介孔材料
解吸
吸附
催化作用
吸收能力
化学工程
基础(拓扑)
纳米颗粒
材料科学
比表面积
动力学
燃烧
吸附
纳米技术
化学
有机化学
工程类
物理
数学分析
量子力学
数学
作者
Lei Wang,Yi Yao,Trinh Tran,Patrick Lira,Steven Sternberg,Richard Davis,Zhao Sun,Qinghua Lai,Sam Toan,Jianmin Luo,Yudai Huang,Yun Hang Hu,Maohong Fan
标识
DOI:10.1016/j.jenvman.2023.117398
摘要
Capturing CO2 has become increasingly important. However, wide industrial applications of conventional CO2 capture technologies are limited by their slow CO2 sorption and desorption kinetics. Accordingly, this research is designed to overcome the challenge by synthesizing mesoporous MgO nanoparticles (MgO-NPs) with a new method that uses PEG 1500 as a soft template. MgO surface structure is nonstoichiometric due to its distinctive shape; the abundant Lewis base sites provided by oxygen vacancies promote CO2 capture. Adding 2 wt % MgO-NPs to 20 wt % monoethanolamine (MEA) can increase the breakthrough time (the time with 90% CO2 capturing efficiency) by ∼3000% and can increase the CO2 absorption capacity within the breakthrough time by ∼3660%. The data suggest that MgO-NPs can accelerate the rate and increase CO2 desorption capacity by up to ∼8740% and ∼2290% at 90 °C, respectively. Also, the excellent stability of the system within 50 cycles is verified. These findings demonstrate a new strategy to innovate MEA absorbents currently widely used in commercial post-combustion CO2 capture plants.
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