Literature DB >> 29805196

Pulsed operation of a miniature scalar optically pumped magnetometer.

Vladislav Gerginov1,2, Sean Krzyzewski2, Svenja Knappe2,3.   

Abstract

A scalar magnetic field sensor based on a millimeter-size 87Rb vapor cell is described. The magnetometer uses nearly copropagating pump and probe laser beams, amplitude modulation of the pump beam, and detection through monitoring the polarization rotation of the detuned probe beam. The circularly polarized pump laser resonantly drives a spin precession in the alkali atoms at the Larmor frequency. A modulation signal on the probe laser polarization is detected with a lock-in amplifier. Since the Larmor precession is driven all-optically, potential cross talk between sensors is minimized. And since the pump light is turned off during most of the precession cycle, large offsets of the resonance, typically present in a single-beam Bell-Bloom scheme, are avoided. At the same time, relatively high sensitivities can be reached even in millimeter-size vapor cells: The magnetometer achieves a sensitivity of 1 pT/Hz1/2 in a sensitive volume of 16 mm3, limited by environmental noise. When a gradiometer configuration is used to cancel the environmental noise, the magnetometer sensitivity reaches 300 fT/Hz1/2. We systematically study the dependence of the magnetometer performance on the optical duty cycles of the pump light and find that better performance is achieved with shorter duty cycles, with the highest values measured at 1.25% duty cycle.

Entities:  

Keywords:  (020.0020) Atomic and molecular physics; (130.6010) Sensors; (300.6210) Spectroscopy; atomic

Year:  2017        PMID: 29805196      PMCID: PMC5966019          DOI: 10.1364/JOSAB.34.001429

Source DB:  PubMed          Journal:  J Opt Soc Am B        ISSN: 0740-3224            Impact factor:   2.106


  14 in total

1.  Quantum noise limited and entanglement-assisted magnetometry.

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2.  High bandwidth atomic magnetometery with continuous quantum nondemolition measurements.

Authors:  V Shah; G Vasilakis; M V Romalis
Journal:  Phys Rev Lett       Date:  2010-01-05       Impact factor: 9.161

3.  NMR detection with an atomic magnetometer.

Authors:  I M Savukov; M V Romalis
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Authors:  I M Savukov; V S Zotev; P L Volegov; M A Espy; A N Matlashov; J J Gomez; R H Kraus
Journal:  J Magn Reson       Date:  2009-05-03       Impact factor: 2.229

5.  Fetal magnetocardiography measurements with an array of microfabricated optically pumped magnetometers.

Authors:  Orang Alem; Tilmann H Sander; Rahul Mhaskar; John LeBlanc; Hari Eswaran; Uwe Steinhoff; Yoshio Okada; John Kitching; Lutz Trahms; Svenja Knappe
Journal:  Phys Med Biol       Date:  2015-06-04       Impact factor: 3.609

6.  Subfemtotesla scalar atomic magnetometry using multipass cells.

Authors:  D Sheng; S Li; N Dural; M V Romalis
Journal:  Phys Rev Lett       Date:  2013-04-18       Impact factor: 9.161

7.  [Recording of human magnetic fields].

Authors:  M N Livanov; A N Kozlov; A V Korinevskiĭ; V P Markin; S E Sinel'nikova
Journal:  Dokl Akad Nauk SSSR       Date:  1978-01

8.  A compact, high performance atomic magnetometer for biomedical applications.

Authors:  Vishal K Shah; Ronald T Wakai
Journal:  Phys Med Biol       Date:  2013-11-21       Impact factor: 3.609

9.  An Optically Pumped Magnetometer Working in the Light-Shift Dispersed Mz Mode.

Authors:  Volkmar Schultze; Bastian Schillig; Rob IJsselsteijn; Theo Scholtes; Stefan Woetzel; Ronny Stolz
Journal:  Sensors (Basel)       Date:  2017-03-10       Impact factor: 3.576

10.  Magnetoencephalography with a chip-scale atomic magnetometer.

Authors:  T H Sander; J Preusser; R Mhaskar; J Kitching; L Trahms; S Knappe
Journal:  Biomed Opt Express       Date:  2012-04-17       Impact factor: 3.732

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  4 in total

1.  Magnetic Source Imaging Using a Pulsed Optically Pumped Magnetometer Array.

Authors:  Amir Borna; Tony R Carter; Paul DeRego; Conrad D James; Peter D D Schwindt
Journal:  IEEE Trans Instrum Meas       Date:  2018-07-23       Impact factor: 4.016

2.  Optimized Design of a Pump Laser System for a Spin Exchange Relaxation Free Inertial Measurement Device.

Authors:  Jian Hao; Hong-Liang Ke; Zhai-Yue Yang; Bang-Cheng Han
Journal:  Sensors (Basel)       Date:  2021-04-23       Impact factor: 3.576

Review 3.  Ultrasensitive Magnetic Field Sensors for Biomedical Applications.

Authors:  Dmitry Murzin; Desmond J Mapps; Kateryna Levada; Victor Belyaev; Alexander Omelyanchik; Larissa Panina; Valeria Rodionova
Journal:  Sensors (Basel)       Date:  2020-03-11       Impact factor: 3.576

4.  Integrated Polarization-Splitting Grating Coupler for Chip-Scale Atomic Magnetometer.

Authors:  Jinsheng Hu; Jixi Lu; Zihua Liang; Lu Liu; Weiyi Wang; Peng Zhou; Mao Ye
Journal:  Biosensors (Basel)       Date:  2022-07-15
  4 in total

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