MXenes公司
超级电容器
电容
材料科学
假电容器
储能
石墨烯
法拉第效率
电化学
杂原子
假电容
纳米技术
电极
物理
化学
物理化学
功率(物理)
有机化学
量子力学
戒指(化学)
作者
Minmin Hu,Renfei Cheng,Zhenjiang Li,Tao Hu,Hui Zhang,Chao Shi,Jinxing Yang,Cong Cui,Chao Zhang,Qiang Cai,Bingbing Fan,Xiaohui Wang,Quan‐Hong Yang
出处
期刊:Nanoscale
[Royal Society of Chemistry]
日期:2019-11-29
卷期号:12 (2): 763-771
被引量:88
摘要
Electrochemical pseudocapacitors store energy via intercalation or electrosorption and faradaic charge transfer with redox reactions. MXenes represent the promising intercalation pseudocapacitive electrode materials for supercapacitors due to their ultrahigh theoretical capacitances. Achieving a high capacitance will greatly advance the large-scale applications as in power grids. However, a rational design concept has not been exploited to achieve the theoretical limit. Here, we show how interlayer engineering helps to achieve the limit. Interlayer engineering in this manner simultaneously creates a broadened yet uniform interlayer spacing - providing a "highway" for fast ion diffusion, and incorporates heteroatoms with lower electronegativity - offering "trucks" (redox active sites) on such a "highway" for speeding charge transfer, enabling high capacitance. Following the concept, through annealing the as-prepared Ti3C2Tx MXene under an ammonia atmosphere, the engineered MXene delivers much improved capacitance with excellent rate performance and cyclability. The overall performance of the engineered MXene outperforms that of all other pseudocapacitive electrode materials.
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