The ability to create time-dependent magnetic fields of controlled polarization is essential for many experiments with magnetic resonance. We describe a microstrip circuit that allows us to generate strong magnetic field at microwave frequencies with arbitrary adjusted polarization. The circuit performance is demonstrated by applying it to an optically detected magnetic resonance and Rabi nutation experiments in nitrogen-vacancy color centers in diamond. Thanks to high efficiency of the proposed microstrip circuit and degree of circular polarization of 85%; it is possible to address the specific spin states of a diamond sample using a low power microwave generator. The circuit may be applied to a wide range of magnetic resonance experiments with a well-controlled polarization of microwaves.
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6 July 2015
Research Article|
July 07 2015
Circularly polarized microwaves for magnetic resonance study in the GHz range: Application to nitrogen-vacancy in diamonds Available to Purchase
M. Mrózek;
M. Mrózek
a)
1Institute of Physics,
Jagiellonian University
, Lojasiewicza 11, 30-348 Krakow, Poland
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J. Mlynarczyk;
J. Mlynarczyk
2Department of Electronics,
AGH University of Science and Technology
, Mickiewicza 30, 30-059 Krakow, Poland
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D. S. Rudnicki;
D. S. Rudnicki
1Institute of Physics,
Jagiellonian University
, Lojasiewicza 11, 30-348 Krakow, Poland
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W. Gawlik
W. Gawlik
1Institute of Physics,
Jagiellonian University
, Lojasiewicza 11, 30-348 Krakow, Poland
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M. Mrózek
1,a)
J. Mlynarczyk
2
D. S. Rudnicki
1
W. Gawlik
1
1Institute of Physics,
Jagiellonian University
, Lojasiewicza 11, 30-348 Krakow, Poland
2Department of Electronics,
AGH University of Science and Technology
, Mickiewicza 30, 30-059 Krakow, Poland
a)
Electronic mail: [email protected]
Appl. Phys. Lett. 107, 013505 (2015)
Article history
Received:
March 17 2015
Accepted:
June 18 2015
Citation
M. Mrózek, J. Mlynarczyk, D. S. Rudnicki, W. Gawlik; Circularly polarized microwaves for magnetic resonance study in the GHz range: Application to nitrogen-vacancy in diamonds. Appl. Phys. Lett. 6 July 2015; 107 (1): 013505. https://doi.org/10.1063/1.4923252
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