Chen Peng, Paillard Charles, Zhao Hong Jian, Íñiguez Jorge, Bellaiche Laurent
Physics Department and Institute for Nanoscience and Engineering, University of Arkansas, Fayetteville, AR, 72701, USA.
Université Paris-Saclay, CentraleSupélec, CNRS, Laboratoire SPMS, 91190, Gif-sur-Yvette, France.
Nat Commun. 2022 May 10;13(1):2566. doi: 10.1038/s41467-022-30324-5.
Ultrafast light-matter interactions present a promising route to control ferroelectric polarization at room temperature, which is an exciting idea for designing novel ferroelectric-based devices. One emergent light-induced technique for controlling polarization consists in anharmonically driving a high-frequency phonon mode through its coupling to the polarization. A step towards such control has been recently accomplished, but the polarization has been reported to be only partially reversed and for a short lapse of time. Such transient partial reversal is not currently understood, and it is presently unclear if full control of polarization, by, e.g., fully reversing it or even making it adopt different directions (thus inducing structural phase transitions), can be achieved by activating the high-frequency phonon mode via terahertz pulse stimuli. Here, by means of realistic simulations of a prototypical ferroelectric, we reveal and explain (1) why a transient partial reversal has been observed, and (2) how to deterministically control the ferroelectric polarization thanks to these stimuli. Such results can provide guidance for realizing original ultrafast optoferroic devices.
超快光与物质相互作用为在室温下控制铁电极化提供了一条很有前景的途径,这对于设计新型铁电基器件来说是一个令人兴奋的想法。一种新兴的用于控制极化的光诱导技术是通过与极化的耦合非谐驱动高频声子模式。最近已经朝着这种控制迈出了一步,但据报道极化只是部分反转且持续时间很短。目前还不清楚这种瞬态部分反转的情况,并且目前尚不清楚通过太赫兹脉冲刺激激活高频声子模式是否能够实现对极化的完全控制,例如使其完全反转甚至使其采用不同方向(从而诱导结构相变)。在此,通过对典型铁电体进行实际模拟,我们揭示并解释了:(1)为什么会观察到瞬态部分反转;(2)如何借助这些刺激来确定性地控制铁电极化。这些结果可为实现原创的超快光铁电器件提供指导。