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用于极紫外时间和角度分辨光电子能谱的腔增强高次谐波产生

Cavity-enhanced high harmonic generation for extreme ultraviolet time- and angle-resolved photoemission spectroscopy.

作者信息

Mills A K, Zhdanovich S, Na M X, Boschini F, Razzoli E, Michiardi M, Sheyerman A, Schneider M, Hammond T J, Süss V, Felser C, Damascelli A, Jones D J

机构信息

Department of Physics and Astronomy, University of British Columbia, Vancouver, British Columbia V6T 1Z1, Canada.

Max Planck Institute for Chemical Physics of Solids, 01187 Dresden, Germany.

出版信息

Rev Sci Instrum. 2019 Aug;90(8):083001. doi: 10.1063/1.5090507.

Abstract

With its direct correspondence to electronic structure, angle-resolved photoemission spectroscopy (ARPES) is a ubiquitous tool for the study of solids. When extended to the temporal domain, time-resolved (TR)-ARPES offers the potential to move beyond equilibrium properties, exploring both the unoccupied electronic structure as well as its dynamical response under ultrafast perturbation. Historically, ultrafast extreme ultraviolet sources employing high-order harmonic generation (HHG) have required compromises that make it challenging to achieve a high energy resolution-which is highly desirable for many TR-ARPES studies-while producing high photon energies and a high photon flux. We address this challenge by performing HHG inside a femtosecond enhancement cavity, realizing a practical source for TR-ARPES that achieves a flux of over 10 photons/s delivered to the sample, operates over a range of 8-40 eV with a repetition rate of 60 MHz. This source enables TR-ARPES studies with a temporal and energy resolution of 190 fs and 22 meV, respectively. To characterize the system, we perform ARPES measurements of polycrystalline Au and MoTe, as well as TR-ARPES studies on graphite.

摘要

角分辨光电子能谱(ARPES)因其与电子结构的直接对应关系,是研究固体的常用工具。当扩展到时间域时,时间分辨(TR)-ARPES有潜力超越平衡态性质,探索未占据的电子结构及其在超快扰动下的动力学响应。从历史上看,采用高次谐波产生(HHG)的超快极紫外光源需要做出妥协,这使得在产生高光子能量和高光子通量的同时实现高能量分辨率具有挑战性,而高能量分辨率对于许多TR-ARPES研究来说是非常理想的。我们通过在飞秒增强腔内进行HHG来应对这一挑战,实现了一种实用的TR-ARPES光源,该光源可向样品提供超过10个光子/秒的通量,在8-40 eV范围内工作,重复频率为60 MHz。该光源能够分别以190 fs和22 meV的时间分辨率和能量分辨率进行TR-ARPES研究。为了表征该系统,我们对多晶Au和MoTe进行了ARPES测量,以及对石墨进行了TR-ARPES研究。

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