吸附
聚苯乙烯
材料科学
化学工程
二乙烯基苯
分子
吸热过程
吸附
多孔性
放热反应
化学吸附
单层
复合材料
聚合物
密度泛函理论
复合数
扩散
三乙烯四胺
疏水
电荷密度
悬浮聚合
放热过程
高分子化学
比表面积
表面电荷
解吸
X射线光电子能谱
作者
Panpan Dai,Xinmin Liu,Yunze Teng,Qingrui Zhang,Qingjie Guo
出处
期刊:Energy & Fuels
[American Chemical Society]
日期:2025-11-12
卷期号:39 (46): 22311-22325
被引量:2
标识
DOI:10.1021/acs.energyfuels.5c04339
摘要
The porous resin microspheres possess characteristics such as high specific surface area, adjustable pore structure and modifiable surface chemical properties, thus having great potential in CO 2 adsorption. In this study, cross-linked polystyrene resins with varying degrees of cross-linking were prepared through suspension polymerization, and then modified to obtain cross-linked resin-based composite materials. Under the conditions of 60 °C and 0.1 MPa pressure, when the content of divinylbenzene (DVB) was 60 wt % and triethylenetetramine (TEPA) was 40 wt %, the CO 2 adsorption capacity reached 4.46 mmol/g, which was significantly higher than that of pure polystyrene resin (1.68 mmol/g). A three-dimensional cross-linked system model composed of DVB and polystyrene was constructed by molecular dynamics simulation. The adsorption sites of CO 2 and N 2 in the material were mapped using the Grand canonical Monte Carlo (GCMC) simulation. Through thermodynamic analysis, adsorption isotherm modeling, and kinetic calculations, the exothermic nature of the adsorption process on amine-modified cross-linked resin was established. These findings indicate a monolayer adsorption mechanism, thereby confirming the predominance of chemisorption and the presence of surface diffusion behavior. Density functional theory (DFT) calculations were performed to quantify the interaction strength between gas molecules and the material surface through adsorption heat analysis. Additionally, the impact of H 2 O on the adsorption process was investigated by combining transition state search techniques to identify key intermediates in the adsorption reaction and charge density analysis to elucidate charge transfer mechanisms between H 2 O molecules, the adsorbent, and target gas molecules.
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