Programmable hyperbolic polaritons in van der Waals semiconductors

Collective electronic modes or lattice vibrations usually prohibit propagation of electromagnetic radiation through the bulk of common materials over a frequency range associated with these oscillations. However, this textbook tenet does not necessarily apply to layered crystals. Highly anisotropic...

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Veröffentlicht in:Science (American Association for the Advancement of Science) 2021-02, Vol.371 (6529), p.617-620
Hauptverfasser: Sternbach, A J, Chae, S H, Latini, S, Rikhter, A A, Shao, Y, Li, B, Rhodes, D, Kim, B, Schuck, P J, Xu, X, Zhu, X-Y, Averitt, R D, Hone, J, Fogler, M M, Rubio, A, Basov, D N
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Sprache:eng
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Zusammenfassung:Collective electronic modes or lattice vibrations usually prohibit propagation of electromagnetic radiation through the bulk of common materials over a frequency range associated with these oscillations. However, this textbook tenet does not necessarily apply to layered crystals. Highly anisotropic materials often display nonintuitive optical properties and can permit propagation of subdiffractional waveguide modes, with hyperbolic dispersion, throughout their bulk. Here, we report on the observation of optically induced electronic hyperbolicity in the layered transition metal dichalcogenide tungsten diselenide (WSe ). We used photoexcitation to inject electron-hole pairs in WSe and then visualized, by transient nanoimaging, the hyperbolic rays that traveled along conical trajectories inside of the crystal. We establish here the signatures of programmable hyperbolic electrodynamics and assess the role of quantum transitions of excitons within the Rydberg series in the observed polaritonic response.
ISSN:0036-8075
1095-9203
DOI:10.1126/science.abe9163