Liu Xiaohong, Wang Yulin, Luo Chunwang, Zhang Zheyu, Sun Hongyan, Xu Chunju, Chen Huiyu
School of Energy and Power Engineering, North University of China, Taiyuan 030051, China.
School of Materials Science and Engineering, North University of China, Taiyuan 030051, China.
Nanomaterials (Basel). 2024 Aug 1;14(15):1299. doi: 10.3390/nano14151299.
In this work, β-NiS nanoparticles (NPs) were efficiently prepared by a straightforward hydrothermal process. The difference in morphology between these NiS NPs was produced by adding different amounts of thiourea, and the corresponding products were denoted as NiS-15 and NiS-5. Through electrochemical tests, the specific capacity () of NiS-15 was determined to be 638.34 C g at 1 A g, compared to 558.17 C g for NiS-5. To explore the practical application potential of such β-NiS NPs in supercapacitors, a hybrid supercapacitor (HSC) device was assembled with activated carbon (AC) as an anode. Benefitting from the high capacity of the NiS cathode and the large voltage window of the device, the NiS-15//AC HSC showed a high energy density () of 43.57 W h kg at 936.92 W kg, and the NiS-5//AC HSC provided an inferior of 37.89 W h kg at 954.79 W kg. Both HSCs showed excellent cycling performance over 6000 cycles at 10 A g. The experimental findings suggest that both NiS-15 and NiS-5 in this study can serve as potential cathodes for high-performance supercapacitors. This current synthesis method is simple and can be extended to the preparation of other transition metal sulfide (TMS)-based electrode materials with exceptional electrochemical properties.
在这项工作中,通过一种简单的水热法高效制备了β-NiS纳米颗粒(NPs)。通过添加不同量的硫脲产生了这些NiS NPs之间的形态差异,相应的产物分别记为NiS-15和NiS-5。通过电化学测试,确定NiS-15在1 A g时的比容量()为638.34 C g,而NiS-5为558.17 C g。为了探索这种β-NiS NPs在超级电容器中的实际应用潜力,以活性炭(AC)为阳极组装了一种混合超级电容器(HSC)器件。受益于NiS阴极的高容量和器件的大电压窗口,NiS-15//AC HSC在936.92 W kg时显示出43.57 W h kg的高能量密度(),而NiS-5//AC HSC在954.79 W kg时提供的能量密度较低,为37.89 W h kg。两种HSC在10 A g下6000次循环中均表现出优异的循环性能。实验结果表明,本研究中的NiS-15和NiS-5均可作为高性能超级电容器的潜在阴极。这种当前的合成方法简单,可扩展到制备具有优异电化学性能的其他基于过渡金属硫化物(TMS)的电极材料。