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利用X射线自由电子激光对激光加热晶格中的非热相干磁振子进行4D可视化

4D Visualization of a Nonthermal Coherent Magnon in a Laser Heated Lattice by an X-ray Free Electron Laser.

作者信息

Jang Hoyoung, Ueda Hiroki, Kim Hyeong-Do, Kim Minseok, Shin Kwang Woo, Kim Kee Hoon, Park Sang-Youn, Shin Hee Jun, Borisov Pavel, Rosseinsky Matthew J, Jang Dogeun, Choi Hyeongi, Eom Intae, Staub Urs, Chun Sae Hwan

机构信息

Pohang Accelerator Laboratory, POSTECH, Pohang, Gyeongbuk, 37673, Republic of Korea.

Photon Science Center, POSTECH, Pohang, Gyeongbuk, 37673, Republic of Korea.

出版信息

Adv Mater. 2023 Sep;35(36):e2303032. doi: 10.1002/adma.202303032. Epub 2023 Jul 24.

Abstract

Ultrafast optical manipulation of magnetic phenomena is an exciting achievement of mankind, expanding one's horizon of knowledge toward the functional nonequilibrium states. The dynamics acting on an extremely short timescale push the detection limits that reveal fascinating light-matter interactions for nonthermal creation of effective magnetic fields. While some cases are benchmarked by emergent transient behaviors, otherwise identifying the nonthermal effects remains challenging. Here, a femtosecond time-resolved resonant magnetic X-ray diffraction experiment is introduced, which uses an X-ray free-electron laser (XFEL) to distinguish between the effective field and the photoinduced thermal effect. It is observed that a multiferroic Y-type hexaferrite exhibits magnetic Bragg peak intensity oscillations manifesting entangled antiferromagnetic (AFM) and ferromagnetic (FM) Fourier components of a coherent AFM magnon. The magnon trajectory constructed in 3D space and time domains is decisive to evince ultrafast field formation preceding the lattice thermalization. A remarkable impact of photoexcitation across the electronic bandgap is directly unraveled, amplifying the photomagnetic coupling that is one of the highest among AFM dielectrics. Leveraging the above-bandgap photoexcitation, this energy-efficient optical process further suggests a novel photomagnetic control of ferroelectricity in multiferroics.

摘要

磁现象的超快光学操控是人类一项令人兴奋的成就,拓展了人们对功能非平衡态的认知视野。在极短时间尺度上起作用的动力学推动了探测极限,揭示了用于非热产生有效磁场的迷人光与物质相互作用。虽然有些情况以出现的瞬态行为为基准,但要识别非热效应仍然具有挑战性。在此,介绍了一种飞秒时间分辨共振磁X射线衍射实验,该实验使用X射线自由电子激光(XFEL)来区分有效场和光致热效应。观察到一种多铁性Y型六方铁氧体表现出磁布拉格峰强度振荡,这体现了相干反铁磁(AFM)磁振子的纠缠反铁磁(AFM)和铁磁(FM)傅里叶分量。在三维空间和时间域中构建的磁振子轨迹对于证明在晶格热化之前的超快场形成至关重要。直接揭示了跨越电子带隙的光激发的显著影响,放大了光磁耦合,这在反铁磁电介质中是最高的之一。利用带隙以上的光激发,这种节能光学过程进一步表明了对多铁性材料中铁电特性的一种新型光磁控制。

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