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基于双金属过渡金属磷化物纳米晶体的高性能柔性固态非对称超级电容器

High-Performance Flexible Solid-State Asymmetric Supercapacitors Based on Bimetallic Transition Metal Phosphide Nanocrystals.

作者信息

Zhang Nan, Li Yifan, Xu Junyuan, Li Junjie, Wei Bin, Ding Yu, Amorim Isilda, Thomas Rajesh, Thalluri Sitaramanjeneya Mouli, Liu Yuanyue, Yu Guihua, Liu Lifeng

机构信息

International Iberian Nanotechnology Laboratory (INL) , Avenida Mestre Jose Veiga , 4715-330 Braga , Portugal.

Materials Science and Engineering Program and Department of Mechanical Engineering , University of Texas at Austin , Austin , Texas 78712 , United States.

出版信息

ACS Nano. 2019 Sep 24;13(9):10612-10621. doi: 10.1021/acsnano.9b04810. Epub 2019 Sep 3.

Abstract

Transition metal phosphides (TMPs) have recently emerged as an important type of electrode material for use in supercapacitors thanks to their intrinsically outstanding specific capacity and high electrical conductivity. Herein, we report the synthesis of bimetallic CoNiP ultrafine nanocrystals supported on carbon nanofibers (CoNiP/CNF) and explore their use as positive electrode materials of asymmetric supercapacitors. We find that the Co:Ni ratio has a significant impact on the specific capacitance/capacity of CoNiP/CNF, and CoNiP/CNF with an optimal Co:Ni ratio exhibits an extraordinary specific capacitance/capacity of 3514 F g/1405.6 C g at a charge/discharge current density of 5 A g, which is the highest value for TMP-based electrode materials reported by far. Our density functional theory calculations demonstrate that the significant capacitance/capacity enhancement in CoNiP/CNF, compared to the monometallic NiP/CNF and CoP/CNF, originates from the enriched density of states near the Fermi level. We further fabricate a flexible solid-state asymmetric supercapacitor using CoNiP/CNF as positive electrode material, activated carbon as negative electrode material, and a polymer gel as the electrolyte. The supercapacitor shows a specific capacitance/capacity of 118.7 F g/166.2 C g at 20 mV s, delivers an energy density of 32.2 Wh kg at 3.5 kW kg, and demonstrates good capacity retention after 10000 charge/discharge cycles, holding substantial promise for applications in flexible electronic devices.

摘要

过渡金属磷化物(TMPs)由于其固有的出色比容量和高电导率,最近已成为用于超级电容器的一种重要电极材料类型。在此,我们报告了负载在碳纳米纤维上的双金属CoNiP超细纳米晶体(CoNiP/CNF)的合成,并探索了它们作为不对称超级电容器正极材料的用途。我们发现Co:Ni比例对CoNiP/CNF的比电容/容量有显著影响,具有最佳Co:Ni比例的CoNiP/CNF在5 A g的充放电电流密度下表现出3514 F g/1405.6 C g的非凡比电容/容量,这是迄今为止报道的基于TMP的电极材料的最高值。我们的密度泛函理论计算表明,与单金属NiP/CNF和CoP/CNF相比,CoNiP/CNF中显著的电容/容量增强源自费米能级附近丰富的态密度。我们进一步使用CoNiP/CNF作为正极材料、活性炭作为负极材料以及聚合物凝胶作为电解质制备了一种柔性固态不对称超级电容器。该超级电容器在20 mV s时的比电容/容量为118.7 F g/166.2 C g,在3.5 kW kg时的能量密度为32.2 Wh kg,并在10000次充放电循环后表现出良好的容量保持率,在柔性电子设备应用方面具有巨大潜力。

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