杂原子
酿造
吸附
化学
残留物(化学)
多孔性
化学工程
制浆造纸工业
废物管理
食品科学
有机化学
发酵
工程类
戒指(化学)
作者
Guohua Yang,Feiyang Gao,Lingqin Shen,Ke-Jing Huang,Chang-Bo Fu,Qianhui Wu,Ningning Liu,Derek Hao,Zhiqiang Hou
标识
DOI:10.1016/j.indcrop.2025.121180
摘要
Biomass carbon is well-known for its abundant porous structure and heteroatom, indicating potential applications in gas adsorption and energy storage. However, striking a balance between specific surface area and heteroatom content in biomass carbon is challenging, potentially limiting active sites and adsorption kinetics. Here, the corn-derived brewing residue was initially treated at 400 °C in a nitrogen atmosphere, followed by activation at 750 °C using an 85 wt% KOH activator. The two-step process facilitates the production of corn-derived brewing residue porous carbon with a high specific surface area of 3019.7 m 2 ·g –1 and rich nitrogen/oxygen contents (12.52 %). These characteristics enable corn-derived brewing residue porous carbon to exhibit impressive CO 2 uptake (6.45 mmol·g –1 at 0 °C and 3.64 mmol·g –1 at 25 °C under 1.0 bar), along with a high CO 2 /N 2 uptake ratio of 20:1. Density Functional Theory calculations indicate that pyridinic-N species and abundant micropores are crucial for improving CO 2 capture capacity. In addition, the supercapacitor performance of corn-derived brewing residue porous carbon was also investigated, displaying a remarkable area-specific capacity of 836 mF·cm –2 and excellent electrochemical stability. In conclusion, this regulating strategy enhances the potential of corn-derived brewing residue porous carbon for reducing CO 2 emissions and energy storage applications.
科研通智能强力驱动
Strongly Powered by AbleSci AI