Utilizing a Spiro Core with Acridine- and Phenothiazine-Based New Hole Transporting Materials for Highly Efficient Green Phosphorescent Organic Light-Emitting Diodes

Two new hole transporting materials, 2,7-bis(9,9-diphenylacridin-10(9 )-yl)-9,9' spirobi[fluorene] (SP1) and 2,7-di(10 -phenothiazin-10-yl)-9,9'-spirobi[fluorene] (SP2), were designed and synthesized by using the Buchwald-Hartwig coupling reaction with a high yield percentage of over 84%....

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Veröffentlicht in:Molecules (Basel, Switzerland) Switzerland), 2018-03, Vol.23 (4), p.713
Hauptverfasser: Braveenth, Ramanaskanda, Bae, Il-Ji, Han, Ji-Hun, Qiong, Wu, Seon, Guk, Raagulan, Kanthasamy, Yang, Kihun, Park, Young Hee, Kim, Miyoung, Chai, Kyu Yun
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Sprache:eng
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Zusammenfassung:Two new hole transporting materials, 2,7-bis(9,9-diphenylacridin-10(9 )-yl)-9,9' spirobi[fluorene] (SP1) and 2,7-di(10 -phenothiazin-10-yl)-9,9'-spirobi[fluorene] (SP2), were designed and synthesized by using the Buchwald-Hartwig coupling reaction with a high yield percentage of over 84%. Both of the materials exhibited high glass transition temperatures of over 150 °C. In order to understand the device performances, we have fabricated green phosphorescent organic light-emitting diodes (PhOLEDs) with SP1 and SP2 as hole transporting materials. Both of the materials revealed improved device properties, in particular, the SP2-based device showed excellent power (34.47 lm/W) and current (38.41 cd/A) efficiencies when compare with the 4,4'-bis( -phenyl-1-naphthylamino)biphenyl (NPB)-based reference device (30.33 lm/W and 32.83 cd/A). The external quantum efficiency (EQE) of SP2 was 13.43%, which was higher than SP1 (13.27%) and the reference material (11.45%) with a similar device structure. The SP2 hole transporting material provides an effective charge transporting path from anode to emission layer, which is explained by the device efficiencies.
ISSN:1420-3049
1420-3049
DOI:10.3390/molecules23040713