4.4 Article

Roadmap on Magnetoelectric Materials and Devices

期刊

IEEE TRANSACTIONS ON MAGNETICS
卷 57, 期 8, 页码 -

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TMAG.2021.3086635

关键词

Antennas; magnetic devices; magnetic memory; magnetic sensors; magnetoelectric (ME) effects

资金

  1. German Research Foundation (Deutsche Forschungsgemeinschaft, DFG) through the Collaborative Research Center CRC 1261 Magnetoelectric Sensors: From Composite Materials to Biomagnetic Diagnostics
  2. Fundacao para a Ciencia e Tecnologia (FCT) [UID/FIS/04650/2020, PTDC/BTM-MAT/28237/2017, PTDC/EMD-EMD/28159/2017]
  3. Spanish State Research Agency (AEI)
  4. European Regional Development Fund (ERFD) [PID2019-106099RB-C43]
  5. Basque Government Industry and Education Department under the ELKARTEK Program
  6. Swiss National Science Foundation [200021-141334, 206021_139082]
  7. Swiss National Center of Competence in Research MARVEL (Computational Design and Discovery of Novel Materials) [1NF40_182892]
  8. European Community [290605]
  9. Academy of Finland [316857]
  10. NSF TANMS ERC Award [1160504]
  11. W. M. Keck Foundation
  12. European Research Council [648454, 875018]
  13. Spanish Government [MAT-201786357-C3-1-R]
  14. Generalitat de Catalunya [2017-SGR-292, 2018-LLAV-00032]
  15. European Regional Development Fund [2018-LLAV-00032, MAT2017-86357-C3-1-R]
  16. Basque Government Industry and Education Department under the HAZITEK Program
  17. Basque Government Industry and Education Department under the PIBA Program [PIBA-2018-06]
  18. European Research Council (ERC) [875018] Funding Source: European Research Council (ERC)
  19. Swiss National Science Foundation (SNF) [200021_141334, 206021_139082] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

The development of magnetoelectric materials and devices has opened up new opportunities in various technological fields, including the realization of multifunctional integrated systems. Through the advancement of multiferroic materials and other magnetoelectric mechanisms, the energy efficiency in spintronics and magnetic actuators can be greatly enhanced.
The possibility of tuning the magnetic properties of materials with voltage (converse magnetoelectricity) or generating electric voltage with magnetic fields (direct magnetoelectricity) has opened new avenues in a large variety of technological fields, ranging from information technologies to healthcare devices and including a great number of multifunctional integrated systems, such as mechanical antennas, magnetometers, and radio frequency (RF) tunable inductors, which have been realized due to the strong strain-mediated magnetoelectric (ME) coupling found in ME composites. The development of single-phase multiferroic materials (which exhibit simultaneous ferroelectric and ferromagnetic or antiferromagnetic orders), multiferroic heterostructures, as well as progress in other ME mechanisms, such as electrostatic surface charging or magneto-ionics (voltage-driven ion migration), have a large potential to boost energy efficiency in spintronics and magnetic actuators. This article focuses on existing ME materials and devices and reviews the state of the art in their performance. The most recent progress on different ME devices based on ME heterostructures is presented but with a larger emphasis on ME antennas and sensors due to the significant advances achieved in these applications. The rapid development of mechanically actuated ME antennas has been observed over the past several years, producing ME antennas that are miniaturized by 1-2 orders compared to conventional antenna size. Magnetic sensors based on simple ME composites are potentially promising alternatives to conventional magnetometers due to their very good detectivity (

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