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飞秒X射线成像与衍射揭示受限金纳米球中的超快能量转移过程

Ultrafast Energy Transfer Process in Confined Gold Nanospheres Revealed by Femtosecond X-ray Imaging and Diffraction.

作者信息

Shin Jaeyong, Jung Chulho, Ihm Yungok, Heo Seung-Phil, Nam Daewoong, Kim Sangsoo, Kim Minseok, Eom Intae, Shim Ji Hoon, Noh Do Young, Song Changyong

机构信息

Department of Physics, POSTECH; Pohang37673, Korea.

Korea Research Initiative, Center for Ultrafast Science on Quantum Matter, Max Planck POSTECH; Pohang37673, Korea.

出版信息

Nano Lett. 2023 Feb 22;23(4):1481-1488. doi: 10.1021/acs.nanolett.2c04920. Epub 2023 Feb 1.

Abstract

Femtosecond laser pulses drive nonequilibrium phase transitions via reaction paths hidden in thermal equilibrium. This stimulates interest to understand photoinduced ultrafast melting processes, which remains incomplete due to challenges in resolving accompanied kinetics at the relevant space-time resolution. Here, by newly establishing a multiplexing femtosecond X-ray probe, we have successfully revealed ultrafast energy transfer processes in confined Au nanospheres. Real-time images of electron density distributions with the corresponding lattice structures elucidate that the energy transfer begins with subpicosecond melting at the specimen boundary earlier than the lattice thermalization, and proceeds by forming voids. Two temperature molecular dynamics simulations uncovered the presence of both heterogeneous melting with the melting front propagation from surface and grain boundaries and homogeneous melting with random melting seeds and nanoscale voids. Supported by experimental and theoretical results, we provide a comprehensive atomic-scale picture that accounts for the ultrafast laser-induced melting and evaporation kinetics.

摘要

飞秒激光脉冲通过隐藏在热平衡中的反应路径驱动非平衡相变。这激发了人们对理解光致超快熔化过程的兴趣,由于在相关时空分辨率下解析伴随的动力学存在挑战,对该过程的理解仍不完整。在此,通过新建立的多路复用飞秒X射线探针,我们成功揭示了受限金纳米球中的超快能量转移过程。具有相应晶格结构的电子密度分布的实时图像表明,能量转移始于样品边界处比晶格热化更早的亚皮秒熔化,并通过形成空隙进行。双温度分子动力学模拟揭示了存在从表面和晶界传播熔化前沿的非均匀熔化以及具有随机熔化种子和纳米级空隙的均匀熔化。在实验和理论结果的支持下,我们提供了一个全面的原子尺度图像,解释了超快激光诱导的熔化和蒸发动力学。

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