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  5. Antilocalization of Coulomb Blockade in a Ge/Si Nanowire

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Article
English
2014

Antilocalization of Coulomb Blockade in a Ge/Si Nanowire

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English
2014
Physical Review Letters
Vol 112 (21)
DOI: 10.1103/physrevlett.112.216806

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Charles M. Lieber
Charles M. Lieber

Harvard University

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Andrew Higginbotham
Ferdinand Kuemmeth
T. W. Larsen
+5 more

Abstract

The distribution of Coulomb blockade peak heights as a function of magnetic field is investigated experimentally in a Ge/Si nanowire quantum dot. Strong spin-orbit coupling in this hole-gas system leads to antilocalization of Coulomb blockade peaks, consistent with theory. In particular, the peak height distribution has its maximum away from zero at zero magnetic field, with an average that decreases with increasing field. Magnetoconductance in the open-wire regime places a bound on the spin-orbit length (${l}_{\mathrm{so}}<20\text{ }\text{ }\mathrm{nm}$), consistent with values extracted in the Coulomb blockade regime (${l}_{\mathrm{so}}<25\text{ }\text{ }\mathrm{nm}$).

How to cite this publication

Andrew Higginbotham, Ferdinand Kuemmeth, T. W. Larsen, Mattias Fitzpatrick, Jun Yao, Hao Yan, Charles M. Lieber, C. M. Marcus (2014). Antilocalization of Coulomb Blockade in a Ge/Si Nanowire. Physical Review Letters, 112(21), DOI: 10.1103/physrevlett.112.216806.

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Publication Details

Type

Article

Year

2014

Authors

8

Datasets

0

Total Files

0

Language

English

Journal

Physical Review Letters

DOI

10.1103/physrevlett.112.216806

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