Phase-Coherent Dynamics of Quantum Devices with Local Interactions

Entropy (Basel). 2020 Jul 31;22(8):847. doi: 10.3390/e22080847.

Abstract

This review illustrates how Local Fermi Liquid (LFL) theories describe the strongly correlated and coherent low-energy dynamics of quantum dot devices. This approach consists in an effective elastic scattering theory, accounting exactly for strong correlations. Here, we focus on the mesoscopic capacitor and recent experiments achieving a Coulomb-induced quantum state transfer. Extending to out-of-equilibrium regimes, aimed at triggered single electron emission, we illustrate how inelastic effects become crucial, requiring approaches beyond LFLs, shedding new light on past experimental data by showing clear interaction effects in the dynamics of mesoscopic capacitors.

Keywords: coulomb blockade; dynamics of strongly correlated quantum systems; kondo effect; local fermi liquids; mesoscopic physics; quantum capacitor; quantum dots; quantum transport.

Publication types

  • Review