The Efficiency of a Quantum Brayton Engine Using Wood-Saxon Potential

Authors

DOI:

https://doi.org/10.4314/40b85h53

Keywords:

Quantum thermodynamics, Wood-Saxon, Carnot cycle, Quantum heat engines, finite-engine

Abstract

This paper investigates the efficiency of a Quantum Brayton Engine (QBE) using the Wood-Saxon (WS) potential as the working substance. The WS potential offers a more realistic model compared to the traditional Free-Particle (FP) model for studying quantum systems. The work follows the formalism established by Bender et al. (2000) to describe the QBE cycle with two isentropic and two adiabatic processes. The efficiency expression for the QBE with WS potential is derived. The derived efficiency expression showcases the dependence on the parameters of the WS potential, including depth, confinement width, and diffuseness. By taking the FP limit of the WS model, the efficiency reduces to the well-known expression for a QBE with a free particle, validating the approach. This research demonstrates the potential of the WS potential for analyzing the performance of QBE and paves the way for further exploration of more realistic models in quantum thermodynamics.

Author Biographies

  • Oladimeji Enock Oluwole, Federal University Lokoja, Lokoja, Nigeria

    Theoretical Physics Group,

    Department of Physics

  • Umeh Emmanuel Chukwuebuka, Federal University Lokoja, Lokoja, Nigeria.

    Theoretical Physics Group,

    Department of Physics

  • Idundun Victory Toritseju, Federal University Lokoja, Lokoja, Nigeria

    Theoretical Physics Group,

    Department of Physics

  • Koffa Durojaiye Jude, Federal University Lokoja, Lokoja, Nigeria

    Theoretical Physics Group,

    Department of Physics

  • Obaje Vivian Onechojo, Kogi State University, Anyigba, Nigeria

    Department of Physics

  • Uzer John Mkohol, Federal University Lokoja, Lokoja, Nigeria

    Department of Physics

  • Etim Emmanuel Edet, Federal University Wukari, Nigeria

    Department of Chemical Sciences

Downloads

Published

2024-06-10

Most read articles by the same author(s)

Similar Articles

11-18 of 18

You may also start an advanced similarity search for this article.