Transferable molecular model for benzimidazole-linked polymer membranes applied in hydrogen separationOA
Benzimidazole-linked polymers(BILPs),with their densely cross-linked ultramicroporous networks,are promising for hydrogen separation.However,the molecular selectivity mechanisms remain poorly understood,hindering rational design.We present a multiscale simulation for BILPs,using BILP-101 as a model,to precisely resolve its microstructural features and elucidate H_(2)separation performance at an unprecedented molecular level.Through meticulous optimization of simulation protocols,including force fields,atomic charges,chain configurations,and equilibration cycles,optimal simulation protocols were identified,and the interplay of pore architecture and chemical interactions driving H_(2)selectivity was uncovered.Our simulations not only demonstrate precise control over pore geometry but also accurately replicate experimental H_(2)/CO_(2),H_(2)/N_(2),H_(2)/CH_(4)separation performance across standard and elevated temperatures.The generality of our model was further validated by its strong agreement with empirical data for BILP-5 and BILP-15.This work bridges advanced molecular modeling with experimental validation,providing design principles to accelerate the development of next-generation BILPs or other polymer membranes for energy-efficient gas separation.
Qianqian Zhu;Shaofan Duan;Meixia Shan;Freek Kapteijn;Xin Gao;Yatao Zhang;Dongyang Li
School of Chemical Engineering,Zhengzhou University,Zhengzhou,450002,ChinaSchool of Chemical Engineering,Zhengzhou University,Zhengzhou,450002,ChinaSchool of Chemical Engineering,Zhengzhou University,Zhengzhou,450002,ChinaChemical Engineering Department,Delft University of Technology,Van der Maasweg 9,HZ Delft,2629,the NetherlandsSchool of Chemical Engineering and Technology,National Engineering Research Center of Distillation Technology,Tianjin University,Tianjin,300072,ChinaSchool of Chemical Engineering,Zhengzhou University,Zhengzhou,450002,ChinaSchool of Chemical Engineering,Zhengzhou University,Zhengzhou,450002,China
化学化工
Hydrogen separationBenzimidazole polymerMolecular simulationMechanism explanation
《Green Energy & Environment》 2026 (5)
P.1324-1334,11
supported by the National Natural Science Foundation of China(No.22208317,52473223,U2267225,U25A20608)China Postdoctoral Science Foundation(No.2023M743172)Science and Technology Innovation Leading Talent Support Program of Henan Province(254000510023)。
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