Bin Xiaoqing, Sheng Minhao, Kong Binshan, Luo Yijia, Xiao Jing, Que Wenxiu
Electronic Materials Research Laboratory, Key Laboratory of the Ministry of Education, International Center for Dielectric Research, Shaanxi Engineering Research Center of Advanced Energy Materials and Devices, School of Electronic Science and Engineering, Xi'an Jiaotong University, Xi'an 710049, People's Republic of China.
College of Physics and Electronic Engineering, Taishan University, Taian, Shandong 271000, People's Republic of China.
Nanoscale. 2024 Aug 15;16(32):15196-15207. doi: 10.1039/d4nr01826e.
MXenes represent a fascinating category of two-dimensional materials made up of transition metal carbides and nitrides, currently attracting significant research attention, especially in energy storage. However, the electrochemical properties of MXene materials with varying elemental compositions may exhibit significant differences. In order to optimally select types of MXenes that are more suitable for energy storage and explore their energy storage mechanisms, three kinds of different elemental compositions of delaminated MXenes (d-TiCT, d-MoTiCT, and d-VCT) were prepared by solid-phase synthesis, liquid-phase etching, and mechanical exfoliation method, successively. The obtained single-layer or few-layer MXene nanosheets were self-assembled into flexible free-standing film electrodes vacuum-assisted filtration, and the detailed material preparation and characterization can guide the synthesis of more MXenes. Furthermore, we conducted a comprehensive study on the effects of various aqueous electrolytes (3 M HSO, 3 M KOH, and 3 M NaSO) and temperatures (0 °C, 20 °C, and 40 °C) on their electrochemical performance. This work optimized the MXene types that are more suitable for electrochemical energy storage application (d-TiCT and d-VCT), and also found that the VCT MXene has excellent rate performance and long cycling performance, and has guiding significance for the development of MXene materials in energy storage. More significantly, the d-VCT MXene exhibits exceptional specific capacitance in both acidic and alkaline electrolytes, reaching 292.0 F g in 3 M HSO, the highest among the three types of MXenes, and 184.3 F g in 3 M KOH, far surpassing the performance of the d-MoTiCT and d-TiCT MXenes (less than 100 F g at 2 mV s). Furthermore, this reveals that H intercalation/deintercalation, showing pseudocapacitance characteristics, along with the large interlayer spacing play a vital role in energy storage for MXenes, and an asymmetric configuration is an effective means to improve the energy density of aqueous supercapacitors. The comparative analysis aims to enhance the understanding of MXene materials' potential in advanced energy storage systems.
MXenes是一类由过渡金属碳化物和氮化物组成的二维材料,极具吸引力,目前在储能领域引起了广泛的研究关注。然而,不同元素组成的MXene材料的电化学性能可能存在显著差异。为了优化选择更适合储能的MXene类型并探索其储能机制,依次通过固相合成、液相蚀刻和机械剥离法制备了三种不同元素组成的分层MXenes(d-TiCT、d-MoTiCT和d-VCT)。通过真空辅助过滤将获得的单层或几层MXene纳米片自组装成柔性独立膜电极,详细的材料制备和表征可为更多MXenes的合成提供指导。此外,我们全面研究了各种水性电解质(3 M HSO、3 M KOH和3 M NaSO)和温度(0°C、20°C和40°C)对其电化学性能的影响。这项工作优化了更适合电化学储能应用的MXene类型(d-TiCT和d-VCT),还发现VCT MXene具有优异的倍率性能和长循环性能,对MXene材料在储能领域的发展具有指导意义。更重要的是,d-VCT MXene在酸性和碱性电解质中均表现出优异的比电容,在3 M HSO中达到292.0 F g,是三种MXenes中最高的,在3 M KOH中为184.3 F g,远远超过d-MoTiCT和d-TiCT MXenes的性能(在2 mV s时小于100 F g)。此外,这表明H的嵌入/脱嵌,呈现赝电容特性,以及较大的层间距在MXenes的储能中起着至关重要的作用,不对称配置是提高水性超级电容器能量密度的有效手段。比较分析旨在增强对MXene材料在先进储能系统中潜力的理解。