Atomically Thin MoS2 Narrowband and Broadband Light Superabsorbers

Lujun Huang, Guoqing Li, Alper Gurarslan, Yiling Yu, Ronny Kirste, Wei Guo, Junjie Zhao, Ramon Collazo, Zlatko Sitar, Gregory N. Parsons, Michael Kudenov, Linyou Cao*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

91 Citations (Scopus)

Abstract

We present a combined theoretical and experimental effort to enable strong light absorption (>70%) in atomically thin MoS2 films (≤4 layers) for either narrowband incidence with arbitrarily prespecified wavelengths or broadband incidence like solar radiation. This is achieved by integrating the films with resonant photonic structures that are deterministically designed using a unique reverse design approach based on leaky mode coupling. The design starts with identifying the properties of leaky modes necessary for the targeted strong absorption, followed by searching for the geometrical features of nanostructures to support the desired modes. This process is very intuitive and only involves a minimal amount of computation, thanks to the straightforward correlations between optical functionality and leaky modes as well as between leaky modes and the geometrical feature of nanostructures. The result may provide useful guidance for the development of high-performance atomic-scale photonic devices, such as solar cells, modulators, photodetectors, and photocatalysts.

Original languageEnglish
Pages (from-to)7493-7499
Number of pages7
JournalACS Nano
Volume10
Issue number8
DOIs
Publication statusPublished - 23 Aug 2016
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2016 American Chemical Society.

Funding

This work was supported by a Young Investigator Award from the Army Research Office (W911NF-13-1-0201). The synthesis and transfer work is supported as part of a CAREER award from the National Science Foundation (DMR- 1352028). R.C. and Z.S. acknowledge the partial financial support from the National Science Foundation (DMR-1312582 and ECCS- 1508854). The authors acknowledge the use of the Analytical Instrumentation Facility (AIF) at North Carolina State University, which is supported by the State of North Carolina and the National Science Foundation.

FundersFunder number
National Science FoundationDMR-1312582, 1508854, DMR- 1352028, 1352028, ECCS- 1508854, 1312582
Army Research OfficeW911NF-13-1-0201
North Carolina State University

    Keywords

    • MoS
    • leaky mode
    • light absorption
    • resonant photonics
    • two-dimensional materials

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