TY - JOUR
T1 - High-efficiency oligomeric solar cells - revealing the interplay of molecular dimensions, terminal group functions, and aggregation dynamics
AU - Xia, Hao
AU - Ma, Ruijie
AU - Hao, Rulin
AU - Qian, Can
AU - Fong, Patrick W.K.
AU - Zhang, Ying
AU - Liu, Kuan
AU - Zhang, Miao
AU - Dela Peña, Top Archie
AU - Chandran, Hrisheekesh Thachoth
AU - Li, Mingjie
AU - Wu, Jiaying
AU - Zhu, Weiguo
AU - Li, Gang
N1 - Publisher Copyright:
© 2024
PY - 2025/2
Y1 - 2025/2
N2 - A profound comprehension of the intricate relationships among molecular structure, morphology defining treatment processes, and performance is pivotal for advancing the development of highly efficient organic solar cells (OSCs). In this study, we synthesized a series of donor molecules with varying conjugate skeleton lengths and end-groups, named 3BDTBDD, 5BDTBDD, DRCN3BDT, and DRCN5BDT. Compared to control donors, the oligomer DRCN5BDT exhibits a red-shifted and broader absorption spectrum, enhanced charge-carrier mobility, and optimal crystallinity, attributed to its elongated conjugate skeleton and electron-withdrawing end-group. Consequently, OSCs based on DRCN5BDT:Y6 achieve a remarkable power conversion efficiency (PCE) of 14.04 % in binary oligomer OSCs. Furthermore, DRCN5BDT demonstrated impressive compatibility in ternary OSCs, yielding PCEs of 18.93 % (PM6:DRCN5BDT:BTP-eC9) and 17.45 % (PM6:DRCN5BDT:PY-IT). More importantly, this series of materials provided a clear research framework that enabled us to elucidate the intricate relationship between the widely use yet mystery solvent vapor annealing (SVA) treatment conditions and donor-acceptor aggregation states, employing in situ absorption spectroscopy. Our study provides valuable insights into the intricate connection between molecular structure and properties, offering crucial guidance for the design of efficient donor materials and device optimization of OSCs.
AB - A profound comprehension of the intricate relationships among molecular structure, morphology defining treatment processes, and performance is pivotal for advancing the development of highly efficient organic solar cells (OSCs). In this study, we synthesized a series of donor molecules with varying conjugate skeleton lengths and end-groups, named 3BDTBDD, 5BDTBDD, DRCN3BDT, and DRCN5BDT. Compared to control donors, the oligomer DRCN5BDT exhibits a red-shifted and broader absorption spectrum, enhanced charge-carrier mobility, and optimal crystallinity, attributed to its elongated conjugate skeleton and electron-withdrawing end-group. Consequently, OSCs based on DRCN5BDT:Y6 achieve a remarkable power conversion efficiency (PCE) of 14.04 % in binary oligomer OSCs. Furthermore, DRCN5BDT demonstrated impressive compatibility in ternary OSCs, yielding PCEs of 18.93 % (PM6:DRCN5BDT:BTP-eC9) and 17.45 % (PM6:DRCN5BDT:PY-IT). More importantly, this series of materials provided a clear research framework that enabled us to elucidate the intricate relationship between the widely use yet mystery solvent vapor annealing (SVA) treatment conditions and donor-acceptor aggregation states, employing in situ absorption spectroscopy. Our study provides valuable insights into the intricate connection between molecular structure and properties, offering crucial guidance for the design of efficient donor materials and device optimization of OSCs.
KW - Compatibility
KW - In situ UV–vis
KW - Oligomer donors
KW - Organic solar cells
KW - Solvent vapor annealing
UR - http://www.scopus.com/inward/record.url?scp=85211334691&partnerID=8YFLogxK
U2 - 10.1016/j.nanoen.2024.110549
DO - 10.1016/j.nanoen.2024.110549
M3 - Journal article
AN - SCOPUS:85211334691
SN - 2211-2855
VL - 134
JO - Nano Energy
JF - Nano Energy
M1 - 110549
ER -