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Merkl, Philipp ; Yong, Chaw-Keong ; Liebich, Marlene ; Hofmeister, Isabella ; Berghäuser, Gunnar ; Malic, Ermin ; Huber, Rupert

Proximity control of interlayer exciton-phonon hybridization in van der Waals heterostrutures

Merkl, Philipp, Yong, Chaw-Keong , Liebich, Marlene, Hofmeister, Isabella, Berghäuser, Gunnar, Malic, Ermin and Huber, Rupert (2021) Proximity control of interlayer exciton-phonon hybridization in van der Waals heterostrutures. Nature Communications 12 (1719).

Date of publication of this fulltext: 23 Mar 2021 07:40
Article
DOI to cite this document: 10.5283/epub.45277


Abstract

Van der Waals stacking has provided unprecedented flexibility in shaping many-body interactions by controlling electronic quantum confinement and orbital overlap. Theory has predicted that also electron-phonon coupling critically influences the quantum ground state of low-dimensional systems. Here we introduce proximity-controlled strong-coupling between Coulomb correlations and lattice dynamics ...

Van der Waals stacking has provided unprecedented flexibility in shaping many-body interactions by controlling electronic quantum confinement and orbital overlap. Theory has predicted that also electron-phonon coupling critically influences the quantum ground state of low-dimensional systems. Here we introduce proximity-controlled strong-coupling between Coulomb correlations and lattice dynamics in neighbouring van der Waals materials, creating new electrically neutral hybrid eigenmodes. Specifically, we explore how the internal orbital 1s-2p transition of Coulomb-bound electron-hole pairs in monolayer tungsten diselenide resonantly hybridizes with lattice vibrations of a polar capping layer of gypsum, giving rise to exciton-phonon mixed eigenmodes, called excitonic Lyman polarons. Tuning orbital exciton resonances across the vibrational resonances, we observe distinct anticrossing and polarons with adjustable exciton and phonon compositions. Such proximity-induced hybridization can be further controlled by quantum designing the spatial wavefunction overlap of excitons and phonons, providing a promising new strategy to engineer novel ground states of two-dimensional systems. Here, the authors demonstrate proximity-controlled strong-coupling between Coulomb correlations and lattice dynamics in neighbouring van der Waals materials (WSe2 and a gypsum layer), creating electrically neutral hybrid exciton-phonon eigenmodes called excitonic Lyman polarons.



Involved Institutions


Details

Item typeArticle
Journal or Publication TitleNature Communications
Publisher:Nature
Place of Publication:BERLIN
Volume:12
Number of Issue or Book Chapter:1719
Date19 March 2021
InstitutionsPhysics > Institute of Experimental and Applied Physics > Chair Professor Huber > Group Rupert Huber
Identification Number
ValueType
10.1038/s41467-021-21780-6DOI
Keywords;
Dewey Decimal Classification500 Science > 530 Physics
StatusPublished
RefereedYes, this version has been refereed
Created at the University of RegensburgPartially
URN of the UB Regensburgurn:nbn:de:bvb:355-epub-452771
Item ID45277

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