Kumar Sunil, Kang Dongwoon, Hong Hyeryeon, Rehman Malik Abdul, Lee Yeon-Jae, Lee Naesung, Seo Yongho
Department of Nanotechnology and Advanced Materials Engineering, Sejong University Seoul 05006 South Korea
HMC, Sejong University Seoul 05006 South Korea.
RSC Adv. 2020 Nov 17;10(68):41837-41845. doi: 10.1039/d0ra05376g. eCollection 2020 Nov 11.
The effect of TiCT MXene etched at different temperatures (25 °C, 50 °C, and 80 °C) on the capacitance of supercapacitors without the use of conducting carbon-black or a binder was studied. The MXene etched using concentrated HCl acid (12 M)/LiF was used as an active electrode and Ni-foil as a current collector. It was observed that the elevated etching temperature facilitates the etching of the MAX phase and the exfoliation of MXene layers. However, this led to the formation of additional functional groups at the MXene surface as the temperature was increased to 80 °C. The specific capacitance of TiCT -based supercapacitors increased from 581 F g for MXene etched at 25 °C to 657 F g for those etched at 50 °C at the scan rate of 2 mV s. However, the specific capacitance reduced to 421 F g as the etching temperature was increased to 80 °C at the same scan rate. The supercapacitors based on MXenes etched at the intermediate temperature (50 °C) exhibited higher specific capacitance in a wide range of scan rate, symmetry in charge/discharge curves, high cyclic stability at a scan rate of 1000 mV s for up to 3000 cycles. The electrochemical impedance spectroscopy studies indicated low series resistance, reduced charge-transfer resistance, and decreased Warburg impedance for the supercapacitor based on the MXene etched at the intermediate temperature.
研究了在不同温度(25°C、50°C和80°C)下蚀刻的TiCT MXene在不使用导电炭黑或粘结剂的情况下对超级电容器电容的影响。使用浓盐酸(12M)/LiF蚀刻的MXene作为活性电极,镍箔作为集流体。观察到升高的蚀刻温度有助于MAX相的蚀刻和MXene层的剥落。然而,随着温度升高到80°C,这导致在MXene表面形成了额外的官能团。在2mV s的扫描速率下,基于TiCT的超级电容器的比电容从在25°C蚀刻的MXene的581F g增加到在50°C蚀刻的MXene的657F g。然而,在相同扫描速率下,随着蚀刻温度升高到80°C,比电容降低到421F g。基于在中间温度(50°C)蚀刻的MXene的超级电容器在很宽的扫描速率范围内表现出更高的比电容、充放电曲线对称、在1000mV s的扫描速率下高达3000次循环具有高循环稳定性。电化学阻抗谱研究表明,基于在中间温度蚀刻的MXene的超级电容器具有低串联电阻、降低的电荷转移电阻和降低的Warburg阻抗。