Recent advances in lithiophilic materials: material design and prospects for lithium metal anode application

Jiaxiang Liu, Nanbiao Pei, Xueying Yang, Ruiyang Li, Haiming Hua, Peng Zhang, Jinbao Zhao
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引用次数: 1

Abstract

The rapid development of electronic technology and energy industry promotes the increasing desire for energy storage systems with high energy density, thus calling for the exploration of lithium metal anode. However, the enormous challenges, such as uncontrollable lithium deposition, side reaction, infinite volume change and dendrite generation, hinders its application. To address these problems, the deposition behavior of lithium must be exactly controlled and the anode/electrolyte interface must be stabilized. The deposition of lithium is a multi-step process influenced by multi-physical fields, where nucleation is the key to final morphology. Hence, increasing investigations have focused on the employment of lithiophilic materials that can regulate lithium nucleation in recent years. The lithiophilic materials introduced into the deposition hosts or solid electrolyte interphases can regulate the nucleation overpotential and facilitate uniform deposition. However, the concept of lithiophilicity is still undefined and the mechanism is still unrevealed. In this review, the recent advances in the regulation mechanisms of lithiophilicity are discussed, and the applications of lithiophilic materials in hosts and protective interphases are summarized. The in-depth exploration of lithiophilic materials can enhance our understanding of the deposition behavior of lithium and pave the way for practical lithium metal batteries.
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亲锂材料的最新进展:材料设计与锂金属阳极应用前景
电子技术和能源工业的快速发展,促使人们对高能量密度储能系统的需求日益增长,这就要求对锂金属阳极进行探索。然而,不可控的锂沉积、副反应、无限体积变化和枝晶生成等巨大挑战阻碍了其应用。为了解决这些问题,必须精确控制锂的沉积行为,并且必须稳定阳极/电解质界面。锂的沉积是一个受多物理场影响的多步骤过程,其中成核是最终形貌的关键。因此,近年来越来越多的研究集中在使用亲锂材料来调节锂的成核。在沉积基质或固体电解质界面中引入亲锂材料可以调节成核过电位,促进均匀沉积。然而,亲石性的概念仍未明确,其机制也尚未揭示。本文综述了近年来亲石性调控机制的研究进展,并对亲石材料在寄主和保护界面中的应用进行了综述。对亲锂材料的深入探索可以增强我们对锂沉积行为的认识,为实用的锂金属电池铺平道路。
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