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Optimizing spectral and morphological match of nonfullerene acceptors toward efficient indoor organic photovoltaics with enhanced light source adaptability.

Authors :
Luo, Siwei
Bai, Fujin
Zhang, Jianquan
Zhao, Heng
Angunawela, Indunil
Zou, Xinhui
Li, Xiaojun
Luo, Zhenghui
Feng, Kui
Yu, Han
Wong, Kam Sing
Ade, Harald
Ma, Wei
Yan, He
Source :
Nano Energy; Jul2022, Vol. 98, pN.PAG-N.PAG, 1p
Publication Year :
2022

Abstract

High-performance indoor organic photovoltaics (IOPV) require large-bandgap material systems to absorb visible light efficiently and reduce energy loss. However, state-of-the-art non-fullerene acceptors (NFAs) have absorptions in the near-infrared region and are thus not suitable for IOPV applications. Herein, we report a series of large-bandgap (>1.70 eV) NFAs named FCC-Cl-C8, FCC-Cl-4Ph and FCC-Cl-6Ph by modifying the alkyl side chains with alkylphenyl chains partially or completely. Results show that the bulky alkylphenyl side chains can finely tune the absorption properties of the NFAs and also affect their morphological properties. Interestingly, the best-performing NFA is the one (named FCC-Cl-4Ph) with partial alkyl and alkylphenyl substitutions, which blue-shift the absorption of the NFAs while minimizing the negative morphological effect of the bulky alkylphenyl chains. As a result, FCC-Cl-4Ph can achieve excellent indoor efficiencies over 29% under a 3000 K LED lamp at 1000 lux and show better solution processability over FCC-Cl-C8. More importantly, FCC-Cl-4Ph can maintain high indoor performance (29.7–26.8% at 1000 lux) under a wide range of indoor lighting spectra (2600, 3000, 4000, and 6500 K LED lamps), which should be due to the blue-shifted spectra of FCC-Cl-4Ph and better matching with various indoor conditions. This work reveals an interesting structure-property relationship and offers useful strategies for the further design of NFAs toward efficient IOPV devices. [Display omitted] • Side chain modifications of non-fullerene acceptors yield indoor efficiency approaching 30%. • Reduced spectral mismatch enables indoor devices with decent performance from 2600 K to 6000 K. • Stable FCC-Cl-4Ph-based cells are suitable for large-area devices driving low-power sensors. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
22112855
Volume :
98
Database :
Supplemental Index
Journal :
Nano Energy
Publication Type :
Academic Journal
Accession number :
157419359
Full Text :
https://doi.org/10.1016/j.nanoen.2022.107281