4.5 Article

An integrated quantum material testbed with multi-resolution photoemission spectroscopy

Journal

REVIEW OF SCIENTIFIC INSTRUMENTS
Volume 92, Issue 11, Pages -

Publisher

AIP Publishing
DOI: 10.1063/5.0072979

Keywords

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Funding

  1. NSF [2019131]
  2. UChicago Dean's Scholars program
  3. UChicago Jeff Metcalf program
  4. National Science Foundation through the Penn State 2D Crystal Consortium-Materials Innovation Platform (2DCC-MIP) under NSF [DMR1539916]
  5. Division Of Computer and Network Systems
  6. Direct For Computer & Info Scie & Enginr [2019131] Funding Source: National Science Foundation

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A multi-resolution photoemission spectroscopy setup has been developed to probe quantum materials in energy, momentum, space, and time with high resolution. This versatile setup integrates three light sources and allows for convenient switching between different types of photoemission spectroscopy tests, while also being integrated with a shadow-mask assisted molecular beam epitaxy system.
We present the development of a multi-resolution photoemission spectroscopy (MRPES) setup, which probes quantum materials in energy, momentum, space, and time. This versatile setup integrates three light sources in one photoemission setup and can conveniently switch between traditional angle-resolved photoemission spectroscopy (ARPES), time-resolved ARPES (trARPES), and micrometer-scale spatially resolved ARPES. It provides a first-time all-in-one solution to achieve an energy resolution of < 4 meV, a time resolution of < 35 fs, and a spatial resolution of & SIM;10 mu m in photoemission spectroscopy. Remarkably, we obtain the shortest time resolution among the trARPES setups using solid-state nonlinear crystals for frequency upconversion. Furthermore, this MRPES setup is integrated with a shadow-mask assisted molecular beam epitaxy system, which transforms the traditional photoemission spectroscopy into a quantum device characterization instrument. We demonstrate the functionalities of this novel quantum material testbed using FeSe/SrTiO3 thin films and MnBi4Te7 magnetic topological insulators.

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