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Nuclear spin effects in semiconductor quantum dots
Author(s) -
E. A. Chekhovich,
M. N. Makhonin,
A. I. Tartakovskii,
Amir Yacoby,
Hendrik Bluhm,
Katja C. Nowack,
L. M. K. Vandersypen
Publication year - 2013
Publication title -
nature materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 14.344
H-Index - 483
eISSN - 1476-4660
pISSN - 1476-1122
DOI - 10.1038/nmat3652
Subject(s) - spin engineering , physics , quantum dot , spin polarization , spin (aerodynamics) , condensed matter physics , spins , quantum technology , spinplasmonics , quantum , quantum mechanics , electron , spin hall effect , open quantum system , thermodynamics
The interaction of an electronic spin with its nuclear environment, an issue known as the central spin problem, has been the subject of considerable attention due to its relevance for spin-based quantum computation using semiconductor quantum dots. Independent control of the nuclear spin bath using nuclear magnetic resonance techniques and dynamic nuclear polarization using the central spin itself offer unique possibilities for manipulating the nuclear bath with significant consequences for the coherence and controlled manipulation of the central spin. Here we review some of the recent optical and transport experiments that have explored this central spin problem using semiconductor quantum dots. We focus on the interaction between 10(4)-10(6) nuclear spins and a spin of a single electron or valence-band hole. We also review the experimental techniques as well as the key theoretical ideas and the implications for quantum information science.

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