论文标题
Mega Electron-volt Ultrafast Electron衍射揭示的VO2相变的瞬态动力学
Transient dynamics of the phase transition in VO2 revealed by mega electron-volt ultrafast electron diffraction
论文作者
论文摘要
二氧化钒(VO2)表现出绝缘体到金属的过渡,并伴随着室温附近的结构过渡。该过渡可以通过超快激光脉冲触发。还提出了异国情调的瞬态状态,例如金属状态,没有结构过渡。这些独特的特征使VO2在可热切换设备和光子应用中具有巨大的潜力。尽管已经做出了巨大的努力,但是在光引起的相过渡期间的原子途径仍然不清楚。在这里,我们合成了独立式的准晶体晶状体VO2膜,并使用了Mega-Electron-volt-Electron-volt Ultrafast Ultrafast Electron衍射检查了他们的光诱导的结构相变。利用高信噪比和高时间分辨率,我们观察到钒二聚体和曲折链的消失与晶体对称性的转化不一致。光激发后,初始结构在200个飞秒内得到了强烈的修改,从而导致瞬态单斜结构没有钒二聚体和锯齿形链。然后,它继续演变为大约5个皮秒中的最终四方结构。此外,在我们的准单晶样品中观察到了一个激光通量阈值,而不是在多晶样品中建议的两个阈值。我们的发现提供了新的基本信息,以全面了解VO2中光诱导的超快相变。
Vanadium dioxide (VO2) exhibits an insulator-to-metal transition accompanied by a structural transition near room temperature. This transition can be triggered by an ultrafast laser pulse. Exotic transient states, such as a metallic state without structural transition, were also proposed. These unique characteristics let VO2 have great potential in thermal switchable devices and photonic applications. Although great efforts have been made, the atomic pathway during the photoinduced phase transition is still not clear. Here, we synthesized freestanding quasi-single-crystal VO2 films and examined their photoinduced structural phase transition with mega-electron-volt ultrafast electron diffraction. Leveraging the high signal-to-noise ratio and high temporal resolution, we observe that the disappearance of vanadium dimers and zigzag chains does not coincide with the transformation of crystal symmetry. After photoexcitation, the initial structure is strongly modified within 200 femtoseconds, resulting in a transient monoclinic structure without vanadium dimers and zigzag chains. Then, it continues to evolve to the final tetragonal structure in approximately 5 picoseconds. In addition, only one laser fluence threshold instead of two thresholds suggested in polycrystalline samples was observed in our quasi-single-crystal samples. Our findings provide new essential information for a comprehensive understanding of the photoinduced ultrafast phase transition in VO2.