TY - JOUR
T1 - High Performance As-Cast Organic Solar Cells Enabled by a Refined Double-Fibril Network Morphology and Improved Dielectric Constant of Active Layer
AU - Wei, Yanan
AU - Zhou, Xianmin
AU - Cai, Yunhao
AU - Li, Yun
AU - Wang, Siying
AU - Fu, Zhen
AU - Sun, Rui
AU - Yu, Na
AU - Li, Congqi
AU - Huang, Kexin
AU - Bi, Zhaozhao
AU - Zhang, Xin
AU - Zhou, Yinhua
AU - Hao, Xiaotao
AU - Min, Jie
AU - Tang, Zheng
AU - Ma, Wei
AU - Sun, Yanming
AU - Huang, Hui
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/7/11
Y1 - 2024/7/11
N2 - High performance organic solar cells (OSCs) are usually realized by using post-treatment and/or additive, which can induce the formation of metastable morphology, leading to unfavorable device stability. In terms of the industrial production, the development of high efficiency as-cast OSCs is crucially important, but it remains a great challenge to obtain appropriate active layer morphology and high power conversion efficiency (PCE). Here, efficient as-cast OSCs are constructed via introducing a new polymer acceptor PY-TPT with a high dielectric constant into the D18:L8-BO blend to form a double-fibril network morphology. Besides, the incorporation of PY-TPT enables an enhanced dielectric constant and lower exciton binding energy of active layer. Therefore, efficient exciton dissociation and charge transport are realized in D18:L8-BO:PY-TPT-based device, affording a record-high PCE of 18.60% and excellent photostability in absence of post-treatment. Moreover, green solvent-processed devices, thick-film (300 nm) devices, and module (16.60 cm2) are fabricated, which show PCEs of 17.45%, 17.54%, and 13.84%, respectively. This work brings new insight into the construction of efficient as-cast devices, pushing forward the practical application of OSCs.
AB - High performance organic solar cells (OSCs) are usually realized by using post-treatment and/or additive, which can induce the formation of metastable morphology, leading to unfavorable device stability. In terms of the industrial production, the development of high efficiency as-cast OSCs is crucially important, but it remains a great challenge to obtain appropriate active layer morphology and high power conversion efficiency (PCE). Here, efficient as-cast OSCs are constructed via introducing a new polymer acceptor PY-TPT with a high dielectric constant into the D18:L8-BO blend to form a double-fibril network morphology. Besides, the incorporation of PY-TPT enables an enhanced dielectric constant and lower exciton binding energy of active layer. Therefore, efficient exciton dissociation and charge transport are realized in D18:L8-BO:PY-TPT-based device, affording a record-high PCE of 18.60% and excellent photostability in absence of post-treatment. Moreover, green solvent-processed devices, thick-film (300 nm) devices, and module (16.60 cm2) are fabricated, which show PCEs of 17.45%, 17.54%, and 13.84%, respectively. This work brings new insight into the construction of efficient as-cast devices, pushing forward the practical application of OSCs.
KW - as-cast
KW - dielectric constant
KW - double-fibril
KW - interpenetrating network
KW - organic solar cells
UR - https://www.scopus.com/pages/publications/85192010977
U2 - 10.1002/adma.202403294
DO - 10.1002/adma.202403294
M3 - 文章
AN - SCOPUS:85192010977
SN - 0935-9648
VL - 36
JO - Advanced Materials
JF - Advanced Materials
IS - 28
M1 - 2403294
ER -