English

Ultrafast transition between exciton phases in van der Waals heterostructures

Materials Science 2019-10-10 v1 Mesoscale and Nanoscale Physics Optics Quantum Physics

Abstract

Heterostructures of atomically thin van der Waals bonded monolayers have opened a unique platform to engineer Coulomb correlations, shaping excitonic, Mott insulating, or superconducting phases. In transition metal dichalcogenide heterostructures, electrons and holes residing in different monolayers can bind into spatially indirect excitons with a strong potential for optoelectronics, valleytronics, Bose condensation, superfluidity, and moir\'e-induced nanodot lattices. Yet these ideas require a microscopic understanding of the formation, dissociation, and thermalization dynamics of correlations including ultrafast phase transitions. Here we introduce a direct ultrafast access to Coulomb correlations between monolayers; phase-locked mid-infrared pulses allow us to measure the binding energy of interlayer excitons in WSe2/WS2 hetero-bilayers by revealing a novel 1s-2p resonance, explained by a fully quantum mechanical model. Furthermore, we trace, with subcycle time resolution, the transformation of an exciton gas photogenerated in the WSe2 layer directly into interlayer excitons. Depending on the stacking angle, intra- and interlayer species coexist on picosecond scales and the 1s-2p resonance becomes renormalized. Our work provides a direct measurement of the binding energy of interlayer excitons and opens the possibility to trace and control correlations in novel artificial materials.

Keywords

Cite

@article{arxiv.1910.03890,
  title  = {Ultrafast transition between exciton phases in van der Waals heterostructures},
  author = {Philipp Merkl and Fabian Mooshammer and Philipp Steinleitner and Anna Girnghuber and Kai-Qiang Lin and Philipp Nagler and Johannes Holler and Christian Schüller and John M. Lupton and Tobias Korn and Simon Ovesen and Samuel Brem and Ermin Malic and Rupert Huber},
  journal= {arXiv preprint arXiv:1910.03890},
  year   = {2019}
}

Comments

This is a post-peer-review, pre-copyedit version of an article published in Nature Materials. The final authenticated version is available online at https://doi.org/10.1038/s41563-019-0337-0