Band Offsets Engineering for van der Waals Heterostructure Devices
ORAL
Abstract
Two-dimensional crystals (2D) and their stacks in van der Waals heterostructures became prospective for novel devices and physics. To surmount commensurability limitations within first-principles investigations, the coincidence lattice method is developed\footnote[1]{D. S. Koda, F. Bechstedt, M. Marques, and L. K. Teles, \textit{J. Phys. Chem. C} \textbf{120} (2016) 10895.}, enabling studies on interlayer twist\footnote[2]{D. S. Koda, F. Bechstedt, M. Marques, and L. K. Teles, \textit{J. Electron. Mater.} (2016).} and quasiparticle corrections despite limited computational resources. Interesting properties are observed within stacked systems, such as structural deformation on contact, strong orbital hybridization, and tunable band offsets by application of pressure and vertical electric fields\footnote[3]{D. S. Koda, F. Bechstedt, M. Marques, and L. K. Teles, submitted to the \textit{J. Phys. Chem. Lett.} (2016).}. These studies could help to develop versatile electronic and optoelectronic devices and unravel new physics within 2D interfaces.
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Authors
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Daniel S. Koda
Instituto Tecnol\'ogico de Aeron\'autica, 12228-461 S\~ao Jos\'e dos Campos, Brazil
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Friedhelm Bechstedt
Friedrich-Schiller-Universit\"at, Max-Wien-Platz 1, D-07743 Jena, Germany, Friedrich-Schiller-Universit\"at
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Marcelo Marques
Instituto Technologico de Aeronautica (ITA), Sao Jose dos Campos-SP, Brazil, Instituto Tecnol\'ogico de Aeron\'autica, 12228-461 S\~ao Jos\'e dos Campos, Brazil
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Lara K. Teles
Instituto Technologico de Aeronautica (ITA), Sao Jose dos Campos-SP, Brazil, Instituto Tecnol\'ogico de Aeron\'autica, 12228-461 S\~ao Jos\'e dos Campos, Brazil