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硫化镍异质纳米线阵列上的层状双氢氧化物的分级异质结构工程作为碱性水系锌电池的高效阴极

Hierarchical Heterostructure Engineering of Layered Double Hydroxides on Nickel Sulfides Heteronanowire Arrays as Efficient Cathode for Alkaline Aqueous Zinc Batteries.

作者信息

Zhou Kai, Wang Shuai, Zhong Guixiang, Chen Jingrong, Bao Yu, Niu Li

机构信息

Guangzhou Key Laboratory of Sensing Materials & Devices, Center for Advanced Analytical Science, c/ o School of Chemistry and Chemical Engineering, Guangzhou University, Guangzhou, 510006, P. R. China.

出版信息

Small. 2022 Aug;18(34):e2202799. doi: 10.1002/smll.202202799. Epub 2022 Jul 30.

DOI:10.1002/smll.202202799
PMID:35908162
Abstract

Aqueous alkaline rechargeable nickel-zinc (Ni-Zn) batteries possess great potential for large-scale energy storage systems because of their high output voltage, cheap cost, and intrinsic safety. However, the practical applicability of Ni-Zn batteries has been limited by traditional Ni-based cathodes with low capacity and poor cycle stability. Rational design of electrode structure and composition is highly desired but still significantly challenging. Herein, uniform self-supported hierarchical heterostructure composites interacting NiCo-layered double hydroxide with 1D nickel sulfides heteronanowire rooted on Ni foam (NF\Ni S /NiS@NiCo-LDH) are successfully developed by a hydrothermal sulfurization-electrodeposition process. The self-supported 3D hierarchical heterostructured composites nanoarray provides abundant reactive sites, rapid ion diffusion channels, and fast electron transfer routes, as well as strong structural stability. More significantly, the strong interfacial charge transfer between Ni S /NiS heteronanowire and NiCo-LDH effectively modifies the electronic structure of the composites and thereby improving the reaction kinetics. Consequently, the NF\Ni S /NiS@NiCo-LDH electrode presents a superior capacity of 434.5 mAh g (1.73 mAh cm ) at 3 mA cm . In addition, the fabricated NF\Ni S /NiS@NiCo-LDH//Zn battery can offer a maximal energy density and power density as large as 556.3 Wh kg and 26.3 kW kg , respectively, as well as an exceptional cycling performance.

摘要

水系碱性可充电镍锌(Ni-Zn)电池因其高输出电压、低成本和本质安全性,在大规模储能系统中具有巨大潜力。然而,Ni-Zn电池的实际应用受到传统镍基阴极容量低和循环稳定性差的限制。电极结构和组成的合理设计备受期待,但仍极具挑战性。在此,通过水热硫化-电沉积工艺成功制备了均匀的自支撑分级异质结构复合材料,该复合材料将镍钴层状双氢氧化物与扎根于泡沫镍(NF\Ni S /NiS@NiCo-LDH)上的一维硫化镍异质纳米线相互作用。这种自支撑的三维分级异质结构复合材料纳米阵列提供了丰富的反应位点、快速的离子扩散通道和快速的电子转移路径,以及强大的结构稳定性。更重要的是,Ni S /NiS异质纳米线与NiCo-LDH之间强烈的界面电荷转移有效地改变了复合材料的电子结构,从而改善了反应动力学。因此,NF\Ni S /NiS@NiCo-LDH电极在3 mA cm 时表现出434.5 mAh g(1.73 mAh cm )的优异容量。此外,所制备的NF\Ni S /NiS@NiCo-LDH//Zn电池分别可提供高达556.3 Wh kg 和26.3 kW kg 的最大能量密度和功率密度,以及出色的循环性能。

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