TY - JOUR
T1 - Towards Monodisperse Star-Shaped Ladder-Type Conjugated Systems
T2 - Design, Synthesis, Stabilized Blue Electroluminescence, and Amplified Spontaneous Emission
AU - Jiang, Yi
AU - Fang, Mei
AU - Chang, Si Ju
AU - Huang, Jin Jin
AU - Chu, Shuang Quan
AU - Hu, Shan Ming
AU - Liu, Cheng Fang
AU - Lai, Wen Yong
AU - Huang, Wei
N1 - Publisher Copyright:
© 2017 Wiley-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2017/4/24
Y1 - 2017/4/24
N2 - A novel series of monodisperse star-shaped ladder-type oligo(p-phenylene)s, named as TrL-n (n=1–3), have been explored. Their thermal and electrochemical properties, fluorescence transients, photoluminescence quantum yields, density functional theory calculations, electroluminescence (EL) and amplified spontaneous emission (ASE) properties have been systematically investigated to unravel the molecular design on optoelectronic properties. The resulting materials showed excellent structural perfection, free of chemical defects, and exhibited great thermal stability (Td: 404–418 °C and Tg: 147–184 °C) and amorphous glassy morphologies. Compared with their corresponding linear counterparts FL-m (m=1–3), TrL-n showed only little bathochromic shifts (5–12 nm) for the absorption maxima λmax in both solution and films. The star-shaped ladder-type compounds exhibited enhanced optical stability and suppressed low-energy emission. Their EL spectra exhibited excellent stability with increasing the driving voltage from 6 to 12 V. Moreover, superior low ASE thresholds were recorded for TrL-n compared with FL-m. Rather low ASE threshold (29 nJ per pulse or 1.60 μJ cm−2) was recorded for TrL-3, demonstrating their promising potential as excellent gain media. This study provides a novel design concept to develop monodisperse star-shaped ladder-type materials with excellent structural perfection, which are vital for shedding light on exploring robust organic emitters for optoelectronic applications.
AB - A novel series of monodisperse star-shaped ladder-type oligo(p-phenylene)s, named as TrL-n (n=1–3), have been explored. Their thermal and electrochemical properties, fluorescence transients, photoluminescence quantum yields, density functional theory calculations, electroluminescence (EL) and amplified spontaneous emission (ASE) properties have been systematically investigated to unravel the molecular design on optoelectronic properties. The resulting materials showed excellent structural perfection, free of chemical defects, and exhibited great thermal stability (Td: 404–418 °C and Tg: 147–184 °C) and amorphous glassy morphologies. Compared with their corresponding linear counterparts FL-m (m=1–3), TrL-n showed only little bathochromic shifts (5–12 nm) for the absorption maxima λmax in both solution and films. The star-shaped ladder-type compounds exhibited enhanced optical stability and suppressed low-energy emission. Their EL spectra exhibited excellent stability with increasing the driving voltage from 6 to 12 V. Moreover, superior low ASE thresholds were recorded for TrL-n compared with FL-m. Rather low ASE threshold (29 nJ per pulse or 1.60 μJ cm−2) was recorded for TrL-3, demonstrating their promising potential as excellent gain media. This study provides a novel design concept to develop monodisperse star-shaped ladder-type materials with excellent structural perfection, which are vital for shedding light on exploring robust organic emitters for optoelectronic applications.
KW - amplified spontaneous emission
KW - conjugation
KW - density functional calculations
KW - electroluminescence
KW - star-shaped ladder-type molecules
UR - http://www.scopus.com/inward/record.url?scp=85015275255&partnerID=8YFLogxK
U2 - 10.1002/chem.201605885
DO - 10.1002/chem.201605885
M3 - 文章
C2 - 28195668
AN - SCOPUS:85015275255
SN - 0947-6539
VL - 23
SP - 5448
EP - 5458
JO - Chemistry - A European Journal
JF - Chemistry - A European Journal
IS - 23
ER -