Published July 26, 2006 | Version v1
Journal article

Renormalization group study of capacitively coupled double quantum dots

  • 1. Oxford University, Physical and Theoretical Chemistry Laboratory, South Parks Road, Oxford OX1 3QZ (United Kingdom)
  • 2. Department of Physics, IISc, Bangalore 560 012 (India)

Description

The numerical renormalization group (NRG) is employed to study a double quantum dot (DQD) system consisting of two equivalent single-level dots, each coupled to its own lead and with a mutual capacitive coupling embodied in an interdot interaction U', in addition to the intradot Coulomb interaction U. We focus on the regime with two electrons on the DQD, and the evolution of the system on increasing U'/U. The spin-Kondo effect arising for U' = 0 (SU(2) x SU(2)) is found to persist robustly with increasing U'/U, before a rapid but continuous crossover to (a) the SU(4) point U' = U where charge and spin degrees of freedom are entangled and the Kondo scale is strongly enhanced; and then (b) a charge-Kondo state, in which a charge-pseudospin is quenched on coupling to the leads/conduction channels. A quantum phase transition of Kosterlitz-Thouless type then occurs from this Fermi liquid, strong coupling (SC) phase, to a broken symmetry, non-Fermi liquid charge ordered (CO) phase at a critical Uc'. Our emphasis in this paper is on the structure, stability and flows between the underlying RG fixed points; on the overall phase diagram in the (U,U')-plane and evolution of the characteristic low-energy Kondo scale inherent to the SC phase; and on static physical properties such as spin- and charge-susceptibilities (staggered and uniform), including universality and scaling behaviour in the strongly correlated regime. Some exact results for associated Wilson ratios are also obtained

Availability note (English)

Available online at http://stacks.iop.org/0953-8984/18/6545/cm6_29_001.pdf or at the Web site for the Journal of Physics. Condensed Matter (ISSN 1361-648X) http://www.iop.org/

Additional details

Publishing Information

Journal Title
Journal of Physics. Condensed Matter
Journal Volume
18
Journal Issue
29
Journal Page Range
p. 6545-6570
ISSN
0953-8984
CODEN
JCOMEL