State Key Laboratory of Optoelectronic Materials and Technologies, School of Physics Science and Engineering, Sun Yat-sen (Zhongshan) University , Guangzhou 510275, People's Republic of China.
The Key Laboratory of Low-carbon Chemistry & Energy Conservation of Guangdong Province, Sun Yat-sen (Zhongshan) University , Guangzhou 510275, People's Republic of China.
ACS Appl Mater Interfaces. 2017 Sep 20;9(37):31861-31870. doi: 10.1021/acsami.7b08778. Epub 2017 Sep 5.
Sodium-ion capacitors (SIC) combine the merits of both high-energy batteries and high-power electrochemical capacitors as well as the low cost and high safety. However, they are also known to suffer from the severe deficiency of suitable electrode materials with high initial Coulombic efficiency (ICE) and kinetic balance between both electrodes. Herein, we report a facile solvothermal synthesis of NaTi(PO) nanocages constructed by iso-oriented tiny nanocrystals with a mesoporous architecture. It is notable that the NaTi(PO) mesocrystals exhibit a large ICE of 94%, outstanding rate capability (98 mA h g at 10 C), and long cycling life (over 77% capacity retention after 10 000 cycles) in half cells, all of which are in favor to be utilized into a full cell. When assembled with commercial activated carbon to an SIC, the system delivers an energy density of 56 Wh kg at a power density of 39 W kg. Even at a high current rate of 5 A g (corresponds to finish a full charge/discharge process in 2 min), the SIC still works well after 20 000 cycles without obvious capacity degradation. With the merits of impressive energy/power densities and longevity, the obtained hybrid capacitor should be a promising device for highly efficient energy storage systems.
钠离子电容器 (SIC) 结合了高能电池和高功率电化学电容器的优点,以及低成本和高安全性。然而,它们也存在合适的电极材料严重缺乏的问题,这些材料需要具有高初始库仑效率 (ICE) 和两个电极之间的动力学平衡。在此,我们报告了一种简便的溶剂热合成方法,用于制备由等向微小纳米晶体构建的具有介孔结构的 NaTi(PO) 纳米笼。值得注意的是,NaTi(PO) 介孔晶体在半电池中表现出 94%的高 ICE、出色的倍率性能(在 10 C 时为 98 mA h g)和长循环寿命(在 10 000 次循环后超过 77%的容量保持率),这都有利于将其应用于全电池。当与商业活性炭组装成 SIC 时,该系统在 39 W kg 的功率密度下提供了 56 Wh kg 的能量密度。即使在 5 A g 的高电流速率(相当于在 2 分钟内完成完整的充电/放电过程)下,SIC 在 20 000 次循环后仍能良好运行,没有明显的容量衰减。由于具有令人印象深刻的能量/功率密度和长寿命的优点,所获得的混合电容器应该是高效储能系统的有前途的设备。