Xing Jianxiong, Yan Luo, Chen Tao, Song Zhicui, Wang Zihao, Liu Yuchi, Zhou Liujiang, Li Jingze
School of Materials and Energy, University of Electronic Science and Technology of China, Chengdu 611731, PR China; Yangtze Delta Region Institute (Huzhou), University of Electronic Science and Technology of China, Huzhou 313001, PR China.
School of Physics, University of Electronic Science and Technology of China, Chengdu 610054, PR China.
J Colloid Interface Sci. 2023 Dec 15;652(Pt A):627-635. doi: 10.1016/j.jcis.2023.08.058. Epub 2023 Aug 9.
Lithium (Li)-rich ternary alloy, comprising a multi-alloy phase as the built-in three-dimensional (3D) framework and a Li metal phase as a reversible Li reservoir, is a promising high-energy-density anode for rechargeable Li metal batteries. The introduction of metal/metalloid components to the alloy can effectively regulate Li deposition and maintain the dimensional integrity of the Li anode. Herein, the lithium-copper-zinc (Li-Cu-Zn) ternary alloy, as a new type of alloy anode, is synthesized via a facile thermal melting method. The fully delithiated 3D scaffold comprised two Cu-Zn alloy phases named CuZn and CuZn. These alloy phases exhibit higher lithiophilicity and structural stability than Li-Zn and Li-Cu alloys. Moreover, the CuZn phase is electrochemically inert, ensuring the geometric stability of the anode, while the CuZn phase can readily undergo alloying reaction with Li to form the LiZn phase, thereby facilitating uniform Li nucleation and deposition. The hybridized multiphase alloy structure and specific energy storage mechanism of the Cu-Zn based alloy scaffold in the ternary alloy anode facilitate dendrite-free Li deposition and prolonged cycle lifetime. The Li metal full battery based on lithium iron phosphate (LiFePO) cathode exhibits high cycling stability with high-capacity retention of 95.4% after 1000 cycles at 1C.
富锂三元合金,由多合金相作为内置三维(3D)框架和锂金属相作为可逆锂储存库组成,是一种有前途的用于可充电锂金属电池的高能量密度负极。向合金中引入金属/类金属成分可以有效地调节锂的沉积并保持锂负极的尺寸完整性。在此,锂铜锌(Li-Cu-Zn)三元合金作为一种新型合金负极,通过简便的热熔融法合成。完全脱锂的3D支架由两个名为CuZn和CuZn的铜锌合金相组成。这些合金相比锂锌合金和锂铜合金表现出更高的亲锂性和结构稳定性。此外,CuZn相是电化学惰性的,确保了负极的几何稳定性,而CuZn相可以很容易地与锂发生合金化反应形成LiZn相,从而促进锂的均匀成核和沉积。三元合金负极中基于铜锌的合金支架的混合多相合金结构和特定储能机制有利于无枝晶锂沉积和延长循环寿命。基于磷酸铁锂(LiFePO)正极的锂金属全电池表现出高循环稳定性,在1C下1000次循环后具有95.4%的高容量保持率。