TY - JOUR
T1 - How alkyl substituents in thermally activated delayed fluorescence luminogens affect the performance of the corresponding organic light-emitting diode
AU - Che, Weilong
AU - Liu, Wei
AU - Tu, Liangjing
AU - Chen, Yi
AU - Han, Mengmeng
AU - Wang, Jinfeng
AU - Xie, Yujun
AU - Ma, Dongge
AU - Li, Zhen
N1 - Publisher Copyright:
© Science China Press 2026.
PY - 2026
Y1 - 2026
N2 - Thermally activated delayed fluorescence (TADF) materials are a promising route to highly efficient, wide color gamut organic light-emitting diode (OLED) displays. Unlike strategies that modify π-conjugated configurations, alkyl chains engineering subtly tunes solid-state packing without altering the excited-state electronic structures. Employing this strategy, five TADF emitters (TDBA-A1–A5) were synthesized by extending the alkyl chains on the acridine donor from methyl to pentyl. All the emitters show identical solution emission at 461 nm in toluene and high luminescent efficiency (82%–87%) in polymethyl methacrylate films. Crystallographic and computational analyses reveal that elongation of alkyl chains promotes tighter π-π overlap and stronger intermolecular interactions. OLEDs based on TDBA-A2–A5 achieve maximum external quantum efficiencies of 20.2%, 23.8%, 24.1%, and 23.5%, respectively, representing 1.22- to 1.45-fold enhancements over the TDBA-A1-based device (16.6%). This work validates that fine-tuning alkyl chain length is an effective strategy to boost TADF-OLED performance through controlled molecular packing.
AB - Thermally activated delayed fluorescence (TADF) materials are a promising route to highly efficient, wide color gamut organic light-emitting diode (OLED) displays. Unlike strategies that modify π-conjugated configurations, alkyl chains engineering subtly tunes solid-state packing without altering the excited-state electronic structures. Employing this strategy, five TADF emitters (TDBA-A1–A5) were synthesized by extending the alkyl chains on the acridine donor from methyl to pentyl. All the emitters show identical solution emission at 461 nm in toluene and high luminescent efficiency (82%–87%) in polymethyl methacrylate films. Crystallographic and computational analyses reveal that elongation of alkyl chains promotes tighter π-π overlap and stronger intermolecular interactions. OLEDs based on TDBA-A2–A5 achieve maximum external quantum efficiencies of 20.2%, 23.8%, 24.1%, and 23.5%, respectively, representing 1.22- to 1.45-fold enhancements over the TDBA-A1-based device (16.6%). This work validates that fine-tuning alkyl chain length is an effective strategy to boost TADF-OLED performance through controlled molecular packing.
KW - alkyl chain
KW - intermolecular interaction
KW - organic light-emitting diode
KW - single crystal structure
KW - thermally activated delayed fluorescence
UR - https://www.scopus.com/pages/publications/105041246003
U2 - 10.1007/s11426-026-3357-0
DO - 10.1007/s11426-026-3357-0
M3 - 文章
AN - SCOPUS:105041246003
SN - 1674-7291
JO - Science China Chemistry
JF - Science China Chemistry
ER -