TY - JOUR
T1 - Synergetic Transparent Electrode Architecture for Efficient Non-Fullerene Flexible Organic Solar Cells with >12% Efficiency
AU - Zhang, Yue Xing
AU - Fang, Jin
AU - Li, Wei
AU - Shen, Yang
AU - Chen, Jing De
AU - Li, Yanqing
AU - Gu, Hongwei
AU - Pelivani, Sara
AU - Zhang, Maojie
AU - Li, Yongfang
AU - Tang, Jian Xin
N1 - Publisher Copyright:
Copyright © 2019 American Chemical Society.
PY - 2019/4/23
Y1 - 2019/4/23
N2 - Flexible organic solar cells (OSCs) are considered one key component in wearable, intelligent electronics due to the unique capacity for highly flexible renewable energy sources. However, it is urgently required to enhance their efficiency, as it is far inferior to that of their conventional, glass-based counterparts. To boost the performance of flexible OSCs on plastic substrates, we here present a synergetic transparent electrode structure, which combines electrically conductive silver nanowires, a sol-gel-derived ZnO planarization layer, and imprinted light-trapping nanostructures. This synergetic composite electrode exhibits good properties in terms of optical transparency, electrical conductivity, mechanical flexibility, and low-temperature processability. As a result, the single-junction non-fullerene-based flexible OSCs achieve a power conversion efficiency exceeding 12% due to the synergetic interplay between broadband light trapping and suppressed charge recombination loss. Moreover, these flexible OSCs are repeatedly bendable in both inward and outward bending directions, retaining over 60% of the initial efficiency after 1000 cycles of the bending test at a 3.0 mm radius. These results convey a clear depiction of the practicality of flexible OSCs in a variety of high-performance flexible applications.
AB - Flexible organic solar cells (OSCs) are considered one key component in wearable, intelligent electronics due to the unique capacity for highly flexible renewable energy sources. However, it is urgently required to enhance their efficiency, as it is far inferior to that of their conventional, glass-based counterparts. To boost the performance of flexible OSCs on plastic substrates, we here present a synergetic transparent electrode structure, which combines electrically conductive silver nanowires, a sol-gel-derived ZnO planarization layer, and imprinted light-trapping nanostructures. This synergetic composite electrode exhibits good properties in terms of optical transparency, electrical conductivity, mechanical flexibility, and low-temperature processability. As a result, the single-junction non-fullerene-based flexible OSCs achieve a power conversion efficiency exceeding 12% due to the synergetic interplay between broadband light trapping and suppressed charge recombination loss. Moreover, these flexible OSCs are repeatedly bendable in both inward and outward bending directions, retaining over 60% of the initial efficiency after 1000 cycles of the bending test at a 3.0 mm radius. These results convey a clear depiction of the practicality of flexible OSCs in a variety of high-performance flexible applications.
KW - flexible transparent electrode
KW - light manipulation
KW - non-fullerene solar cell
KW - organic solar cell
KW - silver nanowires
UR - https://www.scopus.com/pages/publications/85063489706
U2 - 10.1021/acsnano.9b00970
DO - 10.1021/acsnano.9b00970
M3 - 文章
C2 - 30892869
AN - SCOPUS:85063489706
SN - 1936-0851
VL - 13
SP - 4686
EP - 4694
JO - ACS Nano
JF - ACS Nano
IS - 4
ER -