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Understanding the anchoring effect on Li plating with Indium Tin oxide layer functionalized hosts for Li metal anodes

锚固 材料科学 化学工程 氧化物 阳极 电镀(地质) 氧化铟锡 金属 电极 图层(电子) 无机化学 复合材料 冶金 化学 物理化学 结构工程 工程类 地质学 地球物理学
作者
Xiaolin Yan,Fangjun Ye,Yinggan Zhang,Liang Lin,Baisheng Sa,Fang Liu,Junjie Li,Laisen Wang,Jie Lin,Qingshui Xie,Dong‐Liang Peng
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:440: 135827-135827 被引量:17
标识
DOI:10.1016/j.cej.2022.135827
摘要

• Studying the lithiophilic mechanism brought from metal oxides with 3D matrix. • Metal oxides, multiple alloying reactions and alloys all exhibit positive effects. • The wettability, nucleation, ion/electron distribution are promoted by ITO layer. • The LFP full cells show excellent cycling stability on high rate and mass loading. Li dendrites caused by nonuniform Li plating and locally concentrated ion/electron flux would give rise to poor cycling performance and safety issues of short-circuit and so on. Herein, a functional nanolayer consisting of Indium Tin oxide (ITO) nanoparticles on 3D Cu foam was fabricated as case study to understand the mechanism of metal oxides on anchoring Li metal spots and how initial Li nucleation influences the following dendrites growth. Based on the experimental and theoretical results, it is demonstrated that not only the pristine metal oxides have higher binding energy with Li atom, but also in situ formed alloy phase during alloying process performs a great importance on homogeneous nucleation, thus leading to ordered ion/electron distribution and fast kinetics. Therefore, excellent wettability and even self-propagation behavior between ITO-Cu foam and molten Li are achieved, meanwhile the half cells with ITO-Cu foam electrodes exhibit an ultralow nucleation overpotential of 2 mV under 0.5 mA cm −2 . When the designed ITO-Cu foam@Li anodes is matched with LFP (LiFePO 4 ) cathodes, the constructed full cells can empower superior cycling stability for over 1000 cycles at 5C (3.4 mA cm −2 ), and remarkable specific capacity (149 mAh g −1 ) and capacity retention (80% for 250 cycles) even with ultrahigh mass loading (15.3 mg cm −2 ), which provides an avenue to regulate Li deposition/dissolution for high energy Li metal batteries.
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