TY - JOUR
T1 - Insights into the Control of Optoelectronic Properties in Mixed-Stacking Charge-Transfer Complexes
AU - Wang, Zongrui
AU - Yu, Fei
AU - Xie, Jian
AU - Zhao, Jianfeng
AU - Zou, Ye
AU - Wang, Zepeng
AU - Zhang, Qichun
N1 - Publisher Copyright:
© 2019 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2020/3/18
Y1 - 2020/3/18
N2 - Although cocrystallization has provided a promising platform to develop new organic optoelectronic materials, it is still a big challenge to purposely design and achieve specific optoelectronic properties. Herein, a series of mixed-stacking cocrystals (TMFA, TMCA, and TMTQ) were designed and synthesized, and the regulatory effects of the acceptors on the co-assembly behavior, charge-transfer nature, energy-level structures, and optoelectronic characteristics were systematically investigated. The results demonstrate that it is feasible to achieve effective charge-transport tuning and photoresponse switching by carefully regulating the intermolecular charge transfer and energy orbitals. The inherent mechanisms underlying the change in these optoelectronic behaviors were analyzed in depth and elucidated to provide clear guidelines for future development of new optoelectronic materials. In addition, due to the excellent photoresponsive characteristics of TMCA, TMCA-based phototransistors were investigated with varying light wavelength and optical power, and TMCA shows the best performance among all reported cocrystals under UV illumination.
AB - Although cocrystallization has provided a promising platform to develop new organic optoelectronic materials, it is still a big challenge to purposely design and achieve specific optoelectronic properties. Herein, a series of mixed-stacking cocrystals (TMFA, TMCA, and TMTQ) were designed and synthesized, and the regulatory effects of the acceptors on the co-assembly behavior, charge-transfer nature, energy-level structures, and optoelectronic characteristics were systematically investigated. The results demonstrate that it is feasible to achieve effective charge-transport tuning and photoresponse switching by carefully regulating the intermolecular charge transfer and energy orbitals. The inherent mechanisms underlying the change in these optoelectronic behaviors were analyzed in depth and elucidated to provide clear guidelines for future development of new optoelectronic materials. In addition, due to the excellent photoresponsive characteristics of TMCA, TMCA-based phototransistors were investigated with varying light wavelength and optical power, and TMCA shows the best performance among all reported cocrystals under UV illumination.
KW - charge transfer
KW - cocrystallization
KW - donor–acceptor systems
KW - phototransistors
KW - stacking interactions
UR - http://www.scopus.com/inward/record.url?scp=85082098056&partnerID=8YFLogxK
U2 - 10.1002/chem.201904901
DO - 10.1002/chem.201904901
M3 - 文章
C2 - 31774587
AN - SCOPUS:85082098056
SN - 0947-6539
VL - 26
SP - 3578
EP - 3585
JO - Chemistry - A European Journal
JF - Chemistry - A European Journal
IS - 16
ER -