电子
材料科学
激发态
离子
原子物理学
等离子体
物质状态
纳米颗粒
飞秒
化学物理
联轴节(管道)
光谱学
暖稠密物质
声子
分子物理学
凝聚态物理
激光器
物理
纳米技术
光学
量子力学
冶金
作者
Quynh L. Nguyen,Jacopo Simoni,Kevin M. Dorney,Xun Shi,Jennifer Ellis,Nathan J. Brooks,Daniel D. Hickstein,Amanda G. Grennell,Sadegh Yazdi,E. E. B. Campbell,Liang Z. Tan,David Prendergast,Jérôme Daligault,Henry C. Kapteyn,Margaret M. Murnane
标识
DOI:10.1103/physrevlett.131.085101
摘要
Warm dense matter (WDM) represents a highly excited state that lies at the intersection of solids, plasmas, and liquids and that cannot be described by equilibrium theories. The transient nature of this state when created in a laboratory, as well as the difficulties in probing the strongly coupled interactions between the electrons and the ions, make it challenging to develop a complete understanding of matter in this regime. In this work, by exciting isolated ∼8 nm copper nanoparticles with a femtosecond laser below the ablation threshold, we create uniformly excited WDM. Using photoelectron spectroscopy, we measure the instantaneous electron temperature and extract the electron-ion coupling of the nanoparticle as it undergoes a solid-to-WDM phase transition. By comparing with state-of-the-art theories, we confirm that the superheated nanoparticles lie at the boundary between hot solids and plasmas, with associated strong electron-ion coupling. This is evidenced both by a fast energy loss of electrons to ions, and a strong modulation of the electron temperature induced by strong acoustic breathing modes that change the nanoparticle volume. This work demonstrates a new route for experimental exploration of the exotic properties of WDM.
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