Correlation between tunability and anisotropy in magnetoelectric voltage tunable inductor (VTI)

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作者
Yongke Yan
Liwei D. Geng
Lujie Zhang
Xiangyu Gao
Sreenivasulu Gollapudi
Hyun-Cheol Song
Shuxiang Dong
Mohan Sanghadasa
Khai Ngo
Yu U. Wang
Shashank Priya
机构
[1] Center for Energy Harvesting Materials and Systems,
[2] Virginia Tech,undefined
[3] Department of Materials Science and Engineering,undefined
[4] Michigan Technological University,undefined
[5] Center for Power Electronics Systems (CPES),undefined
[6] Virginia Tech,undefined
[7] School of Engineering,undefined
[8] Peking University,undefined
[9] Center for electronic materials,undefined
[10] Korea Institute of Science and Technology (KIST),undefined
[11] Weapons Development and Integration Directorate,undefined
[12] Aviation and Missile Research,undefined
[13] Development,undefined
[14] and Engineering Center,undefined
[15] US Army RDECOM,undefined
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摘要
Electric field modulation of magnetic properties via magnetoelectric coupling in composite materials is of fundamental and technological importance for realizing tunable energy efficient electronics. Here we provide foundational analysis on magnetoelectric voltage tunable inductor (VTI) that exhibits extremely large inductance tunability of up to 1150% under moderate electric fields. This field dependence of inductance arises from the change of permeability, which correlates with the stress dependence of magnetic anisotropy. Through combination of analytical models that were validated by experimental results, comprehensive understanding of various anisotropies on the tunability of VTI is provided. Results indicate that inclusion of magnetic materials with low magnetocrystalline anisotropy is one of the most effective ways to achieve high VTI tunability. This study opens pathway towards design of tunable circuit components that exhibit field-dependent electronic behavior.
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