Frequency converting and digital modulation of light derived from lanthanide for signal encoding and logic computing

Author:

Chen Haisheng1,Shen Jiaying2,Du Xiaona3,Cai Songhua4,Guo Feng45,Io Weng Fu4,Zhou Tianhong1,Dong Zhengang2,Bian Taiyu1,Guo Jiaxing1,Liu Weiwei1,Zhang Yang1ORCID,Wu Zhenping2,Hao Jianhua45ORCID

Affiliation:

1. Institute of Modern Optics and Tianjin Key Laboratory of Micro‐Scale Optical Information Science and Technology Nankai University Tianjin the People's Republic of China

2. State Key Laboratory of Information Photonics and Optical Communications & School of Science Beijing University of Posts and Telecommunications Beijing the People's Republic of China

3. Institute of Photoelectric Thin Film Devices and Technology, College of Electronic Information and Optical Engineering Nankai University Tianjin the People's Republic of China

4. Department of Applied Physics The Hong Kong Polytechnic University Hung Hom, Hong Kong the People's Republic of China

5. The Hong Kong Polytechnic University Shenzhen Research Institute Shenzhen the People's Republic of China

Abstract

AbstractModulation of light underpins a central part of modern optoelectronics. Conventional optical modulators based on refractive‐index and absorption variation in the presence of an electric field serve as the workhorse for diverse photonic technologies. However, these approaches based on electro‐refraction or electro‐absorption effect impose limitations on frequency converting and signal amplification. Lanthanide‐activated phosphors offer a promising platform for nonlinear frequency conversion with an abundant spectrum. Here, we propose a novel approach to achieve frequency conversion and digital modulation of light signal by coupling lanthanide luminescence with an electrically responsive ferroelectric host. The technological benefits of such paradigm‐shifting solution are highlighted by demonstrating a quasi‐continuous and enhancement of the lanthanide luminescence. The ability to locally manipulate light emission can convert digital information signals into visible waveforms, and visualize electrical logic and arithmetic operations. The proof‐of‐concept device exhibits perspectives for developing light‐compatible logic functions. These results pave the way to design more controllable lanthanide photonics with desired opto‐electronic coupling.image

Funder

National Natural Science Foundation of China

Beijing University of Posts and Telecommunications

Publisher

Wiley

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