arrow
Return

Low-Frequency Quantum Sensing

delete2022-09-22
delete7
delete
OA
AI
E
Ernst David Herbschleb *
I
Izuru Ohki
K
Kohki Morita
Y
Y. Yoshii
H
Hiromitsu Kato
T
Toshiharu Makino
S
Satoshi Yamasaki
N
Norikazu Mizuochi
DOI:10.1103/PhysRevApplied.18.034058delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
Exquisite sensitivities are a prominent advantage of quantum sensors. Ramsey sequences allow precise measurement of direct current fields, while Hahn-echo-like sequences measure alternating current fields. However, the latter are restrained for use with high-frequency fields (above approximately 1 kHz) due to finite coherence times, leaving less-sensitive noncoherent methods for the low-frequency range. In this paper, we propose to bridge the gap with a fitting-based algorithm with a frequency-independent sensitivity to coherently measure low-frequency fields. As the algorithm benefits from coherence-based measurements, its demonstration with a single nitrogen-vacancy center gives a sensitivity of 9.4 nT Hz(-0.5) for frequencies below about 0.6 kHz down to near-constant fields. To inspect the potential in various scenarios, we apply the algorithm at a background field of tens of nTs, and we measure low-frequency signals via synchronization.
Keywords:
MAGNETIC-RESONANCE
SPIN
SPECTROSCOPY
NMR

Journal

Physical Review Applied cover
Physical Review Applied
IF:
4.4
Papers:
7.1K
Citations:
2.8W

Organization

K
Kyoto University
Scholars:
5.1W
Papers: 4.6W
Citations: 6.1W
K
Kanazawa University
Scholars:
1.2W
Papers: 8.8K
Citations: 7.6K