Development of a laser-based angle-resolved-photoemission spectrometer with sub-micrometer spatial resolution and high-efficiency spin detection

Author:

Xu R. Z.12ORCID,Gu X.12ORCID,Zhao W. X.12ORCID,Zhou J. S.12ORCID,Zhang Q. Q.12ORCID,Du X.12ORCID,Li Y. D.12,Mao Y. H.3ORCID,Zhao D.4ORCID,Huang K.4ORCID,Zhang C. F.3ORCID,Wang F.5ORCID,Liu Z. K.56,Chen Y. L.567ORCID,Yang L. X.12ORCID

Affiliation:

1. State Key Laboratory of Low Dimensional Quantum Physics, Department of Physics, Tsinghua University 1 , Beijing 100084, China

2. Frontier Science Center for Quantum Information 2 , Beijing 100084, China

3. College of Advanced Interdisciplinary Studies, National University of Defense Technology 3 , Changsha, Hunan 410073, China

4. Department of Optics and Optical Engineering, University of Science and Technology of China 4 , Hefei, Anhui 230026, China

5. ShanghaiTech Laboratory for Topological Physics 5 , Shanghai 200031, China

6. School of Physical Science and Technology, ShanghaiTech University and CAS-Shanghai Science Research Center 6 , Shanghai 201210, China

7. Department of Physics, Clarendon Laboratory, University of Oxford 7 , Parks Road, Oxford OX1 3PU, United Kingdom

Abstract

Angle-resolved photoemission spectroscopy with sub-micrometer spatial resolution (μ-ARPES), has become a powerful tool for studying quantum materials. To achieve sub-micrometer or even nanometer-scale spatial resolution, it is important to focus the incident light beam (usually from synchrotron radiation) using x-ray optics, such as the zone plate or ellipsoidal capillary mirrors. Recently, we developed a laser-based μ-ARPES with spin-resolution (LMS-ARPES). The 177 nm laser beam is achieved by frequency-doubling a 355 nm beam using a KBBF crystal and subsequently focused using an optical lens with a focal length of about 16 mm. By characterizing the focused spot size using different methods and performing spatial-scanning photoemission measurement, we confirm the sub-micron spatial resolution of the system. Compared with the μ-ARPES facilities based on the synchrotron radiation, our LMS-ARPES system is not only more economical and convenient, but also with higher photon flux (>5 × 1013 photons/s), thus enabling the high-resolution and high-statistics measurements. Moreover, the system is equipped with a two-dimensional spin detector based on exchange scattering at a surface-passivated iron film grown on a W(100) substrate. We investigate the spin structure of the prototype topological insulator Bi2Se3 and reveal a high spin-polarization rate, confirming its spin-momentum locking property. This lab-based LMS-ARPES will be a powerful research tool for studying the local fine electronic structures of different condensed matter systems, including topological quantum materials, mesoscopic materials and structures, and phase-separated materials.

Funder

National Natural Science Foundation of China

Publisher

AIP Publishing

Subject

Instrumentation

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