z-logo
Premium
Novel radioluminescent nuclear battery: Spectral regulation of perovskite quantum dots
Author(s) -
Chen Wang,
Tang Xiaobin,
Liu Yunpeng,
Xu Zhiheng,
Han Zhenyang,
Zhang Zhengrong,
Wang Hongyu,
Peng Cong
Publication year - 2018
Publication title -
international journal of energy research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.808
H-Index - 95
eISSN - 1099-114X
pISSN - 0363-907X
DOI - 10.1002/er.4032
Subject(s) - radioluminescence , quantum dot , photoluminescence , perovskite (structure) , battery (electricity) , optoelectronics , materials science , fluorescence , scintillator , chemistry , optics , physics , quantum mechanics , crystallography , power (physics) , detector
Summary CsPbBr 3 and CsPbBr 1.5 I 1.5 perovskite quantum dots (QDs) are synthesized by hot‐injection with PPO (2,5‐diphenyloxazole) as a fluorescent material for radioluminescent nuclear battery. The results reveal that the fluorescence of the QD/PPO system consists of radioluminescence (4.79%‐5.35%) and photoluminescence (nearly 95%). The addition of QDs leads to more excellent optical and electrical properties of radioluminescent nuclear battery. The peak position of the radioluminescence spectra of QD/PPO can be regulated by controlling the components of QDs. This strategy is suitable for obtaining a satisfactory spectral matching factor for different photovoltaic devices to obtain outstanding output performance. Moreover, good selection of QD/PPO as a fluorescent material can significantly improve the overall output performance of the radioluminescent nuclear battery. The linear relationship between optical and electrical properties was presented. Perovskite QDs exhibit excellent application prospects for the (α, β, γ, and X‐ray sources) radioluminescent nuclear battery and X‐ray imaging technology.

This content is not available in your region!

Continue researching here.

Having issues? You can contact us here