Luo Xuming, Zhong Yu, Wang Xiuli, Xia Xinhui, Gu Changdong, Tu Jiangping
State Key Laboratory of Silicon Materials, Key Laboratory of Advanced Materials and Applications for Batteries of Zhejiang Province, and School of Materials Science and Engineering, Zhejiang University, Hangzhou310027, China.
ACS Appl Mater Interfaces. 2022 Nov 9;14(44):49839-49846. doi: 10.1021/acsami.2c14903. Epub 2022 Oct 25.
Superionic halides have returned to the spotlight of solid electrolytes because of their satisfactory ionic conductivity, soft texture, and stability toward high-voltage electrode materials. Among them, LiZrCl has aroused interests since abundant Zr element can reduce the cost of large-scale synthesis. However, the related research is very limited, including the detailed parameters during synthesis and the possible strategies for enhancing ionic conductivity. In this work, we have systematically investigated the effects of synthesis parameters on the structure and ionic conductivity of LiZrCl during the ball-milling annealing process. It is found that mild heat treatment (100 °C) can largely enhance the ionic conductivity of ball-milled electrolytes by 2-3 times, which has not been previously reported. Such enhancement is mainly attributed to the network-like micromorphology composed of nanorods, nanowires, or nanoballs, which is beneficial for lithium ion migration. Finally, the modified LiZrCl (4.46 × 10 S cm @ RT) is also proved to be applicable in LiNiMnCoO/ LiZrCl/ LiPSCl/Li-In all-solid-state lithium metal batteries (ASSLMBs). It presents high initial charge capacity of 176.4 mAh g and satisfactory cycle stability since a discharge capacity of 90.8 mAh g is maintained after 40 cycles at 0.1 C. The LiZrCl electrolytes synthesized via the mechanochemical method is promising to be applied in the high-voltage ASSLMBs, and its ionic conductivity can be enhanced by the strategies provided in our work.
超离子卤化物因其令人满意的离子导电性、柔软质地以及对高压电极材料的稳定性,已重新成为固体电解质领域的研究热点。其中,LiZrCl因其丰富的Zr元素可降低大规模合成成本而引起关注。然而,相关研究非常有限,包括合成过程中的详细参数以及提高离子导电性的可能策略。在本工作中,我们系统地研究了球磨退火过程中合成参数对LiZrCl结构和离子导电性的影响。研究发现,温和热处理(100°C)可使球磨电解质的离子导电性大幅提高2至3倍,这在之前尚未见报道。这种提高主要归因于由纳米棒、纳米线或纳米球组成的网络状微观形貌,这有利于锂离子迁移。最后,改性后的LiZrCl(室温下为4.46×10 S cm)也被证明适用于LiNiMnCoO/LiZrCl/LiPSCl/Li-In全固态锂金属电池(ASSLMBs)。它具有176.4 mAh g的高初始充电容量,并且具有令人满意的循环稳定性,因为在0.1 C下循环40次后仍保持90.8 mAh g的放电容量。通过机械化学方法合成的LiZrCl电解质有望应用于高压ASSLMBs,并且其离子导电性可通过我们工作中提供的策略得到提高。