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采用1兆赫兹10.7电子伏特脉冲激光的时间分辨、自旋分辨和角分辨光电子能谱。

Time-, spin-, and angle-resolved photoemission spectroscopy with a 1-MHz 10.7-eV pulse laser.

作者信息

Kawaguchi Kaishu, Kuroda Kenta, Zhao Z, Tani S, Harasawa A, Fukushima Y, Tanaka H, Noguchi R, Iimori T, Yaji K, Fujisawa M, Shin S, Komori F, Kobayashi Y, Kondo Takeshi

机构信息

Institute for Solid State Physics (ISSP), The University of Tokyo, Kashiwa, Chiba 277-8581, Japan.

Graduate School of Advanced Science and Engineering, Hiroshima University, Higashi-Hiroshima, Hiroshima 739-8526, Japan.

出版信息

Rev Sci Instrum. 2023 Aug 1;94(8). doi: 10.1063/5.0151859.

Abstract

We describe a setup of time-, spin-, and angle-resolved photoemission spectroscopy (tr-SARPES) employing a 10.7 eV (λ = 115.6 nm) pulse laser at a 1 MHz repetition rate as a probe photon source. This equipment effectively combines the technologies of a high-power Yb:fiber laser, ultraviolet-driven harmonic generation in Xe gas, and a SARPES apparatus equipped with very-low-energy-electron-diffraction spin detectors. A high repetition rate (1 MHz) of the probe laser allows experiments with the photoemission space-charge effects significantly reduced, despite a high flux of 1013 photons/s on the sample. The relatively high photon energy (10.7 eV) also brings the capability of observing a wide momentum range that covers the entire Brillouin zone of many materials while ensuring high momentum resolution. The experimental setup overcomes the low efficiency of spin-resolved measurements, which gets even more severe for the pump-probed unoccupied states, and affords the opportunity to investigate ultrafast electron and spin dynamics of modern quantum materials with energy and time resolutions of 25 meV and 360 fs, respectively.

摘要

我们描述了一种时间、自旋和角度分辨光电子能谱(tr-SARPES)装置,该装置采用重复频率为1MHz的10.7eV(λ = 115.6nm)脉冲激光作为探测光子源。该设备有效地结合了高功率Yb光纤激光器、Xe气中紫外驱动的谐波产生以及配备超低能量电子衍射自旋探测器的SARPES装置等技术。尽管样品上的光子通量高达10^13光子/秒,但探测激光的高重复频率(1MHz)使得光电子空间电荷效应显著降低的实验成为可能。相对较高的光子能量(10.7eV)还具备在确保高动量分辨率的同时观察涵盖许多材料整个布里渊区的宽动量范围的能力。该实验装置克服了自旋分辨测量效率低的问题,对于泵浦探测的未占据态而言,这一问题更为严重,并且提供了分别以25meV和360fs的能量和时间分辨率研究现代量子材料超快电子和自旋动力学的机会。

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