Temperature sensing with RF-dressed states of nitrogen-vacancy centers in diamond

Author:

Tabuchi Hibiki12ORCID,Matsuzaki Yuichiro3ORCID,Furuya Noboru1ORCID,Nakano Yuta4ORCID,Watanabe Hideyuki3ORCID,Tokuda Norio45ORCID,Mizuochi Norikazu678ORCID,Ishi-Hayase Junko12ORCID

Affiliation:

1. School of Fundamental Science and Technology, Keio University 1 , Yokohama, Kanagawa 223-8522, Japan

2. Center for Spintronics Research Network, Keio University 2 , Yokohama, Kanagawa 223-8522, Japan

3. National Institute of Advanced Industrial Science and Technology (AIST) 3 , Tsukuba, Ibaraki 305-8568, Japan

4. Graduate School of Natural Science and Technology, Kanazawa University 4 , Kanazawa, Ishikawa 920-1192, Japan

5. Nanomaterials Research Institute, Kanazawa University 5 , Kanazawa, Ishikawa 920-1192, Japan

6. Institute for Chemical Research, Kyoto University 6 , Uji, Kyoto 611-0011, Japan

7. 7Center for Spintronics Research Network, Kyoto University, Uji, Kyoto 611-0011, Japan

8. 8International Center for Quantum-field Measurement Systems for Studies of the Universe and Particles (QUP), KEK, Tsukuba, Ibaraki 305-0801, Japan

Abstract

Using the electronic spin of nitrogen-vacancy (NV) centers in diamond is a promising approach to realizing high-precision temperature sensors; furthermore, pulsed optically detected magnetic resonance (pulsed-ODMR) is one way to measure the temperature using these NV centers. However, pulsed-ODMR techniques such as D-Ramsey, thermal echo, or thermal Carr–Purcell–Meiboom–Gill sequences require careful calibration and strict time synchronization to control the microwave (MW) pulses, which complicates their applicability. Continuous-wave ODMR (CW-ODMR) is a more advantageous way to measure temperature with NV centers because it can be implemented simply by continuous application of a green laser and MW radiation. However, CW-ODMR has lower sensitivity than pulsed-ODMR. Therefore, it is important to improve the temperature sensitivity of CW-ODMR techniques. Herein, we thus propose and demonstrate a method for measuring temperature using CW-ODMR with a quantum spin state dressed by a radio-frequency (RF) field under a transverse magnetic field. The use of an RF field is expected to suppress the inhomogeneous broadening resulting from strain and/or electric-field variations. The experimental results confirm that the linewidth is decreased in the proposed scheme when compared to the conventional scheme. In addition, we measured the temperature sensitivity to be about 50.4±3.5mK/Hz, and this is approximately eight times better than that of the conventional scheme.

Funder

MEXT Q-LEAP

MEXT KAKENHI

MEXT KAKENHI1

Center for Spintronics Research Network, Keio Univerity

MEXT

Precursory Research for Embryonic Science and Technology

Kanazawa University CHOZEN Project 2022

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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