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Colossal tunability in high frequency magnetoelectric voltage tunable inductors

机译:高频磁电电压可调电感器的巨大可调性

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摘要

The electrical modulation of magnetization through the magnetoelectric effect provides a great opportunity for developing a new generation of tunable electrical components. Magnetoelectric voltage tunable inductors (VTIs) are designed to maximize the electric field control of permeability. In order to meet the need for power electronics, VTIs operating at high frequency with large tunability and low loss are required. Here we demonstrate magnetoelectric VTIs that exhibit remarkable high inductance tunability of over 750% up to 10 MHz, completely covering the frequency range of state-of-the-art power electronics. This breakthrough is achieved based on a concept of magnetocrystalline anisotropy (MCA) cancellation, predicted in a solid solution of nickel ferrite and cobalt ferrite through first-principles calculations. Phase field model simulations are employed to observe the domain-level strain-mediated coupling between magnetization and polarization. The model reveals small MCA facilitates the magnetic domain rotation, resulting in larger permeability sensitivity and inductance tunability.
机译:通过磁电效应对磁化强度进行电调制,为开发新一代可调电组件提供了巨大的机会。磁电电压可调电感器(VTI)旨在最大化对磁导率的电场控制。为了满足对电力电子设备的需求,需要以高的可调谐性和低损耗在高频下运行的VTI。在这里,我们演示了磁电VTI,其在高达10 MHz的频率下具有超过750%的出色高电感可调性,完全覆盖了最新功率电子设备的频率范围。这一突破是基于磁晶各向异性(MCA)消除的概念而实现的,该概念是通过第一性原理计算在铁素体镍和钴铁素体的固溶体中预测的。相场模型模拟被用来观察磁化和极化之间的域水平应变介导的耦合。该模型显示,较小的MCA有助于磁畴旋转,从而导致较大的磁导率灵敏度和电感可调性。

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