Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education, School of Energy and Environment, Southeast University, Nanjing 210096, PR China.
School of Materials Science and Engineering, University of Jinan, Jinan 250022, PR China.
J Colloid Interface Sci. 2023 Jul 15;642:736-746. doi: 10.1016/j.jcis.2023.03.200. Epub 2023 Mar 31.
Carbon morphology significantly affects the capacitive performance of porous carbons. Biomass-derived porous carbons are usually restricted by inferior capacitive performance owing to their inherently three-dimensional (3D) blocked morphologies. Fabricating two-dimensional (2D) sheet-like morphology is expected to expose more inner space for better electrochemical performance, however, it needs to overcome the self-aggregation of biomass. The comprehensive understanding of how 2D morphology boosts capacitive performance remains challenging. Herein, we provide a morphology-regulating strategy to prepare 2D and 3D porous carbons and investigate the morphology effect on charge storage capability via both experimental data and theoretical simulations. 2D carbon exhibits better capacitance than 3D carbon in both electric double-layer capacitors (254 versus 211F g) and zinc-ion hybrid supercapacitors (320 versus 232F g), because the 2D carbon morphology not only improves the pore accessibility for higher double-layer capacitance, but also facilitates the exposure of active functional groups for more pseudocapacitance. Moreover, 2D morphology shortens pore length, leading to better anti-self-discharge capability. This study is beneficial to understanding the relationship between carbon morphology and capacitive performance and provides a facile strategy to upgrade biomass-derived porous carbons via morphology engineering.
碳形态对多孔碳的电容性能有显著影响。由于生物质固有的三维(3D)封闭形态,生物质衍生的多孔碳的电容性能通常较差。构建二维(2D)片状形态有望为更好的电化学性能暴露更多的内部空间,但需要克服生物质的自聚集。全面了解 2D 形态如何提高电容性能仍然具有挑战性。在此,我们提供了一种形态调节策略,用于制备 2D 和 3D 多孔碳,并通过实验数据和理论模拟研究了形态对电荷存储能力的影响。在双电层电容器(254 与 211F g)和锌离子混合超级电容器(320 与 232F g)中,2D 碳的电容性能均优于 3D 碳,因为 2D 碳形态不仅提高了更高的双层电容的孔可及性,而且有利于暴露更多的赝电容活性官能团。此外,2D 形态缩短了孔长度,从而具有更好的抗自放电能力。这项研究有助于理解碳形态与电容性能之间的关系,并提供了一种通过形态工程升级生物质衍生多孔碳的简便策略。