Ma Xiao, Li Shiyue, Tang Wenhao, Liu Ruiping, Fu Zilong, Wang Shaoqing
School of Geoscience and Surveying Engineering, China University of Mining & Technology (Beijing), Beijing, 100083, P. R. China.
School of Chemical and Environmental Engineering, China University of Mining & Technology (Beijing), Beijing, 100083, P. R. China.
Adv Sci (Weinh). 2025 Jul;12(28):e2504592. doi: 10.1002/advs.202504592. Epub 2025 May 8.
Graphene have been considered as the one of the most promising anode materials for the next generation lithium-ion batteries (LIBs) due to its unique properties compared to that of the commercial available graphite anode. However, the tedious preparation process, high cost and easy aggregation of 2D graphene caused by the strong van der Waals interactions among nanosheets affect the high reversible capacity of graphene for LIBs. Herein, a laser-induced strategy employing bituminous coal as a precursor for the preparation of porous graphene-based materials (LIG-B) is reported. LIG-B exhibits a porous foam-like structure and an enlarged interlayer spacing, which is larger than that of graphene with typical AB stacking. As the anode for LIBs, the LIG-B shows a high specific capacity of 400 mAh g at the current density of 100 mA g, and up to 95.0% of the initial reversible capacity retention after 900 cycles at 100 mA g. This result is higher than that of graphene-based materials such as N-doped rGO (200 mAh g), N-doped Graphene film (150 mAh g), and rGO film (80 mAh g). Most importantly, a high capacity of 220 mAh g can be maintained at 2000 mA g, indicating its superior rate capability. This work provides a low-cost method to synthesize porous graphene-based materials with fast Li/electronic conductivity for high-performance LIBs.
由于与市售石墨负极相比具有独特性能,石墨烯被认为是下一代锂离子电池(LIBs)最有前景的负极材料之一。然而,二维石墨烯繁琐的制备过程、高成本以及由于纳米片之间强烈的范德华相互作用导致的容易聚集,影响了石墨烯在LIBs中的高可逆容量。在此,报道了一种以烟煤为前驱体制备多孔石墨烯基材料(LIG-B)的激光诱导策略。LIG-B呈现出多孔泡沫状结构和扩大的层间距,其大于具有典型AB堆积的石墨烯的层间距。作为LIBs的负极,LIG-B在100 mA g的电流密度下显示出400 mAh g的高比容量,并且在100 mA g下循环900次后初始可逆容量保持率高达95.0%。该结果高于诸如N掺杂的还原氧化石墨烯(200 mAh g)、N掺杂石墨烯薄膜(150 mAh g)和还原氧化石墨烯薄膜(80 mAh g)等石墨烯基材料。最重要的是,在2000 mA g下可以保持220 mAh g的高容量,表明其优异的倍率性能。这项工作提供了一种低成本方法来合成具有快速Li/电子传导性的多孔石墨烯基材料,用于高性能LIBs。