A Purcell-enabled monolayer semiconductor free-space optical modulator

Open Access
Authors
  • J. Hong
  • A. Daus
  • Y.J. Lee
  • A.C. Johnson
  • E. Pop
  • F. Liu
  • M.L. Brongersma
Publication date 10-2023
Journal Nature Photonics
Volume | Issue number 17 | 10
Pages (from-to) 897-903
Number of pages 7
Organisations
  • Faculty of Science (FNWI) - Institute of Physics (IoP) - Van der Waals-Zeeman Institute (WZI)
Abstract

Dephasing and non-radiative decay processes limit the performance of a wide variety of quantum devices at room temperature. Here we illustrate a general pathway to notably reduce the detrimental impact of these undesired effects through photonic design of the device electrodes. Our design facilitates a large Purcell enhancement that speeds up competing, desired radiative decay while also enabling convenient electrical gating and charge injection functions. We demonstrate the concept with a free-space optical modulator based on an atomically thin semiconductor. By engineering the plasmonic response of a nanopatterned silver gate pad, we successfully enhance the radiative decay rate of excitons in a tungsten disulfide monolayer by one order of magnitude to create record-high modulation efficiencies for this class of materials at room temperature. We experimentally observe a 10% reflectance change as well as 3 dB signal modulation, corresponding to a 20-fold enhancement compared with modulation using a suspended monolayer in vacuum. We also illustrate how dynamic control of light fields can be achieved with designer surface patterns. This research highlights the benefits of applying radiative decay engineering as a powerful tool in creating high-performance devices that complements substantial efforts to improve the quality of materials.

Document type Article
Language English
Related publication A Purcell Enabled Monolayer Semiconductor Free-Space Optical Modulator
Published at https://doi.org/10.1038/s41566-023-01250-9
Other links https://www.scopus.com/pages/publications/85164940013
Downloads
s41566-023-01250-9 (Final published version)
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