Sohib Ahmad, Irham Muhammad Alief, Karunawan Jotti, Santosa Sigit Puji, Floweri Octia, Iskandar Ferry
Department of Physics, Faculty of Mathematics and Natural Sciences, Institut Teknologi Bandung, Jl. Ganesha 10, Bandung 40132, Indonesia.
Collaboration Research Center for Advanced Energy Materials, National Research and Innovation Agency - Institut Teknologi Bandung, Jl Ganesha 10, Bandung 40132, Indonesia.
ACS Appl Mater Interfaces. 2023 Apr 5;15(13):16562-16570. doi: 10.1021/acsami.2c18852. Epub 2023 Mar 27.
Regardless of the superiorities of LiAlTi(PO) (LATP), such as stability against oxygen and moisture, high ionic conductivity, and low activation energy, its practical application in all-solid-state lithium metal batteries is still impeded by the formation of ionic-resistance interphase layers. Upon contact with Li metal, electron migration from Li to LATP causes the reduction of Ti in LATP. As a result, an ionic-resistance layer will be formed at the interface between the two materials. Applying a buffer layer between them is a potential measure to mitigate this problem. In this study, we analyzed the potential role of LiCl to protect the LATP solid electrolyte through a first-principle study-based density functional theory (DFT) calculation. Density-of-states (DOS) analysis on the Li/LiCl heterostructure reveals the insulating roles of LiCl in preventing electron flow to LATP. The insulating properties begin at depths of 4.3 and 5.0 Å for Li (001)/LiCl (111) and Li (001)/LiCl (001) heterostructures, respectively. These results indicate that LiCl (111) is highly potential to be applied as a protecting layer on LATP to avoid the formation of ionic resistance interphase caused by electron transfer from the Li metal anode.
尽管磷酸铝钛锂(LATP)具有诸多优势,如对氧气和水分稳定、离子电导率高以及活化能低等,但其在全固态锂金属电池中的实际应用仍因离子电阻中间相层的形成而受阻。与锂金属接触时,电子从锂迁移至LATP会导致LATP中的钛被还原。结果,在两种材料的界面处会形成一个离子电阻层。在它们之间施加一个缓冲层是缓解这一问题的一种潜在措施。在本研究中,我们通过基于第一性原理研究的密度泛函理论(DFT)计算分析了LiCl对保护LATP固体电解质的潜在作用。对Li/LiCl异质结构的态密度(DOS)分析揭示了LiCl在阻止电子流向LATP方面的绝缘作用。对于Li(001)/LiCl(111)和Li(001)/LiCl(001)异质结构,绝缘特性分别始于4.3 Å和5.0 Å的深度。这些结果表明,LiCl(111)极有潜力作为LATP上的保护层,以避免因锂金属阳极的电子转移而形成离子电阻中间相。