Published May 17, 2024 | Version v1
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Preservation of Topological Surface States in Millimeter-Scale Transferred Membranes

Description

Ultrathin topological insulator membranes are building blocks of exotic quantum matter. However, traditional epitaxy of these materials does not facilitate stacking in arbitrary orders, while mechanical exfoliation from bulk crystals is also challenging due to the non-negligible interlayer coupling therein. Here we liberate millimeter-scale films of the topological insulator Bi2Se3, grown by molecular beam epitaxy, down to 3 quintuple layers. We characterize the preservation of the topological surface states and quantum well states in transferred Bi2Se3 films using angle-resolved photoemission spectroscopy. Leveraging the photon-energy-dependent surface sensitivity, the photoemission spectra taken with 6 and 21.2 eV photons reveal a transfer-induced migration of the topological surface states from the top to the inner layers. By establishing clear electronic structures of the transferred films and unveiling the wave function relocation of the topological surface states, our work lays the physics foundation crucial for the future fabrication of artificially stacked topological materials with single-layer precision.

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Additional details

Identifiers

DOI
10.1021/acs.nanolett.4c00008
Other
oai:uchicago.tind.io:11817

Funding

Basic Energy Sciences, Department of Energy
DE-SC0023317
National Science Foundation
DMR-2011854
National Science Foundation
Graduate Research Fellowship

UChicago Information

Division(s)
Pritzker School of Molecular Engineering