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通过可控共掺杂调整NiMn-LDH纳米片阵列的形貌及其电化学性能,用于高能量和功率的不对称超级电容器。

Tailoring the morphology followed by the electrochemical performance of NiMn-LDH nanosheet arrays through controlled Co-doping for high-energy and power asymmetric supercapacitors.

作者信息

Singh Saurabh, Shinde Nanasaheb M, Xia Qi Xun, Gopi Chandu V V M, Yun Je Moon, Mane Rajaram S, Kim Kwang Ho

机构信息

School of Materials Science & Engineering, Pusan National University, San 30 Jangjeon-dong, Geumjeong-gu, Busan 609-735, Republic of Korea.

出版信息

Dalton Trans. 2017 Oct 14;46(38):12876-12883. doi: 10.1039/c7dt01863k. Epub 2017 Sep 18.

Abstract

Herein, we tailor the surface morphology of nickel-manganese-layered double hydroxide (NiMn-LDH) nanostructures on 3D nickel-foam via a step-wise cobalt (Co)-doping hydrothermal chemical process. At the 10% optimum level of Co-doping, we noticed a thriving tuned morphological pattern of NiMn-LDH nanostructures (NiCoMn-LDH (10%)) in terms of the porosity of the nanosheet (NS) arrays which not only improves the rate capability as well as cycling stability, but also demonstrates nearly two-fold specific capacitance enhancement compared to Co-free and other NiCoMn-LDH electrodes with a half-cell configuration in 3 M KOH, suggesting that Co-doping is indispensable for improving the electrochemical performance of NiMn-LDH electrodes. Moreover, when this high performing NiCoMn-LDH (10%) electrode is employed as a cathode material to fabricate an asymmetric supercapacitor (ASC) device with reduced graphene oxide (rGO) as an anode material, excellent energy storage performance (57.4 Wh kg at 749.9 W kg) and cycling stability (89.4% capacitive retention even after 2500 cycles) are corroborated. Additionally, we present a demonstration of illuminating a light emitting diode for 600 s with the NiCoMn-LDH (10%)//rGO ASC device, evidencing the potential of the NiCoMn-LDH (10%) electrode in fabricating energy storage devices.

摘要

在此,我们通过逐步钴(Co)掺杂水热化学过程,在三维泡沫镍上定制镍锰层状双氢氧化物(NiMn-LDH)纳米结构的表面形态。在10%的最佳Co掺杂水平下,我们注意到NiMn-LDH纳米结构(NiCoMn-LDH(10%))在纳米片(NS)阵列的孔隙率方面呈现出一种蓬勃发展的调谐形态模式,这不仅提高了倍率性能以及循环稳定性,而且与无Co以及其他具有半电池配置的NiCoMn-LDH电极相比,在3 M KOH中比电容提高了近两倍,这表明Co掺杂对于提高NiMn-LDH电极的电化学性能是不可或缺的。此外,当将这种高性能的NiCoMn-LDH(10%)电极用作阴极材料,以还原氧化石墨烯(rGO)作为阳极材料来制造不对称超级电容器(ASC)器件时,证实了其具有优异的储能性能(在749.9 W kg时为57.4 Wh kg)和循环稳定性(即使在2500次循环后电容保持率仍为89.4%)。此外,我们展示了用NiCoMn-LDH(10%)//rGO ASC器件为发光二极管供电600 s,证明了NiCoMn-LDH(10%)电极在制造储能器件方面的潜力。

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