Angle-resolved photoemission spectroscopy (ARPES): probing electronic structure and many-body interactions

Zhi-Xun Shen
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Abstract

Complex phenomenon in quantum materials is a major theme of physics today. As better controlled model systems, a sophisticated understanding of the universality and diversity of these solids may lead to revelations well beyond themselves. Angle-resolved photoemission spectroscopy (ARPES), formulated after Einstein’s photoelectric effect, has been a key tool to uncover the microscopic processes of the electrons that give rise to the rich physics in these solids. Over the last three decades, the improved resolution and carefully matched experiments have been the keys to turn this technique into a leading experimental probe of electronic structures and many-body effects. Drawing upon examples spanning from novel superconductors and topological materials to magnetic and one-dimensional materials, we illustrate ARPES's pivotal role in testing ideas, benchmarking theoretical frameworks, uncovering unexpected phenomena, and elucidating the fingerprints of many-body interactions. Moreover, we demonstrate how the integration of modern ultrafast UV lasers and spin polarimetry has empowered photoemission spectroscopy to capture essential microscopic quantities of electrons—energy, momentum, spin, and temporal dynamics—yielding invaluable insights from a wealth of rich and precise information.
角度分辨光发射光谱(ARPES):探测电子结构和多体相互作用
量子材料中的复杂现象是当今物理学的一大主题。作为更好控制的模型系统,对这些固体的普遍性和多样性的深入理解可能会带来远远超出其本身的启示。角度分辨光发射光谱(ARPES)是根据爱因斯坦的光电效应提出的,它是揭示电子微观过程的重要工具,而电子微观过程正是这些固体中丰富物理现象的源泉。在过去的三十年里,分辨率的提高和精心匹配的实验是这项技术成为电子结构和多体效应的主要实验探针的关键。从新型超导体和拓扑材料到磁性和一维材料,我们通过实例说明了 ARPES 在测试观点、基准理论框架、揭示意想不到的现象和阐明多体相互作用指纹方面的关键作用。此外,我们还展示了现代超快紫外激光器与自旋偏振测量法的整合如何赋予光发射光谱学捕捉电子基本微观量--能量、动量、自旋和时间动态--的能力,从而从丰富而精确的信息中获得宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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