TY - JOUR
T1 - Polypyrene Porous Organic Framework for Efficiently Capturing Electron Specialty Gases
AU - Zhang, Wenxiang
AU - Li, Yinhui
AU - Wu, Yue
AU - Huang, Wenbo
AU - Wang, Shanshan
AU - Fu, Yu
AU - Ma, Wuju
AU - Li, Xiaoyu
AU - Ma, Heping
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/6/21
Y1 - 2023/6/21
N2 - The polypyrene polymer with an extended π-conjugated skeleton is attractive for perfluorinated electron specialty gas (F-gas) capture as the high electronegativity of fluorine atoms makes F-gases strongly electronegative gases. Herein, a polypyrene porous organic framework (termed as Ppy-POF) with an extended π-conjugated structure and excellent acid resistance was constructed. Systematic studies have shown that the abundant π-conjugated structures and gradient electric field distribution in Ppy-POF can endow it exceptional adsorption selectivity for high polarizable F-gases and xenon (Xe), which has been collaboratively confirmed by single-component gas adsorption experiments, time-dependent adsorption rate tests, dynamic breakthrough experiments, etc. Electrostatic potential distribution and charge density difference based on Grand Canonical Monte Carlo simulations and density functional theory calculations demonstrate that the selective adsorption of F-gases and Xe in Ppy-POF is attributed to the strong charge-transfer effect and polarization effect between Ppy-POF and gases. These results manifest that the POF with an extended π-conjugated structure and gradient electric field distribution has great potential in efficiently capturing electron specialty gases.
AB - The polypyrene polymer with an extended π-conjugated skeleton is attractive for perfluorinated electron specialty gas (F-gas) capture as the high electronegativity of fluorine atoms makes F-gases strongly electronegative gases. Herein, a polypyrene porous organic framework (termed as Ppy-POF) with an extended π-conjugated structure and excellent acid resistance was constructed. Systematic studies have shown that the abundant π-conjugated structures and gradient electric field distribution in Ppy-POF can endow it exceptional adsorption selectivity for high polarizable F-gases and xenon (Xe), which has been collaboratively confirmed by single-component gas adsorption experiments, time-dependent adsorption rate tests, dynamic breakthrough experiments, etc. Electrostatic potential distribution and charge density difference based on Grand Canonical Monte Carlo simulations and density functional theory calculations demonstrate that the selective adsorption of F-gases and Xe in Ppy-POF is attributed to the strong charge-transfer effect and polarization effect between Ppy-POF and gases. These results manifest that the POF with an extended π-conjugated structure and gradient electric field distribution has great potential in efficiently capturing electron specialty gases.
KW - Xe and Kr
KW - gas adsorption and separation
KW - perfluorinated electron specialty gases
KW - porous organic frameworks
KW - semiconductor exhaust gases
UR - https://www.scopus.com/pages/publications/85163522763
U2 - 10.1021/acsami.3c05398
DO - 10.1021/acsami.3c05398
M3 - 文章
C2 - 37300495
AN - SCOPUS:85163522763
SN - 1944-8244
VL - 15
SP - 29468
EP - 29477
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 24
ER -