Engineering Perovskite Emissions via Optical Quasi-Bound-States-in-the-Continuum
Abstract
Metal halide perovskite quantum dots (PQDs) have emerged as promising materials due to their exceptional photoluminescence (PL) properties. A wide range of applications could benefit from adjustable luminescence properties, while preserving the physical and chemical properties of the PQDs. Therefore, post-synthesis engineering has gained attention recently, involving the use of ion-exchange or external stimuli, such as extreme pressure, magnetic and electric fields. Nevertheless, these methods typically suffer from spectrum broadening, intensity quenching or yield multiple bands. Alternatively, photonic antennas can modify the radiative decay channel of perovskites via the Purcell effect, with the largest wavelength shift being 8 nm to date, at an expense of 5-fold intensity loss. Here, we present an optical nanoantenna array with polarization-controlled quasi-bound-states-in-the-continuum (q-BIC) resonances, which can engineer and shift the photoluminescence wavelength over a ~39 nm range and confers a 21-fold emission enhancement of FAPbI3 perovskite QDs. The spectrum is engineered in a non-invasive manner via lithographically defined antennas and the pump laser polarization at ambient conditions. Our research provides a path towards advanced optoelectronic devices, such as spectrally tailored quantum emitters and lasers.
Keywords
Cite
@article{arxiv.2306.14229,
title = {Engineering Perovskite Emissions via Optical Quasi-Bound-States-in-the-Continuum},
author = {Evelin Csányi and Yan Liu and Soroosh Daqiqeh Rezaei and Henry Yit Loong Lee and Febiana Tjiptoharsono and Zackaria Mahfoud and Sergey Gorelik and Xiaofei Zhao and Li Jun Lim and Di Zhu and Jing Wu and Kuan Eng Johnson Goh and Weibo Gao and Zhi-Kuang Tan and Graham Leggett and Cheng-Wei Qiu and Zhaogang Dong},
journal= {arXiv preprint arXiv:2306.14229},
year = {2023}
}
Comments
39 pages, 4 figures in the main text and 10 figures in the supporting information