Department of Chemistry and Shanghai Key, Laboratory of Molecular Catalysis and Innovative Materials, Institute of New Energy, Fudan University, Shanghai 200433, China.
Adv Mater. 2013 Oct 4;25(37):5336-42. doi: 10.1002/adma.201301932. Epub 2013 Jun 28.
Supercapacitors are currently attracting intensive attention because they can provide energy density by orders of magnitude higher than dielectric capacitors, greater power density, and longer cycling ability than batteries. The main challenge for supercapacitors is to develop them with high energy density that is close to that of a current rechargeable battery, while maintaining their inherent characteristics of high power and long cycling life. Consequently, much research has been devoted to enhance the performance of supercapacitors by either maximizing the specific capacitance and/or increasing the cell voltage. The latest advances in the exploration and development of new supercapacitor systems and related electrode materials are highlighted. Also, the prospects and challenges in practical application are analyzed, aiming to give deep insights into the material science and electrochemical fields.
超级电容器因其能量密度比介电电容器高出几个数量级、功率密度比电池更高、循环寿命更长而备受关注。超级电容器的主要挑战是开发具有高能量密度的超级电容器,使其接近目前可充电电池的能量密度,同时保持其固有特性,即高功率和长循环寿命。因此,人们致力于通过最大化比电容和/或增加电池电压来提高超级电容器的性能。本文重点介绍了新型超级电容器系统和相关电极材料的最新研究进展。同时,分析了实际应用中的前景和挑战,旨在深入了解材料科学和电化学领域。