近日,课题组博士生殷齐康论文“Nanochannel Highways in Hybrid Lamellar Membranes: Computational Simulation of Electric Field-Guided CO2 Transport via Molecular Sieving for Ultra-Efficient Separation”被ACS Sustainable Chemistry & Engineering(一区TOP,TF=7.3)接收!

Abstract
The excessive weakness and strength of the interactions between graphene and g-C3N4 with CO2 pose challenges for CO2 separation. Here, we proposed the gas separation nanochannel composed of the interlayer spacing in a two-dimensional graphene/g-C3N4 (Gra/CN) membrane to solve the issue by molecular dynamic simulation. Graphene is a finely tuned electrostatic interaction membrane in direct contact with CO2 within the nanochannel. Due to the proper interaction between Gra/CN and CO2, Gra/CN maintains high CO2 permeance and selectivity under mixed gas conditions at different interlayer spacings, which confirms the good applicability for CO2 separation. Nanochannel became a highway for CO2 separation under an external electric field (Efield) of 1.0 × 10–4 V∙Å–1 along the z-axis, CO2permeance reaches 1.17 × 10–3mol∙s–1∙m–2∙Pa–1 through computational simulation, marking a substantial enhancement of approximately 60.3% relative to conditions without Efield. Simultaneously, the solubility coefficient rises to 4.48 × 107 mol∙m–4∙Paas Efield in the z-axis. Moreover, the calculated energy consumption of CO2 separation is 0.017 GJ∙ton–1, which is below the theoretical minimum value of 0.050 GJ∙ton–1, demonstrating practical feasibility and efficiency in real-world applications. The results of this work highlight the significant role of the synergistic effect of hybrid membrane gas separation nanochannel and Efield in enhancing CO2solubility and permeance, providing valuable theoretical guidance for CO2 separation.