Electrically tunable layer-hybridized trions in doped WSe2 bilayers
Journal article, 2024

Doped van der Waals heterostructures host layer-hybridized trions, i.e. charged excitons with layer-delocalized constituents holding promise for highly controllable optoelectronics. Combining a microscopic theory with photoluminescence (PL) experiments, we demonstrate the electrical tunability of the trion energy landscape in naturally stacked WSe2 bilayers. We show that an out-of-plane electric field modifies the energetic ordering of the lowest lying trion states, which consist of layer-hybridized Λ-point electrons and layer-localized K-point holes. At small fields, intralayer-like trions yield distinct PL signatures in opposite doping regimes characterized by weak Stark shifts in both cases. Above a doping-asymmetric critical field, interlayer-like species are energetically favored and produce PL peaks with a pronounced Stark red-shift and a counter-intuitively large intensity arising from efficient phonon-assisted recombination. Our work presents an important step forward in the microscopic understanding of layer-hybridized trions in van der Waals heterostructures and paves the way towards optoelectronic applications based on electrically controllable atomically-thin semiconductors.

Author

Raul Perea Causin

Chalmers, Physics, Condensed Matter and Materials Theory

Stockholm University

Samuel Brem

Philipps University Marburg

Fabian Buchner

University of Regensburg

Yao Lu

Xiamen University

Kenji Watanabe

National Institute for Materials Science (NIMS)

Takashi Taniguchi

National Institute for Materials Science (NIMS)

J. M. Lupton

University of Regensburg

Kai Qiang Lin

University of Regensburg

Xiamen University

Ermin Malic

Philipps University Marburg

Nature Communications

2041-1723 (ISSN) 20411723 (eISSN)

Vol. 15 1 6713

Subject Categories

Atom and Molecular Physics and Optics

Condensed Matter Physics

DOI

10.1038/s41467-024-50834-8

More information

Latest update

8/15/2024