TY - JOUR
T1 - Control of the electrochemical and photophysical properties of
T2 - N -substituted benzo [ghi] perylene derivatives
AU - Tokuo, Kokichi
AU - Sakai, Hayato
AU - Sakanoue, Tomo
AU - Takenobu, Taishi
AU - Araki, Yasuyuki
AU - Wada, Takehiko
AU - Hasobe, Taku
N1 - Funding Information:
This work was supported by JSPS KAKENHI Grant Numbers JP16K14067, JP17H05162, JP17H05270 to T. H., JP17K14476 to H. S., JP26102012 to T. T. This work was performed under the Cooperative Research Program of ‘‘Network Joint Research Centre for Materials and Devices’’.
Publisher Copyright:
© 2017 the Partner Organisations.
PY - 2017/11
Y1 - 2017/11
N2 - In this work, we report the synthesis, and electrochemical and photophysical properties of a series of N-substituted benzo[ghi]perylene (BP) derivatives. The orientation of the lone-pair of electrons toward the aromatic core is expected to have a great effect on the electronic structures and energy levels. Namely, the introduction of electron-withdrawing nitrogen atoms and imide groups stabilized the energy levels of the highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) in 7,8-diazabenzo[ghi]perylene (DABP) and 7,8-diazabenzo[ghi]peryleneimide (DABPIm) because of the parallel orientation to the aromatic ring plane. This is in sharp contrast with the decreased trend of the HOMO in 1,2-diazonia-7,8-diazabenzo[ghi]peryleneimide (TABPIm). Namely, the nitrogen lone-pair of electrons in the 7 and 8 positions of TABPIm, which are perpendicular to the ring plane (i.e., part of π-system), induced an increased HOMO level. These results are successfully explained by DFT calculations and agree well with the spectroscopic and electrochemical results. With regard to the excited-state dynamics of these derivatives, the introduction of nitrogen atoms and/or an imide unit onto the BP core enables control of the rate constants of both the fluorescence and intersystem crossing (ISC) pathways, which significantly affects the corresponding quantum yields. The quantum yields of fluorescence (ΦFL) decreased with the introduction of nitrogen atoms, whereas an increasing trend of ΦFL was observed with substitution of an imide unit.
AB - In this work, we report the synthesis, and electrochemical and photophysical properties of a series of N-substituted benzo[ghi]perylene (BP) derivatives. The orientation of the lone-pair of electrons toward the aromatic core is expected to have a great effect on the electronic structures and energy levels. Namely, the introduction of electron-withdrawing nitrogen atoms and imide groups stabilized the energy levels of the highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) in 7,8-diazabenzo[ghi]perylene (DABP) and 7,8-diazabenzo[ghi]peryleneimide (DABPIm) because of the parallel orientation to the aromatic ring plane. This is in sharp contrast with the decreased trend of the HOMO in 1,2-diazonia-7,8-diazabenzo[ghi]peryleneimide (TABPIm). Namely, the nitrogen lone-pair of electrons in the 7 and 8 positions of TABPIm, which are perpendicular to the ring plane (i.e., part of π-system), induced an increased HOMO level. These results are successfully explained by DFT calculations and agree well with the spectroscopic and electrochemical results. With regard to the excited-state dynamics of these derivatives, the introduction of nitrogen atoms and/or an imide unit onto the BP core enables control of the rate constants of both the fluorescence and intersystem crossing (ISC) pathways, which significantly affects the corresponding quantum yields. The quantum yields of fluorescence (ΦFL) decreased with the introduction of nitrogen atoms, whereas an increasing trend of ΦFL was observed with substitution of an imide unit.
UR - http://www.scopus.com/inward/record.url?scp=85040231673&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85040231673&partnerID=8YFLogxK
U2 - 10.1039/c7qm00301c
DO - 10.1039/c7qm00301c
M3 - Article
AN - SCOPUS:85040231673
SN - 2052-1537
VL - 1
SP - 2299
EP - 2308
JO - Materials Chemistry Frontiers
JF - Materials Chemistry Frontiers
IS - 11
ER -