Publication: Adsorption and Diffusion of Lithium on Layered Silicon for Li-Ion Storage
No Thumbnail Available
Open/View Files
Date
2013
Published Version
Journal Title
Journal ISSN
Volume Title
Publisher
American Chemical Society
The Harvard community has made this article openly available. Please share how this access benefits you.
Citation
Tritsaris, Georgios A., Efthimios Kaxiras, Sheng Meng, and Enge Wang. 2013. “Adsorption and Diffusion of Lithium on Layered Silicon for Li-Ion Storage.” Nano Letters 13 (5): 2258–63. https://doi.org/10.1021/nl400830u.
Research Data
Abstract
The energy density of Li-ion batteries depends critically on the specific charge capacity of the constituent electrodes. Silicene, the silicon analogue to graphene, being of atomic thickness could serve as high-capacity host of Li in Li-ion secondary batteries. In this work, we employ first-principles calculations to investigate the interaction of Li with Si in model electrodes of free-standing single-layer and double-layer silicene. More specifically, we identify strong binding sites for Li, calculate the energy barriers accompanying Li diffusion, and present our findings in the context of previous theoretical work related to Li-ion storage in other structural forms of silicon: the bulk and nanowires. The binding energy of Li is similar to 2.2 eV per Li atom and shows small variation with respect to Li content and silicene thickness (one or two layers) while the barriers for Li diffusion are relatively low, typically less than 0.6 eV. We use our theoretical findings to assess the suitability of two-dimensional silicon in the form of silicene layers for Li-ion storage.
Description
Other Available Sources
Keywords
Terms of Use
Metadata Only