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通过瞬时应变扰动实现混合相多铁性BiFeO₃的极快速光学和非易失性控制。

Extremely Fast Optical and Nonvolatile Control of Mixed-Phase Multiferroic BiFeO via Instantaneous Strain Perturbation.

作者信息

Liou Yi-De, Ho Sheng-Zhu, Tzeng Wen-Yen, Liu Yu-Chen, Wu Ping-Chun, Zheng Junding, Huang Rong, Duan Chun-Gang, Kuo Chang-Yang, Luo Chih-Wei, Chen Yi-Chun, Yang Jan-Chi

机构信息

Department of Physics, National Cheng Kung University, Tainan, 70101, Taiwan.

Department of Electrophysics, National Chiao Tung University, Hsinchu, 30010, Taiwan.

出版信息

Adv Mater. 2021 Feb;33(5):e2007264. doi: 10.1002/adma.202007264. Epub 2020 Dec 18.

Abstract

Multiferroics-materials that exhibit coupled ferroic orders-are considered to be one of the most promising candidate material systems for next-generation spintronics, memory, low-power nanoelectronics and so on. To advance potential applications, approaches that lead to persistent and extremely fast functional property changes are in demand. Herein, it is revealed that the phase transition and the correlated ferroic orders in multiferroic BiFeO (BFO) can be modulated via illumination of single short/ultrashort light pulses. Heat transport simulations and ultrafast optical pump-probe spectroscopy reveal that the transient strain induced by light pulses plays a key role in determining the persistent final states. Having identified the diffusionless phase transformation features via scanning transmission electron microscopy, sequential laser pulse illumination is further demonstrated to perform large-area phase and domain manipulation in a deterministic way. The work contributes to all-optical and rapid nonvolatile control of multiferroicity, offering different routes while designing novel optoelectronics.

摘要

多铁性材料——呈现出耦合铁性有序的材料——被认为是下一代自旋电子学、存储器、低功耗纳米电子学等领域最有前途的候选材料系统之一。为了推进潜在应用,需要能够导致持久且极其快速的功能特性变化的方法。在此,研究表明,多铁性材料BiFeO(BFO)中的相变和相关铁性有序可以通过单个短/超短光脉冲的照射来调制。热输运模拟和超快光泵浦-探测光谱表明,光脉冲诱导的瞬态应变在决定持久的最终状态中起关键作用。通过扫描透射电子显微镜确定了无扩散相变特征后,进一步证明了连续激光脉冲照射能够以确定性方式进行大面积的相和畴操纵。这项工作有助于实现多铁性的全光和快速非易失性控制,为设计新型光电子学提供了不同途径。

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