Zhu Xiaolong, Su Zhikang, Tan Ran, Guo Cunlan, Ai Xinping, Qian Jiangfeng
Hubei Key Laboratory of Electrochemical Power Sources, College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, Hubei 430072, China.
Pritzker School of Molecular Engineering, The University of Chicago, Chicago, Illinois 60637, United States.
J Am Chem Soc. 2024 Mar 6;146(9):6388-6396. doi: 10.1021/jacs.4c00975. Epub 2024 Feb 26.
In this work, we develop for the first time a facile chemical lithiation-assisted exfoliation approach to the controllable and scalable preparation of bilayer graphene. Biphenyl lithium (Bp-Li), a strong reducing reagent, is selected to realize the spontaneous Li-intercalation into graphite at ambient temperature, forming lithium graphite intercalation compounds (Li-GICs). The potential of Bp-Li (0.11 V vs Li/Li), which is just lower than the potential of stage-2 lithium intercalation (0.125 V), enables the precise lithiation of graphite to stage-2 Li-GICs (LiC). Intriguingly, the exfoliation of LiC leads to the bilayer-favored production of graphene, giving a high selectivity of 78%. Furthermore, the mild intercalation-exfoliation procedure yields high-quality graphene with negligible structural deterioration. The obtained graphene exhibits ultralow defect density (/ ∼ 0.14) and a considerably high C/O ratio (∼29.7), superior to most current state-of-the-art techniques. This simple and scalable strategy promotes the understanding of chemical Li-intercalation methods for preparing high-quality graphene and shows great potential for layer-controlled engineering.
在这项工作中,我们首次开发了一种简便的化学锂化辅助剥离方法,用于可控且可扩展地制备双层石墨烯。联苯锂(Bp-Li),一种强还原剂,被选用于在室温下实现锂自发插入石墨,形成锂石墨插层化合物(Li-GICs)。Bp-Li的电位(相对于Li/Li为0.11 V),刚好低于二阶锂插层的电位(0.125 V),能够使石墨精确锂化为二阶Li-GICs(LiC)。有趣的是,LiC的剥离导致有利于双层石墨烯的生成,选择性高达78%。此外,温和的插层-剥离过程产生了高质量的石墨烯,结构劣化可忽略不计。所获得的石墨烯表现出超低的缺陷密度(/ ∼ 0.14)和相当高的C/O比(∼29.7),优于目前大多数最先进的技术。这种简单且可扩展的策略促进了对用于制备高质量石墨烯的化学锂插入方法的理解,并在层控工程方面显示出巨大潜力。