Magnetic resonance with ensembles of electron spins is commonly performed around 10 GHz, but also at frequencies above 240 GHz and in corresponding magnetic fields of over 9 T. However, experiments with single electron and nuclear spins so far only reach into frequency ranges of several 10 GHz, where existing coplanar waveguide structures for microwave (MW) delivery are compatible with single spin readout techniques (e.g., electrical or optical readout). Here, we explore the frequency range up to 90 GHz, with magnetic fields of up to ≈3 T for single spin magnetic resonance in conjunction with optical spin readout. To this end, we develop MW resonators with optical single spin access. In our case, rectangular 60–90 GHz (E-band) waveguides guarantee low-loss supply of microwaves to the resonators. Three dimensional cavities, as well as coplanar waveguide resonators, enhance MW fields by spatial and spectral confinement with a MW efficiency of . We utilize single nitrogen vacancy (NV) centers as hosts for optically accessible spins and show that their properties regarding optical spin readout known from smaller fields (<0.65 T) are retained up to fields of 3 T. In addition, we demonstrate coherent control of single nuclear spins under these conditions. Furthermore, our results extend the applicable magnetic field range of a single spin magnetic field sensor. Regarding spin based quantum registers, high fields lead to a purer product basis of electron and nuclear spins, which promises improved spin lifetimes. For example, during continuous single-shot readout, the 14N nuclear spin shows second-long longitudinal relaxation times.
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June 2015
Research Article|
June 22 2015
Single spin optically detected magnetic resonance with 60–90 GHz (E-band) microwave resonators Available to Purchase
Nabeel Aslam;
Nabeel Aslam
a)
13. Physikalisches Institut,
University of Stuttgart
, Pfaffenwaldring 57, 70569 Stuttgart, Germany
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Matthias Pfender
;
Matthias Pfender
13. Physikalisches Institut,
University of Stuttgart
, Pfaffenwaldring 57, 70569 Stuttgart, Germany
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Rainer Stöhr;
Rainer Stöhr
13. Physikalisches Institut,
University of Stuttgart
, Pfaffenwaldring 57, 70569 Stuttgart, Germany
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Philipp Neumann
;
Philipp Neumann
13. Physikalisches Institut,
University of Stuttgart
, Pfaffenwaldring 57, 70569 Stuttgart, Germany
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Marc Scheffler;
Marc Scheffler
21. Physikalisches Institut,
University of Stuttgart
, Pfaffenwaldring 57, 70569 Stuttgart, Germany
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Hitoshi Sumiya;
Hitoshi Sumiya
3
Sumitomo Electric Industries, Ltd.
, Itami 664-001, Japan
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Hiroshi Abe;
Hiroshi Abe
4
Japan Atomic Energy Agency
, Takasaki 370-1292, Japan
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Shinobu Onoda;
Shinobu Onoda
4
Japan Atomic Energy Agency
, Takasaki 370-1292, Japan
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Takeshi Ohshima;
Takeshi Ohshima
4
Japan Atomic Energy Agency
, Takasaki 370-1292, Japan
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Junichi Isoya;
Junichi Isoya
5Research Center for Knowledge Communities,
University of Tsukuba
, Tsukuba 305-8550, Japan
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Jörg Wrachtrup
Jörg Wrachtrup
13. Physikalisches Institut,
University of Stuttgart
, Pfaffenwaldring 57, 70569 Stuttgart, Germany
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Nabeel Aslam
1,a)
Matthias Pfender
1
Rainer Stöhr
1
Philipp Neumann
1
Marc Scheffler
2
Hitoshi Sumiya
3
Hiroshi Abe
4
Shinobu Onoda
4
Takeshi Ohshima
4
Junichi Isoya
5
Jörg Wrachtrup
1
13. Physikalisches Institut,
University of Stuttgart
, Pfaffenwaldring 57, 70569 Stuttgart, Germany
21. Physikalisches Institut,
University of Stuttgart
, Pfaffenwaldring 57, 70569 Stuttgart, Germany
3
Sumitomo Electric Industries, Ltd.
, Itami 664-001, Japan
4
Japan Atomic Energy Agency
, Takasaki 370-1292, Japan
5Research Center for Knowledge Communities,
University of Tsukuba
, Tsukuba 305-8550, Japan
Rev. Sci. Instrum. 86, 064704 (2015)
Article history
Received:
March 20 2015
Accepted:
June 06 2015
Citation
Nabeel Aslam, Matthias Pfender, Rainer Stöhr, Philipp Neumann, Marc Scheffler, Hitoshi Sumiya, Hiroshi Abe, Shinobu Onoda, Takeshi Ohshima, Junichi Isoya, Jörg Wrachtrup; Single spin optically detected magnetic resonance with 60–90 GHz (E-band) microwave resonators. Rev. Sci. Instrum. 1 June 2015; 86 (6): 064704. https://doi.org/10.1063/1.4922664
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