Efficient and tunable liquid crystal random laser based on plasmonic-enhanced FRET

Author:

Qu Guangyin1ORCID,Zhang Xiaojuan1,Lu Liang1ORCID,Li Siqi1,Du Wenyu1,Cao Zhigang1,Li Chao1ORCID,Zhang Lin2,Zhou Kaiming2,Wu Si3,Ma Jiajun4,Gao Jiangang5ORCID,Yu Benli1,Hu Zhijia1ORCID

Affiliation:

1. Information Materials and Intelligent Sensing Laboratory of Anhui Province, Key Laboratory of Opto-Electronic Information Acquisition and Manipulation of Ministry of Education, School of Physics and Optoelectronic Engineering, Anhui University 1 , Hefei 230601, Anhui, People’s Republic of China

2. Aston Institute of Photonic Technologies, Aston University 2 , Birmingham B4 7ET, United Kingdom

3. CAS Key Laboratory of Soft Matter Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, Department of Polymer Science and Engineering, University of Science and Technology of China 3 , Hefei 230026, Anhui, People’s Republic of China

4. The State Key Laboratory of Environment Friendly Energy Materials, Southwest University of Science and Technology 4 , Mianyang 621000, China

5. Department of Polymeric Materials and Engineering, School of Biological and Chemical Engineering, Anhui Polytechnic University 5 , Wuhu 241000, Anhui, People’s Republic of China

Abstract

Random lasers (RLs), which possess peculiar advantages (e.g., emission and coherence tunable) over traditional lasers with optical resonators, have witnessed rapid development in the past decades. However, it is still a challenge to tune the lasing peak of an RL over a wide range. Here, a temperature-dependent Förster resonance energy transfer (FRET) RL is demonstrated in pyrromethene 597 (PM597, “donor”) and Nile blue (NB, “acceptor”) doped chiral liquid crystals. By changing the temperature that drives the liquid crystal bandgap shift, our RL device exhibits a lasing output change from 560 nm (yellow) to 700 nm (red). While the intrinsic FRET efficiency between PM597 and NB is relatively low, the red lasing is weak. By introducing gold nanorods (GNRs) into these RL devices and utilizing GNRs’ localized surface plasmon resonance (LSPR) effect, the efficiency of FRET transfer is increased by 68.9%, thereby reducing the threshold of the RL devices. By tuning the longitudinal LSPR to match the emission wavelength of NB, the best 200-fold lasing intensity enhancement is recorded. Our findings open a pathway toward realizing LSPR-enhanced FRET tunable RLs and broaden the range of their possible exploration in photonics research and technologies.

Publisher

AIP Publishing

Subject

Computer Networks and Communications,Atomic and Molecular Physics, and Optics

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