Finite temperature quantum transport in nanosensors based on graphene nanoribbons

ORAL

Abstract

We study finite temperature quantum conductance of nanosensors based on graphene nanoribbons exposed to carbon and nitrogen oxides. Using ab-initio-based Green's function formalism, the quantum conductance of the nanoribbon with and without adsorbed oxide molecules is calculated. We investigate the effects of molecular vibrations and electron-vibron coupling on conductance modulation. The implication of the results concerning nanosensor functionality under desired environmental temperatures, and the differences with the low-temperature cases, are discussed

*This research is supported by the National Science Foundation Grant ECCS- 0925939.

Authors

  • Kirti Kant Paulla

    • Department of Mechanical and Materials Engineering, Wright State University
  • Amir Farajian

    • Department of Mechanical and Materials Engineering, Wright State University