Highly Absorbing Monolayer MoS2 for a Large Reflection Phase Modulation

Author:

Wang Yingying1,Li Zhonglin12ORCID,Li Xianglin34,Gao Kangyu1,Yin Zhixiong5,Liu Wenjun1,Zhong Bo6,Kan Guangfeng7,Wang Xiaofei7,Jiang Jie7ORCID,Shen Zexiang8ORCID

Affiliation:

1. Department of Optoelectronic Science Harbin Institute of Technology at Weihai Weihai 264209 China

2. Department of Physics Harbin Institute of Technology Harbin 150001 China

3. Hunan First Normal University No.1015, Fenglin Road (the 3rd), Yuelu District Changsha Hunan 410205 China

4. Donguan NanoFrontier Microelectronics Equipment Co., Ltd, City of University Innovation Songshan Lake Guangdong 523000 China

5. Materials Science and Engineering University of Michigan 2300 Hayward St Ann Arbor MI 48109 USA

6. School of Materials Science and Engineering Harbin Institute of Technology at Weihai Weihai 264209 China

7. School of Marine Science and Technology Harbin Institute of Technology at Weihai Weihai 264209 China

8. Division of Physics and Applied Physics School of Physical and Mathematical Sciences Nanyang Technological University Singapore 637616 Singapore

Abstract

AbstractManipulation of wavefront lies at the core of next‐generation information technologies. Compared to metal and dielectric metasurfaces, atomic 2D materials exhibit excellent prospects toward fulfilling ultra‐thin thickness requirements in flat optics in wavefront shaping, with thickness much smaller than those of traditional bulky devices. However, phase manipulation by light propagating through atomic 2D materials is suppressed due to its sub‐nanometer thickness. Here, an approach is reported to realize reflection phase singularities by establishing a zero‐reflection point in a monolayer MoS2‐based multilayer system, which broadens topological study beyond polarization singularity. This is achieved through the creation of a multilayer Fabry‐Perot‐type interference, and a pronounced phase change in the reflected light is realized due to the high absorption of monolayer MoS2 in the studied wavelength range. As an application, a rapid, sensitive, and label‐free detection of SARS‐CoV‐2 (2019‐nCov) antigen is demonstrated with a detection limit of 10−12 M L−1 (62 pg ml−1) by using monolayer MoS2 based optical biosensor. In addition to offering a comprehensive study in phase singularity, efficient wavefront engineering based on the reflective system using materials is presented with atomic thickness which may greatly simplify optical architecture in flat optics, and promote its development toward compactness and integrated functions.

Funder

Natural Science Foundation of Shandong Province

National Natural Science Foundation of China

Publisher

Wiley

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