magnetoARPES: Angle Resolved Photoemission Spectroscopy with magnetic field control

IF 1.8 4区 物理与天体物理 Q2 SPECTROSCOPY
Sae Hee Ryu , Garett Reichenbach , Chris M. Jozwiak , Aaron Bostwick , Peter Richter , Thomas Seyller , Eli Rotenberg
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引用次数: 1

Abstract

Angle-Resolved Photoemission Spectroscopy (ARPES) is a premier technique for understanding the electronic excitations in conductive, crystalline matter, in which the induced photocurrent is collected and dispersed in energy and angle of emission to reveal the energy- and momentum-dependent single particle spectral function A(k,ω). So far, ARPES in a magnetic field has been precluded due to the need to preserve the electron paths between the sample and detector. In this paper we report progress towards “magnetoARPES”, a variant of ARPES that can be conducted in a magnetic field. It is achieved by applying a microscopic probe beam (10 μm) to a thinned sample mounted upon a special sample holder that generates magnetic field confined to a thin layer near the sample surface. In this geometry we could produce ARPES in magnetic fields up to around ±100 mT. The magnetic fields can be varied from purely in-plane to nearly purely out-of-plane, by scanning the probe beam across different parts of the device. We present experimental and simulated data for graphene to explore the aberrations induced by the magnetic field. These results demonstrate the viability of the magnetoARPES technique for exploring symmetry breaking effects in weak magnetic fields.

磁场控制的角度分辨光谱学
角分辨光发射光谱(ARPES)是了解导电晶体物质中电子激发的主要技术,其中感应光电流被收集并分散在能量和发射角度上,以揭示能量和动量依赖的单粒子光谱函数a (k,ω)。到目前为止,由于需要保持样品和探测器之间的电子路径,在磁场中的ARPES已经被排除在外。在本文中,我们报告了“磁ARPES”的进展,这是一种可以在磁场中进行的ARPES的变体。它是通过将微观探针束(小于10 μm)施加到安装在特殊样品支架上的薄样品上实现的,该支架产生的磁场限制在样品表面附近的薄层上。在这种几何结构中,我们可以在高达±100 mT的磁场中产生ARPES。通过扫描设备不同部分的探针束,磁场可以从纯粹的面内变化到几乎纯粹的面外变化。我们提出了石墨烯的实验和模拟数据,以探索磁场引起的像差。这些结果证明了磁arpes技术在弱磁场中探索对称性破缺效应的可行性。
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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来源期刊
CiteScore
3.30
自引率
5.30%
发文量
64
审稿时长
60 days
期刊介绍: The Journal of Electron Spectroscopy and Related Phenomena publishes experimental, theoretical and applied work in the field of electron spectroscopy and electronic structure, involving techniques which use high energy photons (>10 eV) or electrons as probes or detected particles in the investigation.
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