Issue 20, 2018

A first-principles study of hydrogen storage capacity based on Li–Na-decorated silicene

Abstract

Surface decoration with alkali metal adatoms has been predicted to be promising for silicene to obtain high hydrogen storage capacity. Herein, we performed a detailed study of the hydrogen storage properties of Li and Na co-decorated silicene (Li–Na-decorated silicene) based on first-principles calculations using van der Waals correction. The hydrogen adsorption behaviors, including the adsorption order, the maximum capacity, and the corresponding mechanism were analyzed in detail. Our calculations show that up to three hydrogen molecules can firmly bind to each Li atom and six for each Na atom, respectively. The hydrogen storage capacity is estimated to be as high as 6.65 wt% with a desirable average adsorption energy of 0.29 eV/H2. It is confirmed that both the charge-induced electrostatic interaction and the orbital hybridizations play a great role in hydrogen storage. Our results may enhance our fundamental understanding of the hydrogen storage mechanism, which is of great importance for the practical application of Li–Na-decorated silicene in hydrogen storage.

Graphical abstract: A first-principles study of hydrogen storage capacity based on Li–Na-decorated silicene

Supplementary files

Article information

Article type
Paper
Submitted
31 Jan 2018
Accepted
18 Apr 2018
First published
25 Apr 2018

Phys. Chem. Chem. Phys., 2018,20, 13903-13908

A first-principles study of hydrogen storage capacity based on Li–Na-decorated silicene

Z. Sheng, S. Wu, X. Dai, T. Zhao and Y. Hao, Phys. Chem. Chem. Phys., 2018, 20, 13903 DOI: 10.1039/C8CP00722E

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