Sun Yongjiang, Zhao Genfu, Fu Yao, Yang Yongxin, Zhang Conghui, An Qi, Guo Hong
School of Materials and Energy, Yunnan University, No. 2, Green Lake North Road, Kunming 650091, China.
Research (Wash D C). 2022 Oct 2;2022:9798582. doi: 10.34133/2022/9798582. eCollection 2022.
In addition to improving ion conductivity and the transference number, single-Li-ion conductors (SLCs) also enable the elimination of interfacial side reactions and concentration difference polarization. Therefore, the SLCs can achieve high performance in solid-state batteries with Li metal as anode and organic molecule as cathode. Covalent organic frameworks (COFs) are leading candidates for constructing SLCs because of the excellent 1D channels and accurate chemical-modification skeleton. Herein, various contents of lithium-sulfonated covalently anchored COFs (denoted as LiOS-COF1 and LiOS-COF2) are controllably synthesized as SLCs. Due to the directional ion channels, high Li contents, and single-ion frameworks, LiOS-COF2 shows exceptional Li-ion conductivity of 5.47 × 10 S · cm, high transference number of 0.93, and low activation energy of 0.15 eV at room temperature. Such preeminent Li-ion-transported properties of LiOS-COF2 permit stable Li plating/stripping in a symmetric lithium metal battery, effectively impeding the Li dendrite growth in a liquid cell. Moreover, the designed quasi-solid-state cell (organic anthraquinone (AQ) as cathode, Li metal as anode, and LiOS-COF2 as electrolyte) shows high-capacity retention and rate behavior. Consequently, LiOS-COF2 implies a potential value restraining the dissolution of small organic molecules and Li dendrite growth.
除了提高离子电导率和迁移数外,单锂离子导体(SLCs)还能够消除界面副反应和浓差极化。因此,SLCs在以锂金属为阳极、有机分子为阴极的固态电池中能够实现高性能。共价有机框架(COFs)因其优异的一维通道和精确的化学修饰骨架,成为构建SLCs的主要候选材料。在此,可控合成了不同锂含量的磺化共价锚定COFs(记为LiOS-COF1和LiOS-COF2)作为SLCs。由于其定向离子通道、高锂含量和单离子框架结构,LiOS-COF2在室温下表现出5.47×10⁻⁵ S·cm的优异锂离子电导率、0.93的高迁移数和0.15 eV的低活化能。LiOS-COF2如此卓越的锂离子传输性能使得对称锂金属电池中锂的沉积/剥离稳定,有效抑制了液池中锂枝晶的生长。此外,所设计的准固态电池(以有机蒽醌(AQ)为阴极、锂金属为阳极、LiOS-COF2为电解质)表现出高容量保持率和倍率性能。因此,LiOS-COF2在抑制小分子有机物溶解和锂枝晶生长方面具有潜在价值。