TY - JOUR
T1 - Femtosecond laser-patterned magnetic anisotropy enables self-biased magnetoelectric sensors with ultra-sensitive angle detection
AU - Zhao, Yanan
AU - Xie, Qiuwen
AU - Zhang, Jingzhou
AU - Sun, Xuan
AU - Zhang, Yue
AU - Qiao, Jiacheng
AU - Wu, Jingen
AU - Hu, Zhongqiang
AU - Zhang, Xiaohui
AU - Liu, Ming
N1 - Publisher Copyright:
© 2026 Elsevier B.V. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/10/1
Y1 - 2026/10/1
N2 - Among various magnetic sensors, magnetoelectric sensors offer significant advantages in weak magnetic field detection due to their exceptional sensitivity, operational convenience, and promising potential for miniaturization and low cost. However, their practical application is limited by the requirement for an external DC bias field and the insufficient sensitivity to in-plane AC magnetic fields. In this work, straight-line structures oriented at angles of 0°, 45°, and 90° relative to the sample width direction are fabricated on the surface of the Metglas magnetostrictive material using femtosecond laser technology, resulting in a built-in bias magnetic field (0.65 Oe) in the magnetoelectric sensor. This built-in bias field originates from the laser-annealing-induced magnetic anisotropy, where the laser-patterned structures produce a preferred orientation for the magnetic moments. This anisotropy is confirmed by analyzing the magnetic domain structures and the measured magnetization curves, which showed a clear dependence on the orientation of the laser-induced patterns. Operating without external DC bias field, the magnetoelectric sensor yields a high magnetoelectric coefficient of 96.8 V·cm⁻¹ ·Oe⁻¹ , an ultra-low detection limit of 2.5 pT, and distinguishable angular increments of 0.03°. This unique combination of self-bias operation and high performance, enabled by the femtosecond-laser-induced magnetic anisotropy, makes our sensor a highly promising candidate for energy-efficient magnetic sensors and precision navigation systems.
AB - Among various magnetic sensors, magnetoelectric sensors offer significant advantages in weak magnetic field detection due to their exceptional sensitivity, operational convenience, and promising potential for miniaturization and low cost. However, their practical application is limited by the requirement for an external DC bias field and the insufficient sensitivity to in-plane AC magnetic fields. In this work, straight-line structures oriented at angles of 0°, 45°, and 90° relative to the sample width direction are fabricated on the surface of the Metglas magnetostrictive material using femtosecond laser technology, resulting in a built-in bias magnetic field (0.65 Oe) in the magnetoelectric sensor. This built-in bias field originates from the laser-annealing-induced magnetic anisotropy, where the laser-patterned structures produce a preferred orientation for the magnetic moments. This anisotropy is confirmed by analyzing the magnetic domain structures and the measured magnetization curves, which showed a clear dependence on the orientation of the laser-induced patterns. Operating without external DC bias field, the magnetoelectric sensor yields a high magnetoelectric coefficient of 96.8 V·cm⁻¹ ·Oe⁻¹ , an ultra-low detection limit of 2.5 pT, and distinguishable angular increments of 0.03°. This unique combination of self-bias operation and high performance, enabled by the femtosecond-laser-induced magnetic anisotropy, makes our sensor a highly promising candidate for energy-efficient magnetic sensors and precision navigation systems.
KW - Angular sensitivity
KW - Femtosecond laser microstructuring
KW - Magnetic anisotropy
KW - Magnetoelectric sensors
KW - Self-bias
UR - https://www.scopus.com/pages/publications/105040613392
U2 - 10.1016/j.sna.2026.118026
DO - 10.1016/j.sna.2026.118026
M3 - 文章
AN - SCOPUS:105040613392
SN - 0924-4247
VL - 408
JO - Sensors and Actuators A: Physical
JF - Sensors and Actuators A: Physical
M1 - 118026
ER -