posted on 2024-10-16, 09:29authored byXingda Zhang, Yiran Liu, Lijuan Bu, Jingjuan Bai, Zewei Li, Zhimin Ma, Mingxing Chen, Yan Guan, Zhiyong Ma
Herein,
we successfully observe the site effect of electron acceptors
on ultralong organic room-temperature phosphorescence (UORTP) in the
case of 7H-benzo[c]carbazole (BCz)
derivatives: cyanophenyl on the nitrogen site can promote intersystem
crossing (ISC) efficiency and enhance phosphorescence intensity by
facilitating n–π* transitions but make
a slight change to the phosphorescence wavelength; cyanophenyl on
the naphthalene site can cause a remarkable red shift of phosphorescence
wavelength by reducing the T1 energy level of BCz derivatives
and also enhance phosphorescence intensity by promoting ISC but weaken
phosphorescence intensity by lowering the molecular symmetry. Three
BCz derivatives (1-BCzPhCN, 2-BCzPhCN, and 3-BCzPhCN) with the electron
acceptor cyanophenyl at different sites (nitrogen site and naphthalene
site) were synthesized through a combination of the nucleophilic substitution
reaction and the Suzuki coupling reaction. The phosphorescence properties
of 1-BCzPhCN, 2-BCzPhCN, and 3-BCzPhCN in toluene solution, in a copolymerized
MMA film, and in a PVA film were measured and analyzed. 1-BCzPhCN
emits intrinsic green ultralong phosphorescence at ∼500, ∼536,
and ∼580 nm, while 2-BCzPhCN and 3-BCzPhCN give out intrinsic
yellow ultralong phosphorescence with a red shift of 27 and 40 nm,
showing that cyanophenyl on the naphthalene site leads to a remarkable
red shift of the intrinsic phosphorescence wavelength, but cyanophenyl
on the nitrogen site makes a slight difference to the intrinsic phosphorescence
wavelength. Under the same condition, the phosphorescence intensity
is usually ranked as 1-BCzPhCN/3-BCzPhCN > 2-BCzPhCN, demonstrating
that cyanophenyl on the nitrogen site promotes ISC and enhances phosphorescence
intensity, but cyanophenyl on the naphthalene site reduces molecular
symmetry and accelerates nonradiative dissipation. Time-dependent
density functional theory calculations verify that cyanophenyl on
the naphthalene site shifts the phosphorescence wavelength by reducing
the T1 energy level, and cyanophenyl on the nitrogen site
facilitates n–π* transitions to strengthen
the phosphorescence intensity. Moreover, three BCz derivatives were
doped into DMAP and BBP, separately. The BCz derivatives exhibited
different phosphorescence colors and shifts due to interactions with
the host materials. We believe this work will give an insight into
the structure–property relationship of organic phosphorescence
molecules and pave a way for design of colorful UORTP materials.