Modeling of Light Gases Purification and Carbon Dioxide Capture by 1B-3N and 1N-3B Defects
arXiv:1910.07951
Abstract
In this study, we demonstrate that defected h--BN (1B-3N and 1N-3B defects) can be used as a suitable membrane for hydrogen purification and helium separation using density functional theory (DFT) calculations and molecular dynamics simulations (MD). At 300 K, DFT calculations show that the selectivity of , , , and are , , , and respectively for 1B-3N, while they are , , , and for 1N-3B. Although selectivity of 1B-3N defect is much higher than 1N-3B defect, the permeance of this defect is much lower than industrial limits. To confirm the result obtained by DFT calculations for gas separation performance of 1N-3B defect, the classical molecular dynamics simulations were further carried out. Molecular dynamics simulations confirm the results of DFT calculations except . It demonstrates that the selectivity of will grow, if temperature rises. This phenomenon is explainable by probability density distribution of the molecules at various temperatures. These simulations show that h-BN has good adsorption for molecules and is a suitable membrane for capture. Finally, the excellent selectivity along with acceptable permeance makes 1N-3B defects on h-BN, the promising membrane for He separation and purification.