Li Kaili, Wang Lei, Wang Yu, Guo Yuanjun, Lv Shuping, He Yuewei, Lin Weiwei, Min Tai, Hu Shaojie, Yang Sen, Xue Dezhen, Zheng Aqun, Yang Shuming, Ding Xiangdong
MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter and State Key Laboratory for Mechanical Behavior of Materials, School of Physics, Xi'an Jiaotong University, Xi'an, 710049, China.
Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics, Southeast University, Nanjing, 211189, China.
Adv Mater. 2024 May;36(21):e2312137. doi: 10.1002/adma.202312137. Epub 2024 Feb 22.
Manipulation of directional magnon propagation, known as magnon spin current, is essential for developing magnonic devices featuring nonvolatile functionalities and ultralow power consumption. Magnon spin current can usually be modulated by magnetic field or current-induced spin torques. However, these approaches may lead to energy dissipation due to Joule heating. Electric-field switching of magnon spin current without charge current is highly preferred but challenging to realize. By integrating magnonic and piezoelectric materials, the manipulation of the magnon spin current generated by the spin Seebeck effect in the ferrimagnetic insulator GdFeO (GdIG) film on a piezoelectric substrate is demonstrated. Reversible electric-field switching of magnon polarization without applied charge current is observed. Through strain-mediated magnetoelectric coupling, the electric field induces the magnetic compensation transition between two magnetic states of the GdIG, resulting in its magnetization reversal and the simultaneous switching of magnon spin current. This work establishes a prototype material platform that paves the way for developing magnon logic devices characterized by all electric field reading and writing and reveals the underlying physics principles of their functions.
对被称为磁振子自旋流的定向磁振子传播进行操控,对于开发具有非易失性功能和超低功耗的磁振子器件至关重要。磁振子自旋流通常可通过磁场或电流诱导的自旋扭矩进行调制。然而,这些方法可能会因焦耳热导致能量耗散。在无电荷电流的情况下通过电场切换磁振子自旋流是非常理想的,但实现起来具有挑战性。通过整合磁振子材料和压电材料,展示了对由压电衬底上的亚铁磁绝缘体钆铁氧体(GdIG)薄膜中的自旋塞贝克效应产生的磁振子自旋流的操控。观察到在无外加电荷电流的情况下磁振子极化的可逆电场切换。通过应变介导的磁电耦合,电场诱导GdIG的两个磁态之间的磁补偿转变,导致其磁化反转以及磁振子自旋流的同时切换。这项工作建立了一个原型材料平台,为开发以全电场读写为特征的磁振子逻辑器件铺平了道路,并揭示了其功能背后的物理原理。