Issue 35, 2020

Theoretically designed two-dimensional γ-C4O as an effective gas separation membrane for hydrogen purification

Abstract

A high-performance gas separation membrane for hydrogen (H2) purification is still highly desirable for the sustainable development of our society. Based on the structure of γ-graphyne, we theoretically designed the two-dimensional nanomaterials γ-C4X (X = O, S or Se) with intrinsic pores that may be suitable for gas separation. By first-principles calculations, we obtained the geometric structures of γ-C4X, and confirmed that γ-C4O and γ-C4S are stable at room temperature. Due to the moderate size of the intrinsic pores, γ-C4O exhibits a lower diffusion barrier and higher permeance for H2 than those of γ-C4S. It is worth noting that at room temperature, the high selectivity (1019) for separating H2 from a H2/CH4 mixture by γ-C4O shows great potential for H2 purification. Moreover, the classic molecular dynamics simulations at 300 K demonstrate that H2 can easily permeate through the intrinsic pores of γ-C4O membranes with high permeability and selectivity, which supports our first-principles calculations.

Graphical abstract: Theoretically designed two-dimensional γ-C4O as an effective gas separation membrane for hydrogen purification

Supplementary files

Article information

Article type
Paper
Submitted
15 May 2020
Accepted
13 Jul 2020
First published
13 Jul 2020

Phys. Chem. Chem. Phys., 2020,22, 19492-19501

Theoretically designed two-dimensional γ-C4O as an effective gas separation membrane for hydrogen purification

C. Ning, Y. Zhang, J. Wang, H. Gao, C. Xiao, Z. Meng and H. Dong, Phys. Chem. Chem. Phys., 2020, 22, 19492 DOI: 10.1039/D0CP02640A

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