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Hu, Yongjie ; Kuemmeth, Ferdinand ; Lieber, Charles M. ; Marcus, Charles M.

Hole spin relaxation in Ge–Si core–shell nanowire qubits

Hu, Yongjie, Kuemmeth, Ferdinand , Lieber, Charles M. and Marcus, Charles M. (2011) Hole spin relaxation in Ge–Si core–shell nanowire qubits. Nature Nanotechnology 7, pp. 47-50.

Date of publication of this fulltext: 08 Apr 2026 09:08
Article
DOI to cite this document: 10.5283/epub.79109


Abstract

Controlling decoherence is the most challenging task in realizing quantum information hardware. Single electron spins in gallium arsenide are a leading candidate among solid- state implementations, however strong coupling to nuclear spins in the substrate hinders this approach. To realize spin qubits in a nuclear-spin-free system, intensive studies based on group-IV semiconductor are being ...

Controlling decoherence is the most challenging task in realizing quantum information hardware. Single electron spins in gallium arsenide are a leading candidate among solid- state implementations, however strong coupling to nuclear spins in the substrate hinders this approach. To realize spin qubits in a nuclear-spin-free system, intensive studies based on group-IV semiconductor are being pursued. In this case, the challenge is primarily control of materials and interfaces, and device nanofabrication. We report important steps toward implementing spin qubits in a predominantly nuclear-spin-free system by demonstrating state preparation, pulsed gate control, and charge-sensing spin readout of confined hole spins in a one-dimensional Ge/Si nanowire. With fast gating, we measure T1 spin relaxation times in coupled quantum dots approaching 1 ms, increasing with lower magnetic field, consistent with a spin-orbit mechanism that is usually masked by hyperfine contributions.



Involved Institutions


Details

Item typeArticle
Journal or Publication TitleNature Nanotechnology
Publisher:Springer
Open Access Type:OA-Version in anderem Repositorium
Volume:7
Page Range:pp. 47-50
Date18 December 2011
InstitutionsPhysics > Institute of Experimental and Applied Physics
Identification Number
ValueType
10.1038/nnano.2011.234DOI
1110.4742arXiv ID
Dewey Decimal Classification500 Science > 530 Physics
StatusPublished
RefereedNo, this version has not been refereed yet (as with preprints)
Created at the University of RegensburgNo
URN of the UB Regensburgurn:nbn:de:bvb:355-epub-791093
Item ID79109

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