RAS PhysicsФизика металлов и металловедение Physics of Metals and Metallography

  • ISSN (Print) 0015-3230
  • ISSN (Online) 3034-6215

Approach to low-frequency magnetic field measurements using Permalloy-based magnetoplasmonic crystal

PII
S30346215S0015323025030029-1
DOI
10.7868/S3034621525030029
Publication type
Article
Status
Published
Authors
Volume/ Edition
Volume 126 / Issue number 3
Pages
264-272
Abstract
This paper demonstrates the use of a one-dimensional magnetoplasmonic crystal based on NiFe permalloy as a sensitive probe of a magneto-optical sensor for low-frequency AC field measurements. The sensitivity of the sensor reaches 30 mOe when operating in the frequency range from 0.1 to 100 Hz. In the course of the work, an assessment was made of the applicability of the developed sensor for measuring magnetic fields of biological objects that were subjected to electrical stimulation.
Keywords
магнитоплазмонный кристалл экваториальный эффект Керра датчик магнитного поля
Date of publication
31.12.2024
Year of publication
2024
Number of purchasers
0
Views
12

References

  1. 1. Grosz A., Haji-Sheikh M.J., Mukhopadhyay S.C. High sensitivity magnetometers. Switzerland: Springer, 2017. C. 576.
  2. 2. Murzin D., Mapps D.J., Levada K. Belyaev V., Omelyanchik A., Panina L., Rodionova V. Ultrasensitive magnetic field sensors for biomedical applications // Sensors. 2020. V. 20. No. 6. P. 1569.
  3. 3. Fabricant A., Novikova I., Bison G. How to build a magnetometer with thermal atomic vapor: a tutorial // New J. Phys. 2023. V. 25. No. 2. P. 025001.
  4. 4. Aslam N., Zhou H., Urbach E.K., Turner M.J., Walsworth R.L., Lukin M.D., Park H. Quantum sensors for biomedical applications // Nature Rev. Phys. 2023. V. 5. No. 3. P. 157-169.
  5. 5. Rizal C., Manera M.G., Ignatyeva D.O., Mejía-Salazar J.R., Rella R., Belotelov V.I., Pineider F., Maccaferri N. Magnetophotonics for sensing and magnetometry toward industrial applications // J. Appl. Phys. 2021. V. 130. No. 23.
  6. 6. Rogachev A.E., Vetoshko P.M., Gusev N.A., Kozhaev M.A., Prokopov A.R., Popov V.V., Dodonov D.V., Shumilov A.G., Shaposhnikov A.N., Berzhansky V.N., Zvezdin A.K. Vector magneto-optical sensor based on transparent magnetic films with cubic crystallographic symmetry // Appl. Phys. Letters. 2016. V. 109. No. 16.
  7. 7. Dorosinskiy L., Sievers S. Magneto-Optical Indicator Films: Fabrication, Principles of Operation, Calibration, and Applications // Sensors. 2023. V. 23. No. 8. P. 4048.
  8. 8. Belotelov V.I., Akimov I.A., Pohl M., Kotov V.A., Kasture S., Vengurlekar A.S., Gopal A.V., Yakovlev D.R., Zvezdin A.K., Bayer M. Enhanced magneto-optical effects in magnetoplasmonic crystals // Nature Nanotechn. 2016. V. 6. No. 6. P. 370-376.
  9. 9. Kiryanov M.A., Frolov A.Y., Novikov I.A., Kipp P.A., Nurgalieva P.K., Popov V.V., Ezhov A.A., Dolgova T.V., Fedyanin A.A. Surface profile-tailored magneto-optics in magnetoplasmonic crystals // APL Photonics. 2022. V. 7. No. 2.
  10. 10. Murzin D.V., Belyaev V.K., Gritsenko K.A., Rodionova V.V. Effect of Filling Factor on the Coefficient of Reflection and Transversal Kerr Effect of 2D Permalloy-Based Magnetoplasmonic Crystals // Bulletin of the Russian Academy of Sciences: Physics. 2024. V. 88. No. 4. P. 591-596.
  11. 11. Zayats A.V., Smolyaninov I.I. Near-field photonics: surface plasmon polaritons and localized surface plasmons // J. Optics A: Pure and App. Optics. 2003. V. 5. No. 4. P. S16.
  12. 12. Belyaev V.K., Rodionova V.V., Grunin A.A., Inoue M., Fedyanin A.A. Magnetic field sensor based on magnetoplasmonic crystal // Sci. Rep. 2020. V. 10. No. 1. P. 7133.
  13. 13. Murzin D.V., Belyaev V.K., Mamian K.A., Groß F., Gräfe J., Frolov A.Y., Fedyanin A.A., Rodionova V.V. Ni80Fe20 Thickness Optimization of Magnetoplasmonic Crystals for Magnetic Field Sensing // Sensors and Actuators A: Physical. 2024. V. 376. P. 115552.
  14. 14. Knyazev G.A., Kapralov P.O., Gusev N.A., Kalish A.N., Vetoshko P.M., Dagesyan S.A., Shaposhnikov A.N., Prokopov A.R., Berzhansky V.N., Zvezdin A.K., Belotelov V.I. Magnetoplasmonic crystals for highly sensitive magnetometry // ACS Photonics. 2018. V. 5. No. 12. P. 4951-4959.
  15. 15. Пахотин В.А., Бессонов В.А., Молостова С.В., Власова К.В. Теоретические основы оптимальной обработки сигналов: курс лекций для радиофизических специальностей. Калининград: РГУ им. И. Канта, 2008. C. 189.
  16. 16. Аббасова К.Р., Богачева П.О., Васильев А.Н. и др. Руководство к практическим занятиям по физиологии человека и животных / Учебно-методическое пособие для студентов 3-го курса биологического факультета МГУ имени М. В. Ломоносова, обучающихся по программе бакалавриата. Москва: Товарищество науч. изд. КМК. C. 277.
  17. 17. Zhu K., Kiourti A. A review of magnetic field emissions from the human body: Sources, sensors, and uses // IEEE Open Journal of Antennas and Propagation. 2022. V. 3. P. 732-744.
  18. 18. Roth B.J. Biomagnetism: the first sixty years // Sensors. 2023. V. 23. No. 9. P. 4218.
QR
Translate

Индексирование

Scopus

Scopus

Scopus

Crossref

Scopus

Higher Attestation Commission

At the Ministry of Education and Science of the Russian Federation

Scopus

Scientific Electronic Library