arrow
Return

Atomic clock transitions in silicon-based spin qubits

delete2013-06-23
delete224
delete
OA
AI
G
Gary Wolfowicz *
A
Alexei M. Tyryshkin
R
Richard E. George
H
H. Riemann
N
Nikolai V. Abrosimov
P
Peter Becker
H
Hans-Joachim Pohl
M
M. L. W. Thewalt
S
S. A. Lyon
J
John J. L. Morton
DOI:10.1038/NNANO.2013.117delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
A major challenge in using spins in the solid state for quantum technologies is protecting them from sources of decoherence. This is particularly important in nanodevices where the proximity of material interfaces, and their associated defects, can play a limiting role. Spin decoherence can be addressed to varying degrees by improving material purity or isotopic composition(1,2), for example, or active error correction methods such as dynamic decoupling(3,4) (or even combinations of the two(5,6)). However, a powerful method applied to trapped ions in the context of atomic clocks(7,8) is the use of particular spin transitions that are inherently robust to external perturbations. Here, we show that such 'clock transitions' can be observed for electron spins in the solid state, in particular using bismuth donors in silicon(9,10). This leads to dramatic enhancements in the electron spin coherence time, exceeding seconds. We find that electron spin qubits based on clock transitions become less sensitive to the local magnetic environment, including the presence of Si-29 nuclear spins as found in natural silicon. We expect the use of such clock transitions will be of additional significance for donor spins in nanodevices(11), mitigating the effects of magnetic or electric field noise arising from nearby interfaces and gates.
Keywords:
FREQUENCY STANDARD
QUANTUM
COHERENCE

Journal

Nature Nanotechnology cover
Nature Nanotechnology
IF:
34.9
Papers:
4.8K
Citations:
8.1W

Organization

S
Simon Fraser University
Scholars:
1.0W
Papers: 1.0W
Citations: 1.4W
P
Princeton University
Scholars:
2.1W
Papers: 2.3W
Citations: 5.1W
L
leibniz institut fur kristallzuchtung (ikz)
Scholars:
284
Papers: 195
Citations: 0
P
physikalisch-technische bundesanstalt (ptb)
Scholars:
2.1K
Papers: 1.6K
Citations: 0
U
university of london
Scholars:
21.5W
Papers: 19.7W
Citations: 305
U
university of oxford
Scholars:
9.8W
Papers: 8.6W
Citations: 137
researcher View more organizations