Colloidal Nanoplatelets‐Based Soft Matter Technology for Photonic Interconnected Networks: Low‐Threshold Lasing and Polygonal Self‐Coupling Microlasers

Author:

Duan Rui1ORCID,Thung Yi Tian12,Zhang Zitong13,Durmusoglu Emek Goksu12ORCID,He Yichen4,Xiao Lian1,Lee Calvin Xiu Xian1ORCID,Lew Wen Siang1ORCID,Zhang Lin4ORCID,Li Hanyang5ORCID,Yang Jun6,Demir Hilmi Volkan1278ORCID,Sun Handong1ORCID

Affiliation:

1. Division of Physics and Applied Physics School of Physical and Mathematical Sciences Nanyang Technological University 21 Nanyang Link Singapore 637371 Singapore

2. LUMINOUS! Centre of Excellence for Semiconductor Lighting and Displays The Photonics Institute School of Electrical and Electronic Engineering Nanyang Technological University Singapore 639798 Singapore

3. Xi'an Modern Chemistry Research Institute Xi'an Shaanxi 710065 China

4. School of Precision Instruments and Optoelectronics Engineering Tianjin University Tianjin 300072 China

5. College of Physics and Optoelectronic Engineering Harbin Engineering University Harbin 150001 China

6. Guangdong Provincial Key Laboratory of Information Photonics Technology College of Information Engineering Guangdong University of Technology Guangzhou 510006 China

7. School of Materials Science and Engineering Nanyang Technological University Singapore 639798 Singapore

8. Department of Electrical and Electronics Engineering Department of Physics UNAM—Institute of Materials Science and Nanotechnology Bilkent University Ankara 06800 Turkey

Abstract

AbstractSoft matter‐based microlasers are widely regarded as excellent building blocks for realizing photonic interconnected networks in optoelectronic chips, owing to their flexibility and functional network topology. However, the potential of these devices is hindered by challenges such as poor lasing stability, high lasing threshold, and gaps in knowledge regarding cavity interconnection characteristics. In this study, the first demonstration of a high‐quality, low‐threshold nanoplatelets (NPLs)‐based polymer microfiber laser fabricated using capillary immersion techniques and its photonic interconnected networks are presented. CdSe/CdS@Cd1‐xZnxS core/buffer shell@graded‐shell NPLs with high optical gain characteristics are adopted as the gain medium. The study achieves a lasing threshold below 14.8 µJ cm−2, a single‐mode quality (Q)‐factor of ≈5500, and robust lasing stability in the fabricated NPLs‐based microfibers. Furthermore, the study pioneers the exploration of polygonal self‐coupling microlasers and the optical characteristics of their interconnected fiber network. Based on the signal generation mechanism observed in the photonic networks, an interconnected NPLs‐based fiber network structure achieving single‐mode lasing emission and laser mode modulation is successfully designed. The work contributes a novel method for realizing microlasers fabricated via soft‐matter technologies and provides a key foundation and new insights for unit design and programming for future photonic network systems.

Funder

Agency for Science, Technology and Research

National Research Foundation Singapore

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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