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首页> 外文期刊>Journal of materials science >Deposition of Ni(OH)_2 on nickel substrate using vacuum kinetic spray and its application to high-performance supercapacitor
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Deposition of Ni(OH)_2 on nickel substrate using vacuum kinetic spray and its application to high-performance supercapacitor

机译:真空动力喷涂在镍基体上沉积Ni(OH)_2及其在高性能超级电容器中的应用

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摘要

Herein, we report a direct deposition of nano-structured Ni(OH)(2) from micro-sized Ni(OH)(2) powder on nickel sheet and nickel foam using nano-particle deposition system, one of the low-vacuum and room temperature vacuum kinetic spray processes. In this work, the deposition of the Ni(OH)(2) powder on nickel sheets is carried out with various stand-off-distances (SoDs) and carrier gas pressures. The deposited films are investigated by field-emission electron microscopy, X-ray diffraction, and Raman spectroscopy. The crystallite size of the nano-structured Ni(OH)(2) depends on the SoD and the carrier gas pressure. The electrochemical performance of Ni(OH)(2) deposited on nickel sheets is measured by cyclic voltammetry in the 3-electrode cell. The deposition with 5 mm SoD and 0.3 MPa carrier gas pressure is found to be the optimum deposition condition for the nano-structured Ni(OH)(2) thin film as an electrode material. The nano-structured Ni(OH)(2) thin film deposited with 5 mm SoD and 0.3 MPa carrier gas pressure on nickel foam demonstrates a specific capacitance of 2377 F g(-1) at 2 mV s(-1) scan rate and 2092 F g(-1) at 1 A g(-1) current density and excellent cyclic stability for 3000 cycles with 83% capacitance retention.
机译:在这里,我们报道了使用纳米粒子沉积系统(一种低真空和高真空度),从微米级Ni(OH)(2)粉末在镍片和泡沫镍上直接沉积纳米结构的Ni(OH)(2)。室温真空动力喷涂工艺。在这项工作中,Ni(OH)(2)粉末在镍片上的沉积是通过各种间隔距离(SoDs)和载气压力进行的。通过场发射电子显微镜,X射线衍射和拉曼光谱研究沉积的膜。纳米结构Ni(OH)(2)的微晶尺寸取决于SoD和载气压力。通过循环伏安法在3电极电池中测量沉积在镍片上的Ni(OH)(2)的电化学性能。发现以5 mm SoD和0.3 MPa载气压力进行的沉积是纳米结构Ni(OH)(2)薄膜作为电极材料的最佳沉积条件。以5 mm SoD和0.3 MPa载气压力在镍泡沫上沉积的纳米结构Ni(OH)(2)薄膜在2 mV s(-1)扫描速率下显示出2377 F g(-1)的比电容,并且在1 A g(-1)的电流密度下具有2092 F g(-1),具有3000个循环的出色循环稳定性,电容保持率为83%。

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