Theoretical studies of underscreened Kondo physics in quantum dots

We study correlated two-level quantum impurity models coupled to a metallic conduction band in the hope of gaining insight into the physics of nanoscale quantum dot systems. We focus on the possibility of formation of a spin-1 impurity local moment which, on coupling to the band, generates an unders...

Full description

Bibliographic Details
Main Author: Wright, Christopher James
Other Authors: Logan, David Edwin
Published: University of Oxford 2011
Subjects:
Online Access:http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.555320
id ndltd-bl.uk-oai-ethos.bl.uk-555320
record_format oai_dc
spelling ndltd-bl.uk-oai-ethos.bl.uk-5553202015-03-20T04:37:14ZTheoretical studies of underscreened Kondo physics in quantum dotsWright, Christopher JamesLogan, David Edwin2011We study correlated two-level quantum impurity models coupled to a metallic conduction band in the hope of gaining insight into the physics of nanoscale quantum dot systems. We focus on the possibility of formation of a spin-1 impurity local moment which, on coupling to the band, generates an underscreened (USC) singular Fermi liquid state. By employing physical arguments and the numerical renormalization group (NRG) technique, we analyse such systems in detail examining in particular both the thermodynamic and dynamic properties, including the differential conductance. The quantum phase transitions occurring between the USC phase and a more ordinary Fermi liquid (FL) phase are analysed in detail. They are generically found to be of Kosterlitz-Thouless type; exceptions occur along lines of high symmetry where first-order transitions are found. A `Friedel-Luttinger sum rule' is derived and, together with a generalization of Luttinger's theorem to the USC phase, is used to obtain general results for the $T=0$ zero-bias conductance --- it is expressed solely in terms of the number of electrons present on the impurity and applicable in both the USC and FL phases. Relatedly, dynamical signatures of the quantum phase transition show two broad classes of behaviour corresponding to the collapse of either a resonance or antiresonance in the single-particle density of states. Evidence of both of these behaviours is seen in experimental devices. We study also the effect of a local magnetic field on both single- and two-level quantum impurities. In the former case we attempt to resolve some points of contention that remain in the literature. Specifically we show that the position of the maximum in the spin resolved density of states (and related peaks in the differential conductance) is not linear in the applied field, showing a more complicated form than a simple `Zeeman splitting'. The analytic result for the low-field asymptote is recovered. For two-level impurities we illustrate the manner in which the USC state is destroyed: due to two cancelling effects an abrupt change in the zero-bias conductance does not occur as one might expect. Comparison with experiment is made in both cases and used to interpret experimental findings in a manner contrary to previous suggestions. We find that experiments are very rarely in the limit of strong impurity-host coupling. Further, features in the differential conductance as a function of bias voltage should not be simply interpreted in terms of isolated quantum dot states. The many-body nature of such systems is crucially important to their observed properties.621.38152Chemistry & allied sciences : Computational chemistry : Nanomaterials : Physical & theoretical chemistry : Solid state chemistry : Theoretical chemistry : Semiconductor devices : Nanostructures : Condensed Matter Physics : Condensed matter theory : Theoretical physics : Kondo physics : underscreened : quantum dot : numerical renormalization group : magnetic field : Luttinger : conductanceUniversity of Oxfordhttp://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.555320http://ora.ox.ac.uk/objects/uuid:62207edb-af3a-4340-a6f2-5264b1374a41Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 621.38152
Chemistry & allied sciences : Computational chemistry : Nanomaterials : Physical & theoretical chemistry : Solid state chemistry : Theoretical chemistry : Semiconductor devices : Nanostructures : Condensed Matter Physics : Condensed matter theory : Theoretical physics : Kondo physics : underscreened : quantum dot : numerical renormalization group : magnetic field : Luttinger : conductance
spellingShingle 621.38152
Chemistry & allied sciences : Computational chemistry : Nanomaterials : Physical & theoretical chemistry : Solid state chemistry : Theoretical chemistry : Semiconductor devices : Nanostructures : Condensed Matter Physics : Condensed matter theory : Theoretical physics : Kondo physics : underscreened : quantum dot : numerical renormalization group : magnetic field : Luttinger : conductance
Wright, Christopher James
Theoretical studies of underscreened Kondo physics in quantum dots
description We study correlated two-level quantum impurity models coupled to a metallic conduction band in the hope of gaining insight into the physics of nanoscale quantum dot systems. We focus on the possibility of formation of a spin-1 impurity local moment which, on coupling to the band, generates an underscreened (USC) singular Fermi liquid state. By employing physical arguments and the numerical renormalization group (NRG) technique, we analyse such systems in detail examining in particular both the thermodynamic and dynamic properties, including the differential conductance. The quantum phase transitions occurring between the USC phase and a more ordinary Fermi liquid (FL) phase are analysed in detail. They are generically found to be of Kosterlitz-Thouless type; exceptions occur along lines of high symmetry where first-order transitions are found. A `Friedel-Luttinger sum rule' is derived and, together with a generalization of Luttinger's theorem to the USC phase, is used to obtain general results for the $T=0$ zero-bias conductance --- it is expressed solely in terms of the number of electrons present on the impurity and applicable in both the USC and FL phases. Relatedly, dynamical signatures of the quantum phase transition show two broad classes of behaviour corresponding to the collapse of either a resonance or antiresonance in the single-particle density of states. Evidence of both of these behaviours is seen in experimental devices. We study also the effect of a local magnetic field on both single- and two-level quantum impurities. In the former case we attempt to resolve some points of contention that remain in the literature. Specifically we show that the position of the maximum in the spin resolved density of states (and related peaks in the differential conductance) is not linear in the applied field, showing a more complicated form than a simple `Zeeman splitting'. The analytic result for the low-field asymptote is recovered. For two-level impurities we illustrate the manner in which the USC state is destroyed: due to two cancelling effects an abrupt change in the zero-bias conductance does not occur as one might expect. Comparison with experiment is made in both cases and used to interpret experimental findings in a manner contrary to previous suggestions. We find that experiments are very rarely in the limit of strong impurity-host coupling. Further, features in the differential conductance as a function of bias voltage should not be simply interpreted in terms of isolated quantum dot states. The many-body nature of such systems is crucially important to their observed properties.
author2 Logan, David Edwin
author_facet Logan, David Edwin
Wright, Christopher James
author Wright, Christopher James
author_sort Wright, Christopher James
title Theoretical studies of underscreened Kondo physics in quantum dots
title_short Theoretical studies of underscreened Kondo physics in quantum dots
title_full Theoretical studies of underscreened Kondo physics in quantum dots
title_fullStr Theoretical studies of underscreened Kondo physics in quantum dots
title_full_unstemmed Theoretical studies of underscreened Kondo physics in quantum dots
title_sort theoretical studies of underscreened kondo physics in quantum dots
publisher University of Oxford
publishDate 2011
url http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.555320
work_keys_str_mv AT wrightchristopherjames theoreticalstudiesofunderscreenedkondophysicsinquantumdots
_version_ 1716785757238067200