Experimental Constraints on Exotic Spin-Dependent Interactions by a
Magnetometer with Ensembles of Nitrogen-Vacancy Centers in Diamond
- URL: http://arxiv.org/abs/2201.04408v1
- Date: Wed, 12 Jan 2022 10:50:26 GMT
- Title: Experimental Constraints on Exotic Spin-Dependent Interactions by a
Magnetometer with Ensembles of Nitrogen-Vacancy Centers in Diamond
- Authors: Hang Liang, Man Jiao, Yue Huang, Pei Yu, Xiangyu Ye, Ya Wang, Yijin
Xie, Yi-Fu Cai, Xing Rong, Jiangfeng Du
- Abstract summary: A thin layer of NV electronic spin ensembles is utilized as the sensor.
Stringent bounds on an exotic parity-odd spin- and velocity-dependent interaction are set within the force range from 5 to 500 $mu$m.
The limit of the corresponding coupling constant, $g_SNg_Pe$, is improved by more than one order of magnitude at 30 $mu$m.
- Score: 13.512039660189625
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Improved constraints on exotic spin-dependent interactions are established at
the micrometer scale by a magnetometer with ensembles of nitrogen-vacancy (NV)
centers in diamond. A thin layer of NV electronic spin ensembles is utilized as
the sensor, and a lead sphere is taken as the source of the nucleons. The
exotic spin-dependent interactions are explored by detecting the possible
effective magnetic fields by the sensor. Stringent bounds on an exotic
parity-odd spin- and velocity-dependent interaction are set within the force
range from 5 to 500 $\mu$m. The upper limit of the corresponding coupling
constant, $g_A^eg_V^N$, is improved by more than three orders of magnitude at
330 $\mu$m. Improved constraints of $P, T$-violating scalar-pseudoscalar
nucleon-electron interactions, are established within the force range from 6 to
45 $\mu$m. The limit of the corresponding coupling constant, $g_S^Ng_P^e$, is
improved by more than one order of magnitude at 30 $\mu$m. Our result shows
that a magnetometer with a NV ensemble can be a powerful platform for probing
exotic spin-dependent interactions.
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