TY - JOUR
T1 - Computational studies on nitrogen (N)-substituted 2,6-diphenylanthracene
T2 - A novel precursor of organic field effect transistor materials
AU - Ran, Xueqin
AU - Akbar Ali, Mohamad
AU - Peng, Xin Zhe
AU - Yu, Guo Jing
AU - Ge, Jiao Yang
AU - Yang, Lei
AU - Chen, Yonghua
AU - Xie, Ling Hai
N1 - Publisher Copyright:
© 2022 The Royal Society of Chemistry and the Centre National de la Recherche Scientifique.
PY - 2022/1/21
Y1 - 2022/1/21
N2 - In recent years, experimental and theoretical studies show that nitrogen (N)-substituted π-conjugated semiconductor materials have improved their optical, charge-transfer and electronic performance and work efficiently in organic field-effect transistors (OFETs). To further investigate their applications, a new series of N-substituted 2,6-diphenylanthracene (2,6-DPA) derivatives have been designed. In this study, five derivatives of 2,6-diphenylanthracene were designed with one, two or three nitrogen atoms incorporated in 2,6-phenyl rings. The ground- and excited-state geometries, frontier molecular orbitals, and optical properties of these OFET precursors were calculated using density functional theory (DFT) and time-dependent DFT methods. Our results show that doping nitrogen atom into the 2,6-diphenylanthracene (2,6-DPA) linkage leads to the enhancement of the better planar geometry (the twist angle between phenyl ring and anthracene decreased by 1.6°-39.0°), lower energy gaps, larger electronic affinity (EA), and smaller electron reorganization energy, which make these precursors promising materials in OFETs. All N-substituted 2,6-DPA were observed as better hole-transfer materials. In addition, TD-DFT calculations show a characteristic peak in the range of 478-521 nm, indicating that tunable green emission could be achieved by appropriate chemical modification. The predicted structures and electronic properties can be a good starting point for the synthesis of N-substituted OFETs.
AB - In recent years, experimental and theoretical studies show that nitrogen (N)-substituted π-conjugated semiconductor materials have improved their optical, charge-transfer and electronic performance and work efficiently in organic field-effect transistors (OFETs). To further investigate their applications, a new series of N-substituted 2,6-diphenylanthracene (2,6-DPA) derivatives have been designed. In this study, five derivatives of 2,6-diphenylanthracene were designed with one, two or three nitrogen atoms incorporated in 2,6-phenyl rings. The ground- and excited-state geometries, frontier molecular orbitals, and optical properties of these OFET precursors were calculated using density functional theory (DFT) and time-dependent DFT methods. Our results show that doping nitrogen atom into the 2,6-diphenylanthracene (2,6-DPA) linkage leads to the enhancement of the better planar geometry (the twist angle between phenyl ring and anthracene decreased by 1.6°-39.0°), lower energy gaps, larger electronic affinity (EA), and smaller electron reorganization energy, which make these precursors promising materials in OFETs. All N-substituted 2,6-DPA were observed as better hole-transfer materials. In addition, TD-DFT calculations show a characteristic peak in the range of 478-521 nm, indicating that tunable green emission could be achieved by appropriate chemical modification. The predicted structures and electronic properties can be a good starting point for the synthesis of N-substituted OFETs.
UR - http://www.scopus.com/inward/record.url?scp=85123939716&partnerID=8YFLogxK
U2 - 10.1039/d1nj04197e
DO - 10.1039/d1nj04197e
M3 - 文章
AN - SCOPUS:85123939716
SN - 1144-0546
VL - 46
SP - 1135
EP - 1143
JO - New Journal of Chemistry
JF - New Journal of Chemistry
IS - 3
ER -