D-A Copolymers Based on a Pentacyclic Acceptor Unit and a 3, 3'-Difluoro-2, 2'-bithiophene for Solar Cells
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D-A Copolymers Based on a Pentacyclic Acceptor Unit and a 3, 3'-Difluoro-2, 2'-bithiophene for Solar Cells
Chinese Journal of Polymer ScienceVol. 35, Issue 12, Pages: 1457-1462(2017)
Affiliations:
Center for Excellence in Nanoscience(Chinese Academy of Sciences), Key Laboratory of Nanosystem and Hierarchical Fabrication(Chinese Academy of Sciences), National Center for Nanoscience and Technology, Beijing 100190, China
Jia-min Cao, Liu Qian, Dan He, et al. D-A Copolymers Based on a Pentacyclic Acceptor Unit and a 3, 3'-Difluoro-2, 2'-bithiophene for Solar Cells. [J]. Chinese Journal of Polymer Science, 2017,35(12):1457-1462.
DOI:
Jia-min Cao, Liu Qian, Dan He, et al. D-A Copolymers Based on a Pentacyclic Acceptor Unit and a 3, 3'-Difluoro-2, 2'-bithiophene for Solar Cells. [J]. Chinese Journal of Polymer Science, 2017,35(12):1457-1462. DOI: 10.1007/s10118-017-1996-4.
D-A Copolymers Based on a Pentacyclic Acceptor Unit and a 3, 3'-Difluoro-2, 2'-bithiophene for Solar Cells
was developed by copolymerizing a pentacyclic acceptor unit
thieno[2'
3':5
6]pyrido[3
4-
g
]thieno[3
2-
c
]isoquinoline-5
11(4
H
10
H
)-dione (TPTI)
with 3
3'-difluoro-2
2'-bithiophene (2FBT). P2FBTTPTI possessed a low highest occupied molecular orbital (HOMO) energy level (-5.50 eV) and a good hole mobility (4.14×10
-4
cm
2
·V
-1
·s
-1
). P2FBTTPTI:PC
71
BM solar cells gave a decent power conversion efficiency (PCE) of 7.64% and a high open-circuit voltage (
V
oc
) of 0.95 V.
关键词
Keywords
D-A copolymersFluorinationOpen-circuit voltagePolymer solar cells
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