Wang Jiansen, Yang Liu, Fu Yibo, Yin Penggang, Guan Xiaohui, Wang Guangsheng
School of Chemical Engineering, Northeast Electric Power University, Jilin 132000, PR China.
School of Chemistry, Beihang University, Beijing 100191, PR China.
Nanoscale. 2021 May 13;13(18):8562-8574. doi: 10.1039/d1nr01016f.
The reasonable design of the composition and hollow structure of electrode materials is beneficial for promoting the electrochemical properties and stability of electrode materials for high-performance supercapacitors, and it is of great significance to understand the inherent effect of these features on their performance. In this paper, the amorphous Ni-Co double hydroxide nanocages with hollow structures (Ni-Co ADHs) including quasi-sphere, cube and flower are delicately tailored via a Cu2O template-assisted approach. By combining experimental characterization and density functional theory (DFT) calculations, we systematically study the morphological growth of Cu2O templates under different conditions and the electrochemical performance of Ni-Co ADHs. Due to the coordination and synergistic effect between different components, the unique hollow structure and the nature of amorphous materials, Ni-Co ADHs deliver a high specific capacitance of 1707 F g-1 at 1 A g-1. The DFT calculations demonstrate that Ni-Co ADH nanocages exhibit an optimal redox reaction energy barrier and immensely promote the performance. In addition, a hybrid supercapacitor assembled with Ni-Co ADHs as a cathode and active carbon (AC) as an anode shows a high energy density of 33.8 W h kg-1 at a power density of 850 W kg-1 and exhibits an excellent cycling performance with a retention rate of 98% after 50 000 cycles. The successful synthesis of Ni-Co ADH nanocages, combined with rational computational simulations, indicates the excellent electrochemical performance and the potential utilization of amorphous hollow nanomaterials as electrodes for supercapacitors.
合理设计电极材料的组成和中空结构有利于提升高性能超级电容器电极材料的电化学性能和稳定性,了解这些特性对其性能的内在影响具有重要意义。本文通过Cu2O模板辅助法精心制备了具有中空结构的非晶态Ni-Co双氢氧化物纳米笼(Ni-Co ADHs),包括准球形、立方体和花状。通过结合实验表征和密度泛函理论(DFT)计算,我们系统地研究了不同条件下Cu2O模板的形态生长以及Ni-Co ADHs的电化学性能。由于不同组分之间的配位和协同效应、独特的中空结构以及非晶态材料的性质,Ni-Co ADHs在1 A g-1时具有1707 F g-1的高比电容。DFT计算表明,Ni-Co ADH纳米笼表现出最佳的氧化还原反应能垒,并极大地提升了性能。此外,以Ni-Co ADHs为正极、活性炭(AC)为负极组装的混合超级电容器在功率密度为850 W kg-1时具有33.8 W h kg-1的高能量密度,并且在50000次循环后表现出优异的循环性能,保留率为98%。Ni-Co ADH纳米笼的成功合成,结合合理的计算模拟,表明了非晶态中空纳米材料作为超级电容器电极具有优异的电化学性能和潜在的应用价值。