Synthesis, Photoluminescence, and Electroluminescence of Phosphorescent Dipyrido[3,2-a;2′3′-c]phenazine–Platinum(II) Complexes Bearing Hole-Transporting Acetylide Ligands
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Published:2024-08-14
Issue:16
Volume:29
Page:3849
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ISSN:1420-3049
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Container-title:Molecules
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language:en
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Short-container-title:Molecules
Author:
Matsuura Hiroki1, Okamura Naoki1ORCID, Nagaoka Masaki2ORCID, Suzuki Naoya12ORCID, Kodama Shintaro12ORCID, Maeda Takeshi12ORCID, Yagi Shigeyuki12ORCID
Affiliation:
1. Department of Applied Chemistry, Graduate School of Engineering, Osaka Prefecture University, 1-1 Gakuen-cho, Naka-ku, Sakai 599-8531, Osaka, Japan 2. Department of Applied Chemistry, Graduate School of Engineering, Osaka Metropolitan University, 1-1 Gakuen-cho, Naka-ku, Sakai 599-8531, Osaka, Japan
Abstract
In this study, novel phosphorescent dipyrido[3,2-a;2′3′-c]phenazine (dppz)–platinum(II)–phenylacetylide complexes were developed to fabricate non-doped organic light-emitting diodes (OLED) by solution-processing. To facilitate the charge carrier injection into the emitting layer (EML), 3,6-di-tert-butylcarbazole-functinalized phenylacetylides were employed. As for the dppz ligand, 9,9-dihexylfluoren-2-yl and 4-hexylthiophen-2-yl side-arms were introduced to the 2,7-positions, which led to reddish orange and red photoluminescence (PL), respectively, in solution and film states (PL wavelength: ca. 600 and ca. 625 nm, respectively). The carbazole-appended phenylacetylide ligands hardly affected the emission color, although unsubstituted phenylacetylides gave rise to aggregate- or excimer-based near-infrared PL with a low quantum yield. Two types of non-doped OLEDs were fabricated: single-layer and multilayer devices. In both devices, the organic layers were fabricated by spin-coating, and the EML consisted of a neat film of the corresponding platinum(II) complex. Therein, electroluminescence spectra corresponding to those of PL were observed. The single-layer devices exhibited low device efficiencies due to a deteriorated charge carrier balance. The multilayer devices possessed hole- and electron-transporting layers on the anode and cathode sides of the EML, respectively. Owing to an improved charge carrier balance, the multilayer devices exhibited higher device performance, affording considerably improved values of luminance and external quantum efficiency.
Reference49 articles.
1. Organic Electroluminescent Diodes;Tang;Appl. Phys. Lett.,1987 2. Electroluminescence of Doped Organic Thin Films;Tang;J. Appl. Phys.,1989 3. Recent Progress in Metal–Organic Complexes for Optoelectronic Applications;Xu;Chem. Soc. Rev.,2014 4. Electroluminescent Materials for White Organic Light Emitting Diodes;Farinola;Chem. Soc. Rev.,2011 5. Zhao, W., Hu, X., Kon, F., Tang, J., Yan, D., Wang, J., Liu, Y., Sun, Y., Sheng, R., and Chen, P. (2024). Progress in Research on White Organic Light-Emitting Diodes Based on Ultrathin Emitting Layers. Micromachines, 15.
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