First-Principles Study on Structural Properties of GeO$_2$ and SiO$_2$ under Compression and Expansion Pressure
Abstract
The detailed analysis of the structural variations of three GeO and SiO polymorphs (-quartz, -cristobalite, and rutile) under compression and expansion pressure is reported. First-principles total-energy calculations reveal that the rutile structure is the most stable phase among the phases of GeO, while SiO preferentially forms quartz. GeO tetrahedras of quartz and cristobalite GeO phases at the equilibrium volume are more significantly distorted than those of SiO. Moreover, in the case of quartz GeO and cristobalite GeO, all O-Ge-O bond angles vary when the volume of the GeO bulk changes from the equilibrium point, which causes further deformation of tetrahedra. In contrast, the tilt angle formed by Si-O-Si in SiO markedly changes. This flexibility of the O-Ge-O bonds reduces the stress at the Ge/GeO interface due to the lattice-constant mismatch and results in the low defective interface observed in the experiments [Matsubara \textit{et al.}: Appl. Phys. Lett. \textbf{93} (2008) 032104; Hosoi \textit{et al.}: Appl. Phys. Lett. \textbf{94} (2009) 202112].
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Cite
@article{arxiv.1008.4998,
title = {First-Principles Study on Structural Properties of GeO$_2$ and SiO$_2$ under Compression and Expansion Pressure},
author = {Shoichiro Saito and Tomoya Ono},
journal= {arXiv preprint arXiv:1008.4998},
year = {2015}
}
Comments
15 pages, 5 figures and 2 tables