TY - JOUR
T1 - Mathematical Expression and Prediction of VOCs Adsorption Capacity and Isotherm
AU - Zhang, Zhongshen
AU - Wu, Wenqing
AU - Wang, Gang
AU - Wang, Yuan
AU - Wang, Xinxin
AU - Li, Wenpeng
AU - Zhao, Zeyu
AU - Duan, Xiaoxiao
AU - Zhang, Zhihao
AU - Wang, Chunli
AU - Li, Ganggang
AU - Jiang, Guoxia
AU - Zhang, Fenglian
AU - Cheng, Jie
AU - Li, Jinjun
AU - He, Chi
AU - Hao, Zhengping
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/12/11
Y1 - 2024/12/11
N2 - Adsorption capacity prediction, which needs to be based on the precise structure-capacity relationship, is important for better adsorbent design. However, the precise adsorption contribution coefficients of pores of different sizes for volatile organic compound (VOC) adsorption remain unclear. Herein, a control variable method is employed as a generative model to realize the numerization of the precise structure-capacity relationship. For the first time, a concise equation is proposed that can predict the adsorption capacities/isotherms of unknown adsorbents through their pore structure parameters. Interestingly, practical VOC adsorption amounts aligned with predicted values obtained by simultaneously considering pore volume (which undergoes volume-filling adsorption) and surface area (which undergoes surface-covering adsorption) as input variables. Derivation of the equation is based on classical adsorption theories and mathematical expression of the precise structure-capacity relationship obtained from actual experimental results. Each parameter in the equation has a specific physical meaning. This unprecedented VOC adsorption capacity/isotherm prediction method provides in-depth insight for accurate quantification of VOC adsorption, with great potential for gas adsorption prediction and guidance in the development of adsorption materials and technologies.
AB - Adsorption capacity prediction, which needs to be based on the precise structure-capacity relationship, is important for better adsorbent design. However, the precise adsorption contribution coefficients of pores of different sizes for volatile organic compound (VOC) adsorption remain unclear. Herein, a control variable method is employed as a generative model to realize the numerization of the precise structure-capacity relationship. For the first time, a concise equation is proposed that can predict the adsorption capacities/isotherms of unknown adsorbents through their pore structure parameters. Interestingly, practical VOC adsorption amounts aligned with predicted values obtained by simultaneously considering pore volume (which undergoes volume-filling adsorption) and surface area (which undergoes surface-covering adsorption) as input variables. Derivation of the equation is based on classical adsorption theories and mathematical expression of the precise structure-capacity relationship obtained from actual experimental results. Each parameter in the equation has a specific physical meaning. This unprecedented VOC adsorption capacity/isotherm prediction method provides in-depth insight for accurate quantification of VOC adsorption, with great potential for gas adsorption prediction and guidance in the development of adsorption materials and technologies.
UR - https://www.scopus.com/pages/publications/85210281807
U2 - 10.1021/jacs.4c09609
DO - 10.1021/jacs.4c09609
M3 - 文章
C2 - 39586029
AN - SCOPUS:85210281807
SN - 0002-7863
VL - 146
SP - 33434
EP - 33442
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 49
ER -