TY - JOUR
T1 - End-capped group manipulation of fluorene-based small molecule acceptors for efficient organic solar cells
AU - Wang, Yan Ling
AU - Li, Quan Song
AU - Li, Ze Sheng
N1 - Publisher Copyright:
© 2018 Elsevier B.V.
PY - 2019/1
Y1 - 2019/1
N2 - Acceptor-π-donor-π-acceptor (A-π-D-π-A) type small molecule acceptors have made significant progress in organic solar cells (OSCs). To achieve high performance acceptors, three novel acceptors (s4-s6) are designed and investigated based on small molecule acceptors (s1-s3) via introduction of different end-capped groups. The quantum chemistry and Marcus theory approaches are used to calculate the electronic structures and crucial parameters dramatically related to the short-circuit current density (JSC), involving the absorption spectrum, electron-hole correlation, driving force, and electron mobility. Compared with s1-s3, s4-s6 not only yield greater red-shift and stronger and broader absorption spectra, but also exhibit much higher electron mobility, easier exciton dissociation abilities, and much better electron transfer efficiencies in active layer. Our results will offer theoretical guidelines for further design and synthesis of acceptors to enhance the performance of OSCs.
AB - Acceptor-π-donor-π-acceptor (A-π-D-π-A) type small molecule acceptors have made significant progress in organic solar cells (OSCs). To achieve high performance acceptors, three novel acceptors (s4-s6) are designed and investigated based on small molecule acceptors (s1-s3) via introduction of different end-capped groups. The quantum chemistry and Marcus theory approaches are used to calculate the electronic structures and crucial parameters dramatically related to the short-circuit current density (JSC), involving the absorption spectrum, electron-hole correlation, driving force, and electron mobility. Compared with s1-s3, s4-s6 not only yield greater red-shift and stronger and broader absorption spectra, but also exhibit much higher electron mobility, easier exciton dissociation abilities, and much better electron transfer efficiencies in active layer. Our results will offer theoretical guidelines for further design and synthesis of acceptors to enhance the performance of OSCs.
KW - A-π-D-π-A small molecule acceptors
KW - Density functional theory (DFT)
KW - Electron mobility
KW - Exciton dissociation
KW - Optoelectronic properties
UR - http://www.scopus.com/inward/record.url?scp=85054290786&partnerID=8YFLogxK
U2 - 10.1016/j.commatsci.2018.10.002
DO - 10.1016/j.commatsci.2018.10.002
M3 - Article
AN - SCOPUS:85054290786
SN - 0927-0256
VL - 156
SP - 252
EP - 259
JO - Computational Materials Science
JF - Computational Materials Science
ER -