Exploiting plasmons in 2D metals for refractive index sensing: Simulation study

Author:

Kang Lei1ORCID,Robinson Joshua A.2ORCID,Werner Douglas H.1ORCID

Affiliation:

1. Department of Electrical Engineering and Center for Nanoscale Science, The Pennsylvania State University, University Park, Pennsylvania 16802, USA

2. Department of Materials Science and Engineering, Department of Physics, Department of Chemistry, Center for Nanoscale Science, 2D Crystal Consortium, Center for Atomically Thin Multifunctional Coatings, and Center for 2D and Layered Materials, The Pennsylvania State University, University Park, Pennsylvania 16802, USA

Abstract

Ultrathin and two-dimensional (2D) metals can support strong plasmons, with concomitant tight field confinement and large field enhancement. Accordingly, 2D-metal nanostructures exhibiting plasmonic resonances are highly sensitive to the environment and intrinsically suitable for optical sensing. Here, based on a proof-of-concept numerical study, nano-engineered ultrathin 2D-metal films that support infrared plasmons are demonstrated to enable highly responsive refractive index (RI) sensing. For 3 nm-Au nanoribbons exhibiting plasmonic resonances at wavelengths around 1600 nm, a RI sensitivity of SRI > 650 nm per refractive index unit (RIU) is observed for a 100 nm-thick analyte layer. A parametric study of the 2D-Au system indicates the strong dependence of the RI sensitivity on the 2D-metal thickness. Furthermore, for an analyte layer as thin as 1 nm, a RI sensitivity up to 110 (90 nm/RIU) is observed in atomically thin 2D-In (2D-Ga) nanoribbons exhibiting highly localized plasmonic resonances at mid-infrared wavelengths. Our results not only reveal the extraordinary sensing characteristics of 2D-metal systems but also provide insight into the development of 2D-metal-based plasmonic devices for enhanced IR detection.

Funder

Defense Advanced Research Projects Agency

National Science Foundation

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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