dc.contributor.author |
Soare, A
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dc.contributor.author |
Ball, H
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|
dc.contributor.author |
Hayes, D
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dc.contributor.author |
Zhen, X
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dc.contributor.author |
Jarratt, MC
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dc.contributor.author |
Sastrawan, J
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dc.contributor.author |
Uys, H
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dc.contributor.author |
Biercuk, MJ
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dc.date.accessioned |
2014-08-08T09:24:17Z |
|
dc.date.available |
2014-08-08T09:24:17Z |
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dc.date.issued |
2014-04 |
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dc.identifier.citation |
Soare, A, Ball, H, Hayes, D, Zhen, X, Jarratt, M.C, Sastrawan, J, Uys, H and Biercuk, M.J. 2014. Experimental bath engineering for quantitative studies of quantum control. Physical Review A, vol. 89, pp 042329(1)- 042329(12) |
en_US |
dc.identifier.issn |
1050-2947 |
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dc.identifier.uri |
http://journals.aps.org/pra/pdf/10.1103/PhysRevA.89.042329
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|
dc.identifier.uri |
http://hdl.handle.net/10204/7570
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dc.description |
Copyright: 2014 American Physical Society. This is an open access journal. The journal authorizes the publication of the information here with contained. Published in Physical Review A, vol. 89, pp Physical Review A |
en_US |
dc.description.abstract |
We develop and demonstrate a technique to engineer universal unitary baths in quantum systems. Using the correspondence between unitary decoherence due to ambient environmental noise and errors in a control system for quantum bits, we show how a wide variety of relevant classical error models may be realized through in-phase or in-quadrature modulation on a vector signal generator producing a resonant carrier signal. We demonstrate our approach through high-bandwidth modulation of the 12.6-GHz carrier appropriate for trapped 171Yb+ ions. Experiments demonstrate the reduction of coherent lifetime in the system in the presence of both engineered dephasing noise during free evolution and engineered amplitude noise during driven operations. In both cases, the observed reduction of coherent lifetimes matches well with quantitative models described herein. These techniques form the basis of a toolkit for quantitative tests of quantum control protocols, helping experimentalists characterize the performance of their quantum coherent systems. |
en_US |
dc.language.iso |
en |
en_US |
dc.publisher |
American Physical Society |
en_US |
dc.relation.ispartofseries |
Workflow;13122 |
|
dc.subject |
Quantum systems |
en_US |
dc.subject |
Bath engineering |
en_US |
dc.subject |
Environmental noises |
en_US |
dc.subject |
Universal unitary baths |
en_US |
dc.subject |
Unitary decoherence |
en_US |
dc.title |
Experimental bath engineering for quantitative studies of quantum control |
en_US |
dc.type |
Article |
en_US |
dc.identifier.apacitation |
Soare, A., Ball, H., Hayes, D., Zhen, X., Jarratt, M., Sastrawan, J., ... Biercuk, M. (2014). Experimental bath engineering for quantitative studies of quantum control. http://hdl.handle.net/10204/7570 |
en_ZA |
dc.identifier.chicagocitation |
Soare, A, H Ball, D Hayes, X Zhen, MC Jarratt, J Sastrawan, H Uys, and MJ Biercuk "Experimental bath engineering for quantitative studies of quantum control." (2014) http://hdl.handle.net/10204/7570 |
en_ZA |
dc.identifier.vancouvercitation |
Soare A, Ball H, Hayes D, Zhen X, Jarratt M, Sastrawan J, et al. Experimental bath engineering for quantitative studies of quantum control. 2014; http://hdl.handle.net/10204/7570. |
en_ZA |
dc.identifier.ris |
TY - Article
AU - Soare, A
AU - Ball, H
AU - Hayes, D
AU - Zhen, X
AU - Jarratt, MC
AU - Sastrawan, J
AU - Uys, H
AU - Biercuk, MJ
AB - We develop and demonstrate a technique to engineer universal unitary baths in quantum systems. Using the correspondence between unitary decoherence due to ambient environmental noise and errors in a control system for quantum bits, we show how a wide variety of relevant classical error models may be realized through in-phase or in-quadrature modulation on a vector signal generator producing a resonant carrier signal. We demonstrate our approach through high-bandwidth modulation of the 12.6-GHz carrier appropriate for trapped 171Yb+ ions. Experiments demonstrate the reduction of coherent lifetime in the system in the presence of both engineered dephasing noise during free evolution and engineered amplitude noise during driven operations. In both cases, the observed reduction of coherent lifetimes matches well with quantitative models described herein. These techniques form the basis of a toolkit for quantitative tests of quantum control protocols, helping experimentalists characterize the performance of their quantum coherent systems.
DA - 2014-04
DB - ResearchSpace
DP - CSIR
KW - Quantum systems
KW - Bath engineering
KW - Environmental noises
KW - Universal unitary baths
KW - Unitary decoherence
LK - https://researchspace.csir.co.za
PY - 2014
SM - 1050-2947
T1 - Experimental bath engineering for quantitative studies of quantum control
TI - Experimental bath engineering for quantitative studies of quantum control
UR - http://hdl.handle.net/10204/7570
ER -
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en_ZA |