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通过自发锂离子扩散诱导梯度亲锂性实现机械坚固的集流体用于稳定的贫锂金属电池

Mechanically Robust Current Collector with Gradient Lithiophilicity Induced by Spontaneous Lithium Ion Diffusion for Stable Lean-Lithium Metal Batteries.

作者信息

Gong Minjian, Yu Ruohan, Zhou Cheng, Yu Yongkun, Pan Qianmu, Dong Chenxu, Shen Chunli, Guan Yujia, Sun Congli, Mai Liqiang, Xu Xu

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, International School of Materials Science and Engineering, Wuhan University of Technology, Wuhan, Hubei 430070, P. R. China.

The Sanya Science and Education Innovation Park, Wuhan University of Technology, Sanya, Hainan 572000, P. R. China.

出版信息

ACS Nano. 2024 Jul 25. doi: 10.1021/acsnano.4c06111.

DOI:10.1021/acsnano.4c06111
PMID:39051978
Abstract

Lean-lithium metal batteries represent an advanced version of the anode-free lithium metal batteries, which can ensure high energy density and cycling stability while addressing the safety concerns and the loss of energy density caused by excessive lithium metal. Herein, a mechanically robust carbon nanotube framework current collector with gradient lithiophilicity is constructed for a lean-lithium metal battery. Using the physical vapor deposition method, precise prelithiation of a carbon nanotube framework is achieved, eliminating its irreversible capacity, retaining the porous structure in the framework, and inducing the gradient lithiophilicity formation due to spontaneous lithium ion diffusion. The lithiophilic gradient and three-dimensional porous structure are characterized by time-of-flight secondary ion mass spectrometry (TOF-SIMS), scanning transmission electron microscopy (STEM), and corresponding electron energy loss spectroscopy (EELS), which enables the preferential deposition of lithium ions at the bottom of the carbon nanotube framework, thereby avoiding lithium losses associated with dead lithium. As a result, in the LiFePO full cell with an ultralow N/P ratio of 0.15, the initial Coulombic efficiency increases from 77.75 to 95.07%. Collaborating synergistically with the ultrathin (1.5 μm) lithium metal, serving as a gradual lithium supplement, the full cell with an N/P ratio of 1.43 demonstrates an 86% capacity retention after 500 cycles at 1C, far surpassing the copper-based counterparts (0.9%).

摘要

贫锂金属电池是无阳极锂金属电池的先进版本,它能确保高能量密度和循环稳定性,同时解决安全问题以及过量锂金属导致的能量密度损失。在此,为贫锂金属电池构建了一种具有梯度亲锂性的机械坚固的碳纳米管框架集流体。采用物理气相沉积法实现了碳纳米管框架的精确预锂化,消除了其不可逆容量,保留了框架中的多孔结构,并因锂离子的自发扩散诱导形成梯度亲锂性。通过飞行时间二次离子质谱(TOF-SIMS)、扫描透射电子显微镜(STEM)以及相应的电子能量损失谱(EELS)对亲锂梯度和三维多孔结构进行了表征,这使得锂离子能够优先沉积在碳纳米管框架底部,从而避免与死锂相关的锂损失。结果,在超低N/P比为0.15的LiFePO全电池中,初始库仑效率从77.75%提高到了95.07%。与超薄(1.5μm)锂金属协同作用,作为逐渐的锂补充,N/P比为1.43的全电池在1C下500次循环后容量保持率为86%,远远超过基于铜的同类电池(0.9%)。

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