A robust fiber-based quantum thermometer coupled with nitrogen-vacancy
centers
- URL: http://arxiv.org/abs/2004.04349v1
- Date: Thu, 9 Apr 2020 03:24:52 GMT
- Title: A robust fiber-based quantum thermometer coupled with nitrogen-vacancy
centers
- Authors: Shao-Chun Zhang, Yang Dong, Bo Du, Hao-Bin Lin, Shen Li, Wei Zhu,
Guan-Zhong Wang, Xiang-Dong Chen, Guang-Can Guo, and Fang-Wen Sun
- Abstract summary: We present a robust fiber-based quantum thermometer which can significantly isolate the magnetic field noise and microwave power shift.
With a frequency modulation scheme, we realize the temperature measurement by detecting the variation of the sharp-dip in the zero-field optically detected magnetic resonance spectrum.
- Score: 29.359306535600815
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: The nitrogen-vacancy center in diamond has been broadly applied in quantum
sensing since it is sensitive to different physical quantities. Meanwhile, it
is difficult to isolate disturbances from unwanted physical quantities in
practical applications. Here, we present a robust fiber-based quantum
thermometer which can significantly isolate the magnetic field noise and
microwave power shift. With a frequency modulation scheme, we realize the
temperature measurement by detecting the variation of the sharp-dip in the
zero-field optically detected magnetic resonance spectrum in a high-density
nitrogen-vacancy ensemble. Thanks to its simplicity and compatibility in
implementation and robustness in the isolation of magnetic and microwave noise,
this quantum thermometer is then applied to the surface temperature imaging of
an electronic chip with a sensitivity of $18$ $\rm{mK}/\sqrt{\rm{Hz}}$. It
paves the way to high sensitive temperature measurement in ambiguous
environments.
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