Login / Signup

Theoretical prediction of silicether: a two-dimensional hyperconjugated disilicon monoxide nanosheet.

Gui-Lin ZhuXiao-Juan YeChun-Sheng LiuXiao-Hong Yan
Published in: Nanoscale advances (2020)
The gapless feature and air instability greatly hinder the applications of silicene in nanoelectronics. We theoretically design an oxidized derivative of silicene (named silicether) assembled by disilyl ether molecules. Silicether has an indirect band gap of 1.89 eV with a photoresponse in the ultraviolet-visible region. In addition to excellent thermodynamic stability, it is inert towards oxygen molecules. The material shows the hyperconjugation effect, leading to high performances of in-plane stiffness (107.8 N m -1 ) and electron mobility (6.4 × 10 3 cm 2 V -1 s -1 ). Moreover, the uniaxial tensile strain can trigger an indirect-direct-indirect band gap transition. We identify Ag(100) as a potential substrate for the adsorption and dehydrogenation of disilyl ether. The moderate reaction barriers of dehydrogenation may provide a good possibility of bottom-up growth of silicether. All these outstanding properties make silicether a promising candidate for silicon-based nanoelectronic devices.
Keyphrases
  • aqueous solution
  • deep learning
  • ionic liquid
  • high intensity
  • quantum dots
  • risk assessment
  • water soluble
  • visible light
  • electron microscopy