纳米片
材料科学
尼亚尔
层状双氢氧化物
电化学
化学工程
储能
电池(电)
阳极
功率密度
耐久性
金属有机骨架
热液循环
复合数
电极
纳米技术
复合材料
吸附
化学
金属间化合物
功率(物理)
氢氧化物
有机化学
量子力学
物理化学
工程类
合金
物理
作者
Lulu Chai,Abba Bala Musa,Junqing Pan,Jinlu Song,Yanzhi Sun,Xiaoguang Liu
标识
DOI:10.1016/j.jpowsour.2022.231887
摘要
The development of advanced active materials with high capacity, low-cost, and safety has become a requirement to meet future energy storage systems for electric vehicles. Herein, we report a rational in-situ synthesis of NiAl layered double hydroxides (LDHs) on Ni-based metal-organic framework (MOF)-derived porous carbons (PCs) material (NiAl-LDH/[email protected]) with cross-linking nanosheet structure and high electrical conductivity by a hydrothermal method. This unique structure design improves electrical conductivity, reduces internal resistance, and enables more electrochemically active sites to participate in chemical reactions through the strong interaction and synergy between the hierarchical structure of two-dimensional nanosheets and PCs. The results exhibit that NiAl-LDH/[email protected] composite possesses a large specific capacity (391.7 mAh g−1), high rate capability, and outstanding capacity retention stability (97.6%@10 A g−1 after 10,000 cycles). Furthermore, the as-assembled Zn-ion battery based on a NiAl-LDH/[email protected] cathode displays a remarkable capacity (345 mAh g−1@1 A g−1), excellent energy/power density (604.6 Wh kg−1/1.77 kW kg−1), and superb cycle durability (95.3%@2 A g−1). The proposed approach provides an unprecedented direction for designing advanced energy storage devices with high electrochemical performance.
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