Micro-metric electronic patterning of a topological band structure using a photon beam
ORAL
Abstract
The only states crossing E$_F$ in ideal, 3D TIs are topological surface states. Single crystals of Bi$_2$Se$_3$ and Bi$_2$Te$_3$ are too defective to exhibit bulk-insulating behaviour, and ARPES shows topologically trivial 2DEGs at E$_F$ in the surface region due to downward band bending. Ternary \& quaternary alloys of Bi$\big /$Te$\big /$Se$\big /$Sb hold promise for obtaining bulk-insulating crystals. Here we report ARPES data from quaternary, bulk-insulating, Bi-based TIs. Shortly after cleavage in UHV, downward band bending pulls the bulk conduction band below E$_F$, once again frustrating the ``topological only'' ambition for the Fermi surface. However, there is light at the end of the tunnel: we show that a super-band-gap photon beam generates a surface photovoltage sufficient to flatten the bands, thereby recovering the ideal, ``topological only'' situation. In our bulk-insulating quaternary TIs, this effect is local in nature, and permits the writing of arbitrary, micron-sized patterns in the topological energy landscape at the surface.
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Authors
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Mark Golden
University of Amsterdam
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Emmanouil Frantzeskakis
University of Amsterdam
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Nick de Jong
University of Amsterdam
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Yingkai Huang
University of Amsterdam
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Dong Wu
University of Amsterdam
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Yu Pan
University of Amsterdam
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Anne de Visser
University of Amsterdam
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Erik van Heumen
University of Amsterdam
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Tran Van Bay
University of Amsterdam
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Berend Zwartsenberg
University of Amsterdam
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Pieter Pronk
University of Amsterdam
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Shyama Varier Ramankutty
University of Amsterdam
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Alona Tytarenko
University of Amsterdam
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Nan Xu
Paul Scherrer Institut
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Nick Plumb
Paul Scherrer Institut
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Ming Shi
Paul Scherrer Institut, Paul Scherrer Institute
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Milan Radovic
Paul Scherrer Institut
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Andrei Varkhalov
Helmholtz Zentrum Berlin