电化学窗口
电解质
材料科学
电化学
溶剂化
离子电导率
电导率
化学工程
水溶液
超级电容器
离子键合
电极
溶剂
无机化学
离子
化学
物理化学
有机化学
工程类
作者
Shuilin Wu,Bizhe Su,Mingzi Sun,Shuai Gu,Zhouguang Lu,Kaili Zhang,Denis Y. W. Yu,Bolong Huang,Pengfei Wang,Chun‐Sing Lee,Wenjun Zhang
标识
DOI:10.1002/adma.202102390
摘要
Abstract The application of superconcentrated aqueous electrolytes has shown great potential in developing high‐voltage electrochemical double‐layer capacitors (EDLCs). However, the broadening of the electrochemical window of such superconcentrated electrolytes is at the expense of their high cost, low ionic conductivity, high density, and narrow operating temperature range. Herein, the electrochemical window of water (>3 V) at low salt concentration (3 m) is expanded by using an aprotic solvent, i.e., trimethyl phosphate (TMP), to regulate the solvation structure of the electrolyte. Benefiting from the low salt concentration, such electrolyte is simultaneously featured with high ionic conductivity, low density, and wide temperature compatibility. Based on the dilute hybrid electrolyte, EDLCs constructed by using porous graphene electrodes are able to operate within an enlarged voltage range of 0–2.4 V at a wide range of temperatures from −20 to 60 °C. They also present excellent rate capability and cycle stability, i.e., 83% capacitance retention after 100 000 cycles. Density functional theory calculations verify that TMP induces a significant electronic modulation for the bonding environment of the electrolyte. This enables the stronger binding of Na + –H 2 O with freely migrating TMP to expand the voltage window to exceed the potential limitation of aqueous electrolytes.
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