Polaronic Nonlinear Optical Response and All‐Optical Switching Based on an Ionic Metal Oxide

Author:

Yang Yuting1,Lau Kuen Yao2,Zheng Jingying3,Dong Junhao3,Wang Lin1,Yin Xiaojie45,Tong Zhaojing6,Qiu Hangkai7,Xu Jian8,Xiao Weiqiang8,Xu BeiBei2,Qiu Jianrong2,Hosono Hideo9,Liu Xiaofeng1ORCID

Affiliation:

1. School of Materials Science and Engineering Zhejiang University Hangzhou 310027 China

2. School of Optoelectronic Science and Engineering & Collaborative Innovation Center of Suzhou Nano Science and Technology Soochow University Key Lab of Advanced Optical Manufacturing Technologies of Jiangsu Province & Key Lab of Modern Optical Technologies of Education Ministry of China Soochow University Suzhou 215006 China

3. School of Material Science and Engineering Fuzhou University Fuzhou 350108 China

4. State Key Laboratory of Integrated Optoelectronics Institute of Semiconductors Chinese Academy of Sciences Beijing 100083 China

5. Shijia Photonics Technology Hebi 458030 China

6. School of Electrical Engineering and Automation Henan Polytechnic University Jiaozuo 454003 China

7. ULTRON Photonics Inc. Hangzhou 311202 China

8. Technology Center China Tobacco Zhejiang Industrial Co., Ltd Hangzhou 310001 China

9. Materials Research Center for Element Strategy (MCES) Tokyo Institute of Technology Yokohama 226‐8503 Japan

Abstract

AbstractIt has been well‐established that light‐matter interactions, as manifested by diverse linear and nonlinear optical (NLO) processes, are mediated by real and virtual particles, such as electrons, phonons, and excitons. Polarons, often regarded as electrons dressed by phonons, are known to contribute to exotic behaviors of solids, from superconductivity to photocatalysis, while their role in materials’ NLO response remains largely unexplored. Here, the NLO response mediated by polarons supported by a model ionic metal oxide, TiO2, is examined. It is observed that the formation of polaronic states within the bandgap results in a dramatic enhancement of NLO absorption coefficient by over 130 times for photon energies in the sub‐bandgap regions, characterized by a 100 fs scale ultrafast response that is typical for thermalized electrons in metals. The ultrafast polaronic NLO response is then exploited for the development of all‐optical switches for ultrafast pulse generation in near‐infrared (NIR) fiber lasers and modulation of optical signal in the telecommunication band based on evanescent interaction on a planar waveguide chip. These results suggest that the polarons supported by dielectric ionic oxides can fill the gaps left by dielectric and metallic materials and serve as a novel platform for nonlinear photonic applications.

Funder

National Basic Research Program of China

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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