Skip to Main Content (Press Enter)

Logo UNIME
  • ×
  • Home
  • Degrees
  • Courses
  • Jobs
  • People
  • Outputs
  • Organizations
  • Third Mission
  • Expertise & Skills

Expertise & Skills
Logo UNIME

|

UNIFIND - Expertise & Skills

unime.it
  • ×
  • Home
  • Degrees
  • Courses
  • Jobs
  • People
  • Outputs
  • Organizations
  • Third Mission
  • Expertise & Skills
  1. Outputs

Design, Transport/Molecular Scale Electronics, Electric Properties, and a Conventional Quantum Study of a New Potential Molecular Switch for Nanoelectronic Devices

Academic Article
Publication Date:
2024
abstract:
In this study, we examined the influence of an external electric field applied in two directions: horizontal (X-axis) and vertical (Y-axis) on the electronic and vibrational properties of a field-effect molecular switch, denoted as M. We employed density functional theory and quantum theory of atoms in molecules for this analysis. The current-voltage (I-V) characteristic curve of molecular switch system M was computed by applying the Landauer formula. The results showed that the switching mechanism depends on the direction of the electric field. When the electric field is applied along the X-axis and its intensity is around 0.01 au, OFF/ON switching mechanisms occur. By utilizing electronic localization functions and localized-orbital locator topological analysis, we observed significant intramolecular electronic charge transfer “back and forth” in Au-M-Au systems when compared to the isolated system. The noncovalent interaction revealed that the Au-M-Au complex is also stabilized by electrostatic interactions. However, if the electric field is applied along the Y-axis, a switching mechanism (OFF/ON) occurs when the electric field intensity reaches 0.008 au. Additionally, the local electronic phenomenological coefficients (Lelec) of this field-effect molecular switch were determined by using the Onsager phenomenological approach. It can also be predicted that the molecular electrical conductance (G) increases as Lelec increases. Finally, the electronic and vibrational properties of the proposed models M and Au-M-Au exhibit a powerful switching mechanism that may potentially be employed in a new generation of electronic devices.
Iris type:
14.a.1 Articolo su rivista
Keywords:
Density Functional Theory; Transport Property; Scanning Tunneling Microscopy
List of contributors:
Hadi, H.; Gassoumi, B.; Nasr, S.; Safari, R.; Basha, A. A.; Imran, P. M.; Ghalla, H.; Caccamo, M. T.; Ayachi, S.
Authors of the University:
CACCAMO Maria Teresa
Handle:
https://iris.unime.it/handle/11570/3295573
Full Text:
https://iris.unime.it//retrieve/handle/11570/3295573/621720/ACS_Omega_Caccamo2023.pdf
Published in:
ACS OMEGA
Journal
  • Guide
  • Help
  • Accessibility
  • Privacy
  • Use of cookies
  • Legal notes

Powered by VIVO | Designed by Cineca | 26.4.5.0