Nguyen Minh Hai, Ngo Nhat Minh, Kim Byung-Kook, Park Sangbaek
Department of Materials Science and Engineering, Chungnam National University, Daejeon, 34134, Republic of Korea.
Energy Materials Research Center, Korea Institute of Science and Technology (KIST), Seoul, 02792, Republic of Korea.
Adv Sci (Weinh). 2024 Nov;11(43):e2407018. doi: 10.1002/advs.202407018. Epub 2024 Sep 23.
The rapid development of the electronics market necessitates energy storage devices characterized by high energy density and capacity, alongside the ability to maintain stable and safe operation under harsh conditions, particularly elevated temperatures. In this study, a semi-solid-state electrolyte (SSSE) for Li-metal batteries (LMB) is synthesized by integrating metal-organic frameworks (MOFs) as host materials featuring a hierarchical pore structure. A trace amount of liquid electrolyte (LE) is entrapped within these pores through electrochemical activation. These findings demonstrate that this structure exhibits outstanding properties, including remarkably high thermal stability, an extended electrochemical window (5.25 V vs Li/Li), and robust lithium-ion conductivity (2.04 × 10S cm), owing to the synergistic effect of the hierarchical MOF pores facilitating the storage and transport of Li ions. The Li//LiFePO cell incorporating prepared SSSE shows excellent capacity retention, retaining 97% (162.8 mAh g) of their initial capacity after 100 cycles at 1 C rate at an extremely high temperature of 95 °C. It is believed that this study not only advances the understanding of ion transport in MOF-based SSSE but also significantly contributes to the development of LMB capable of stable and safe operation even under extremely high temperatures.
电子市场的快速发展需要具有高能量密度和容量的储能设备,同时还要具备在恶劣条件下,特别是高温环境下保持稳定和安全运行的能力。在本研究中,通过整合具有分级孔结构的金属有机框架(MOF)作为主体材料,合成了一种用于锂金属电池(LMB)的半固态电解质(SSSE)。通过电化学活化,在这些孔中捕获了微量的液体电解质(LE)。这些发现表明,由于分级MOF孔对锂离子存储和传输的协同作用,这种结构具有出色的性能,包括非常高的热稳定性、扩展的电化学窗口(相对于Li/Li为5.25 V)和强大的锂离子电导率(2.04×10 S cm)。采用制备的SSSE的Li//LiFePO电池显示出优异的容量保持率,在95°C的极高温度下以1 C倍率循环100次后,仍保留其初始容量的97%(162.8 mAh g)。相信这项研究不仅增进了对基于MOF的SSSE中离子传输的理解,而且对即使在极高温度下仍能稳定安全运行的LMB的发展做出了重大贡献。