4.8 Article

High-Power-Efficiency White Thermally Activated Delayed Fluorescence Diodes Based on Selectively Optimized Intermolecular Interactions

期刊

ADVANCED FUNCTIONAL MATERIALS
卷 30, 期 45, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202005165

关键词

energy transfer; phosphine oxide host; power efficiency; thermally activated delayed fluorescence; white emission

资金

  1. Changjiang Scholar Program of Chinese Ministry of Education [Q2016208]
  2. National Natural Science Foundation of China [21672056, U1801258, 21602048, 51873056]
  3. Young Innovative Team Supporting Projects of Heilongjiang Province, National Postdoctoral Program for Innovative Talents [BX20180092]
  4. Postdoctoral Science Foundation of China [2018M6403132019]
  5. Postdoctoral Science Foundation of Heilongjiang Province [LBN-Z1823]
  6. Education Department of Heilongjiang Province [RCCXYJ201804]

向作者/读者索取更多资源

Besides low cost and environmental sustainability, high power efficiency is an essential condition for daily lighting applications, and one of main challenges for thermally activated delayed fluorescence (TADF) white organic light-emitting diodes (WOLED). Here, it is demonstrated that power efficiency can be improved through accurately modulating intermolecular interactions. An asymmetrical phosphine oxide (PO) molecule named 246DBFTPO is constructed, in which the steric hindrance and inductive effect of PO groups restrain pi-pi stacking but form continuous intermolecular hydrogen bond networks. The steric anisotropy of PO groups leads to the heterogeneous molecular distribution in 246DBFTPO matrix, accompanied by the homogeneous intermolecular interactions. Compared to symmetrical and semi-symmetrical PO congeners, 246DBFTPO provides balanced carrier transport, efficient host-dopant and dopant-dopant energy transfer, and effective quenching suppression. Based on its electron mobility of 10(-5)cm(2)V(-1)s(-1)and a 90% photoluminescence quantum yield of its dually doped white TADF film, 246DBFTPO is simultaneously competent as host and electron transporting material in a trilayer single-EML full-TADF WOLED, leading to a record power efficiency of 76.7 lm W-1.

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