Asymmetric nonlinear conductance of quantum dots with broken inversion symmetry

Citation
H. Linke et al., Asymmetric nonlinear conductance of quantum dots with broken inversion symmetry, PHYS REV B, 61(23), 2000, pp. 15914-15926
Citations number
51
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Journal title
PHYSICAL REVIEW B
ISSN journal
01631829 → ACNP
Volume
61
Issue
23
Year of publication
2000
Pages
15914 - 15926
Database
ISI
SICI code
0163-1829(20000615)61:23<15914:ANCOQD>2.0.ZU;2-O
Abstract
Coherent electron transport in open, asymmetric (triangular) quantum dots i s studied experimentally and theoretically in the nonlinear response regime . The nonlinear dot conductance is found to be asymmetric with respect to z ero bias voltage. This conductance asymmetry is related to the nonsymmetric effect of an applied electric field on the quantum electron states inside the dot and on their coupling to the states in the electron reservoirs. The direction of the asymmetry depends sensitively on the amplitude of an appl ied ac voltage, on the Fermi energy and on the magnetic field, and is suppr essed at temperatures above a few Kelvin. Quantum dots can therefore be vie wed as ratchets, that is, devices in which directed particle how is induced by nonequilibrium fluctuations, in the absence of (time-averaged) external net forces and gradients. A quantum mechanical model calculation reproduce s the key experimental observations. The magnitude of the conductance asymm etry is found to depend strongly on the electric field distribution inside the dot. In addition to exact calculations, an approximation is presented w hich makes it possible to qualitatively predict the nonlinear behavior from the energy dependence of the conductance in the linear response regime. We also discuss a semiclassical explanation for our observations and comment on limits of quantum-interference induced rectification.