Kim Jong Heon, Jung Ji-Won, Cho Su-Ho, Kim Il-Doo, Park Yun Chang, Seo Dong-Hwa, Kim Hyun-Suk
Department of Materials Science and Engineering, Chungnam National University, Daejeon, 34134, Republic of Korea.
School of Materials Science and Engineering, University of Ulsan (UOU), Ulsan, 44776, Republic of Korea.
Small. 2022 Jun;18(24):e2201134. doi: 10.1002/smll.202201134. Epub 2022 May 2.
All-solid-state thin-film batteries (ASSTFBs) are promising next-generation battery systems, but critical challenges such as low-energy-density remain. The low-energy-density might persist with low-voltage cathode material; hence, high-voltage cathode material development is required. While LiNi Mn O (LNM) has been considered a promising high-voltage cathode material. This study investigates the electrochemical properties of LNM thin films based on the correlation between the ordering of cations (Ni and Mn) and oxygen vacancies (V ). The authors find that the cations' order changes from a disordered structure to an ordered structure with an increased oxygen flow rate during deposition. The optimized LNM fabricated using a 60:40 ratio of Ar to O exhibits the highest rate capability (321.4 mAh cm @ 20 C) and most prolonged cycle performance for 500 cycles. The role of V within the LNM structure and the lower activation energy of ordered LNM compared to disordered LNM through first-principles density functional theory calculations is elucidated. The superior electrochemical performance (276.9 mAh cm @ 0.5 C) and high cyclic performance (at 93.9%, 500 cycles) are corroborated by demonstrating flexible ASSTFB cells using LiPON solid-state electrolyte and thin-film Li anode. This work paves the way for future research on the fabrication of high-performance flexible ASSTFBs.
全固态薄膜电池(ASSTFBs)是很有前景的下一代电池系统,但仍存在诸如能量密度低等关键挑战。能量密度低可能与低电压阴极材料有关;因此,需要开发高电压阴极材料。虽然LiNiMn O(LNM)被认为是一种很有前景的高电压阴极材料。本研究基于阳离子(Ni和Mn)的有序排列与氧空位(V)之间的相关性,研究了LNM薄膜的电化学性能。作者发现,在沉积过程中,随着氧流量的增加,阳离子的排列从无序结构转变为有序结构。使用Ar与O的比例为60:40制备的优化LNM表现出最高的倍率性能(在20C时为321.4 mAh cm)和最长的500次循环性能。通过第一性原理密度泛函理论计算,阐明了V在LNM结构中的作用以及有序LNM相较于无序LNM具有更低的活化能。通过使用LiPON固态电解质和薄膜锂阳极展示柔性ASSTFB电池,证实了其优异的电化学性能(在0.5C时为276.9 mAh cm)和高循环性能(在93.9%,500次循环)。这项工作为未来高性能柔性ASSTFBs的制造研究铺平了道路。