧基自由基催化氧化和超声处理的组合从竹材中分离的CNF悬浮液获得透明膜。随后,通过LBL自组装技术使用Cu 2+作为交联剂将石墨烯氧化物(GO)沉积在CNF膜的表面上,然后在轻度反应条件下通过L-抗坏血酸减少。通过X射线光电子能谱(XPS),拉曼光谱(拉曼),傅里叶变换红外光谱(FT-IR)研究了去芯片表面的降低程度。同时,还评估了自组装时间对透明度,机械性能和电导率的影响。 XPS,拉曼和FT-IR光谱分析证明了CNFS / GO复合膜成功降低到CNFS / RGO复合膜,其中透明度和机械性能随着自组装时间的增加而降低,而导电性显着提高。基于结果的分析,18个自组装循环后获得的CNF / RGO复合膜表现出优异的透明度,良好的拉伸强度和高导电性。因此,选择CNFS / RGO复合膜以制造超级电容器电极材料,所得到的超级电容器显示出优异的电化学性质,其中由于电流密度为0.01 mA cm( - 2)在1500次循环后电容保留达到97.3%。呈现的策略为开发透明和便携式能量存储设备提供了良好的参考。

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