Spin-orbit effects in carbon-nanotube double quantum dots

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Spin-orbit effects in carbon-nanotube double quantum dots. / Weiss, S; Rashba, E I; Kuemmeth, Ferdinand; Churchill, H O H; Flensberg, K.

In: Physical Review B Condensed Matter, Vol. 82, No. 16, 14.10.2010, p. 165427.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Weiss, S, Rashba, EI, Kuemmeth, F, Churchill, HOH & Flensberg, K 2010, 'Spin-orbit effects in carbon-nanotube double quantum dots', Physical Review B Condensed Matter, vol. 82, no. 16, pp. 165427. https://doi.org/10.1103/PhysRevB.82.165427

APA

Weiss, S., Rashba, E. I., Kuemmeth, F., Churchill, H. O. H., & Flensberg, K. (2010). Spin-orbit effects in carbon-nanotube double quantum dots. Physical Review B Condensed Matter, 82(16), 165427. https://doi.org/10.1103/PhysRevB.82.165427

Vancouver

Weiss S, Rashba EI, Kuemmeth F, Churchill HOH, Flensberg K. Spin-orbit effects in carbon-nanotube double quantum dots. Physical Review B Condensed Matter. 2010 Oct 14;82(16):165427. https://doi.org/10.1103/PhysRevB.82.165427

Author

Weiss, S ; Rashba, E I ; Kuemmeth, Ferdinand ; Churchill, H O H ; Flensberg, K. / Spin-orbit effects in carbon-nanotube double quantum dots. In: Physical Review B Condensed Matter. 2010 ; Vol. 82, No. 16. pp. 165427.

Bibtex

@article{b9af020b048d44cc9498a565a92a1120,
title = "Spin-orbit effects in carbon-nanotube double quantum dots",
abstract = "We study the energy spectrum of symmetric double quantum dots in narrow-gap carbon nanotubes with one and two electrostatically confined electrons in the presence of spin-orbit and Coulomb interactions. Compared to GaAs quantum dots, the spectrum exhibits a much richer structure because of the spin-orbit interaction that couples the electron's isospin to its real spin through two independent coupling constants. In a single dot, both constants combine to split the spectrum into two Kramers doublets while the antisymmetric constant solely controls the difference in the tunneling rates of the Kramers doublets between the dots. For the two-electron regime, the detailed structure of the spin-orbit split energy spectrum is investigated as a function of detuning between the quantum dots in a 22-dimensional Hilbert space within the framework of a single-longitudinal-mode model. We find a competing effect of the tunneling and Coulomb interaction. The former favors a left-right symmetric two-particle ground state while in the regime where the Coulomb interaction dominates over tunneling, a left-right antisymmetric ground state is found. As a result, ground states on both sides of the (11)-(02) degeneracy point may possess opposite left-right symmetry, and the electron dynamics when tuning the system from one side of the (11)-(02) degeneracy point to the other is controlled by three selection rules (in spin, isospin, and left-right symmetry). We discuss implications for the spin-dephasing and Pauli blockade experiments.",
author = "S Weiss and Rashba, {E I} and Ferdinand Kuemmeth and Churchill, {H O H} and K Flensberg",
year = "2010",
month = oct,
day = "14",
doi = "10.1103/PhysRevB.82.165427",
language = "English",
volume = "82",
pages = "165427",
journal = "Physical Review B",
issn = "2469-9950",
publisher = "American Physical Society",
number = "16",

}

RIS

TY - JOUR

T1 - Spin-orbit effects in carbon-nanotube double quantum dots

AU - Weiss, S

AU - Rashba, E I

AU - Kuemmeth, Ferdinand

AU - Churchill, H O H

AU - Flensberg, K

PY - 2010/10/14

Y1 - 2010/10/14

N2 - We study the energy spectrum of symmetric double quantum dots in narrow-gap carbon nanotubes with one and two electrostatically confined electrons in the presence of spin-orbit and Coulomb interactions. Compared to GaAs quantum dots, the spectrum exhibits a much richer structure because of the spin-orbit interaction that couples the electron's isospin to its real spin through two independent coupling constants. In a single dot, both constants combine to split the spectrum into two Kramers doublets while the antisymmetric constant solely controls the difference in the tunneling rates of the Kramers doublets between the dots. For the two-electron regime, the detailed structure of the spin-orbit split energy spectrum is investigated as a function of detuning between the quantum dots in a 22-dimensional Hilbert space within the framework of a single-longitudinal-mode model. We find a competing effect of the tunneling and Coulomb interaction. The former favors a left-right symmetric two-particle ground state while in the regime where the Coulomb interaction dominates over tunneling, a left-right antisymmetric ground state is found. As a result, ground states on both sides of the (11)-(02) degeneracy point may possess opposite left-right symmetry, and the electron dynamics when tuning the system from one side of the (11)-(02) degeneracy point to the other is controlled by three selection rules (in spin, isospin, and left-right symmetry). We discuss implications for the spin-dephasing and Pauli blockade experiments.

AB - We study the energy spectrum of symmetric double quantum dots in narrow-gap carbon nanotubes with one and two electrostatically confined electrons in the presence of spin-orbit and Coulomb interactions. Compared to GaAs quantum dots, the spectrum exhibits a much richer structure because of the spin-orbit interaction that couples the electron's isospin to its real spin through two independent coupling constants. In a single dot, both constants combine to split the spectrum into two Kramers doublets while the antisymmetric constant solely controls the difference in the tunneling rates of the Kramers doublets between the dots. For the two-electron regime, the detailed structure of the spin-orbit split energy spectrum is investigated as a function of detuning between the quantum dots in a 22-dimensional Hilbert space within the framework of a single-longitudinal-mode model. We find a competing effect of the tunneling and Coulomb interaction. The former favors a left-right symmetric two-particle ground state while in the regime where the Coulomb interaction dominates over tunneling, a left-right antisymmetric ground state is found. As a result, ground states on both sides of the (11)-(02) degeneracy point may possess opposite left-right symmetry, and the electron dynamics when tuning the system from one side of the (11)-(02) degeneracy point to the other is controlled by three selection rules (in spin, isospin, and left-right symmetry). We discuss implications for the spin-dephasing and Pauli blockade experiments.

U2 - 10.1103/PhysRevB.82.165427

DO - 10.1103/PhysRevB.82.165427

M3 - Journal article

VL - 82

SP - 165427

JO - Physical Review B

JF - Physical Review B

SN - 2469-9950

IS - 16

ER -

ID: 44225064