English

Analysis of single and composite structural defects in pure amorphous silicon: a first-principles study

Materials Science 2017-10-11 v1

Abstract

The structural and electronic properties of amorphous silicon (aa-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 aa-Si samples, in which three-fold (T3T_3), five-fold (T5T_5), and anomalous four-fold (T4aT_{4a}) defects are contained. Using the samples, we clarify how the disordered structure of aa-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 T5T_5 defects, and we show the conditions for the defect complexes to be energetically stable. Finally, we investigate the hydrogen passivation process of the T5T_5 defects in aa-Si and show that the hydrogenation of T5T_5 is an exothermic reaction and that the activation energy for a H2_2 molecule to passivate two T5T_5 sites is calculated to be 1.05 eV.

Keywords

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}
}
R2 v1 2026-06-22T19:59:12.721Z