Analysis of single and composite structural defects in pure amorphous silicon: a first-principles study
Abstract
The structural and electronic properties of amorphous silicon (-Si) are investigated by first-principles calculations based on the density-functional theory (DFT), focusing on the intrinsic structural defects. By simulated melting and quenching of a crystalline silicon model through the Car-Parrinello molecular dynamics (CPMD), we generate several different -Si samples, in which three-fold (), five-fold (), and anomalous four-fold () defects are contained. Using the samples, we clarify how the disordered structure of -Si affects the characters of its density of states (DOS). We subsequently study the properties of defect complexes found in the obtained samples, including one that comprises three defects, and we show the conditions for the defect complexes to be energetically stable. Finally, we investigate the hydrogen passivation process of the defects in -Si and show that the hydrogenation of is an exothermic reaction and that the activation energy for a H molecule to passivate two sites is calculated to be 1.05 eV.
Cite
@article{arxiv.1705.09266,
title = {Analysis of single and composite structural defects in pure amorphous silicon: a first-principles study},
author = {Yoritaka Furukawa and Yu-ichiro Matsushita},
journal= {arXiv preprint arXiv:1705.09266},
year = {2017}
}