Wang Kuaibing, Wang Zikai, Liu Jiadi, Li Chao, Mao Feifei, Wu Hua, Zhang Qichun
Department of Chemistry, College of Sciences, Nanjing Agricultural University, Nanjing 210095, Jiangsu, P. R. China.
School of Materials Science & Engineering, Nanyang Technological University, Singapore 639678, Singapore.
ACS Appl Mater Interfaces. 2020 Oct 21;12(42):47482-47489. doi: 10.1021/acsami.0c12830. Epub 2020 Oct 7.
Narrowing the capacitance gap between the positive and negative electrodes for the enhancement of the energy densities of battery-supercapacitor hybrid (BSH) devices is urgent and very important. Herein, a new strategy to synchronously improve the positive-negative system and reduce the capacitance discrepancies between two electrodes through the utilization of the same MOF-based precursors (Ni(ATA)(HO)) has been proposed. Nickel/nitrogen codoped carbon (Ni@NC) materials, serving as positive electrodes, deliver battery-type behavior with the enhancement of capacities, which are even superior to those of pristine carbon-based materials with large surface areas. Meanwhile, HCl-treated Ni@NC materials (named A-Ni@NC) are employed as negative electrodes within the potential window of -1 to 0 V and exhibit higher capacitances than that of the commercial activated carbon. With Ni@NC and A-Ni@NC as positive and negative electrodes in BSH devices, the as-fabricated cells display higher capacities and energy densities, more excellent cycling stability, and far superior capacity retention in comparison with those of Ni@NC//AC cells. These results clearly confirm that our strategy is successful and effective.
缩小正负极之间的电容差距以提高电池-超级电容器混合(BSH)装置的能量密度是紧迫且非常重要的。在此,提出了一种新策略,即通过利用相同的基于金属有机框架(MOF)的前驱体(Ni(ATA)(HO))来同步改善正负系统并减少两个电极之间的电容差异。作为正极的镍/氮共掺杂碳(Ni@NC)材料呈现出电池型行为,容量有所提高,甚至优于具有大表面积的原始碳基材料。同时,经盐酸处理的Ni@NC材料(命名为A-Ni@NC)在-1至0 V的电位窗口内用作负极,并且比商业活性炭表现出更高的电容。在BSH装置中以Ni@NC和A-Ni@NC分别作为正负极,所制备的电池与Ni@NC//AC电池相比,显示出更高的容量和能量密度、更优异的循环稳定性以及远更出色的容量保持率。这些结果清楚地证实了我们的策略是成功且有效的。