Coaction effect of radiative and non-radiative damping on the lifetime of localized surface plasmon modes in individual gold nanorods

Author:

Qin Yulu1ORCID,Xu Yang12ORCID,Ji Boyu12ORCID,Song Xiaowei12,Lin Jingquan12ORCID

Affiliation:

1. School of Physics, Changchun University of Science and Technology 1 , Changchun 130022, People’s Republic of China

2. Zhongshan Institute of Changchun University of Science and Technology 2 , Zhongshan 528400, People’s Republic of China

Abstract

Revealing the coaction effect of radiative and non-radiative damping on the lifetime of the localized surface plasmon resonance (LSPR) mode is a prerequisite for the applications of LSPR. Here, we systematically investigated the coaction effect of radiative and non-radiative damping on the lifetime of the super-radiant and sub-radiant LSPR modes of gold nanorods using time-resolved photoemission electron microscopy (TR-PEEM). The results show that the lifetime of the LSPR mode depends on the length of the gold nanorod, and the different variation behavior of an LSPR mode lifetime exists between the super-radiative mode and the sub-radiative one with the increase of nanorod length (volume). Surprisingly, it is found that the lifetime of the super-radiant LSPR mode can be comparable to or even longer than that of the sub-radiant LSPR mode, instead of the usual claim that a sub-radiant LSPR mode has a longer life than the super-radiant mode. Those TR-PEEM experimental results are supported by finite-difference time-domain simulations and are well explained by the coaction effect with the calculation of the radiative and non-radiative damping rate with the increase of the nanorod volume. We believe that this study is beneficial to build a low-threshold nano-laser and ultrasensitive molecular spectroscopy system.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Department of Science and Technology of Jilin Province

Jilin Provincial Key Laboratory of Ultrafast and Extreme Ultraviolet Optics

“111” Project of China

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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