Engineering photonic environments for two-dimensional materials

Author:

Ma Xuezhi1,Youngblood Nathan2,Liu Xiaoze3,Cheng Yan4,Cunha Preston1,Kudtarkar Kaushik1,Wang Xiaomu4,Lan Shoufeng1ORCID

Affiliation:

1. Department of Mechanical Engineering , Texas A&M University , College Station , TX , 77840 , USA

2. Department of Electrical and Computer Engineering , University of Pittsburgh , Pittsburgh , PA , 15261 , USA

3. School of Physics and Technology , Wuhan University , Wuhan , Hubei , 430072 , China

4. School of Electronic Science and Engineering , Nanjing University , Nanjing , Jiangsu , 210023 , China

Abstract

Abstract A fascinating photonic platform with a small device scale, fast operating speed, as well as low energy consumption is two-dimensional (2D) materials, thanks to their in-plane crystalline structures and out-of-plane quantum confinement. The key to further advancement in this research field is the ability to modify the optical properties of the 2D materials. The modifications typically come from the materials themselves, for example, altering their chemical compositions. This article reviews a comparably less explored but promising means, through engineering the photonic surroundings. Rather than modifying materials themselves, this means manipulates the dielectric and metallic environments, both uniform and nanostructured, that directly interact with the materials. For 2D materials that are only one or a few atoms thick, the interaction with the environment can be remarkably efficient. This review summarizes the three degrees of freedom of this interaction: weak coupling, strong coupling, and multifunctionality. In addition, it reviews a relatively timing concept of engineering that directly applied to the 2D materials by patterning. Benefiting from the burgeoning development of nanophotonics, the engineering of photonic environments provides a versatile and creative methodology of reshaping light–matter interaction in 2D materials.

Funder

Texas A&M University

Governor’s University Research Initiative

NSF

Fundamental Research Funds for the Central Universities

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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