Efficient Pt(ii) emitters assembled from neutral bipyridine and dianionic bipyrazolate: designs, photophysical characterization and the fabrication of non-doped OLEDs?
Journal of Materials Chemistry C Pub Date: 2015-09-16 DOI: 10.1039/C5TC02261D
Abstract
Potential dianionic chelates, 5,5′-bis(trifluoromethyl)-2H,2′H-3,3′-bipyrazole (bipzH2) and 5,5′-(1-methylethylidene)-bis(3-trifluoromethyl-1H-pyrazole) (mepzH2), were synthesized from Claisen condensation employing ethyl trifluoroacetate with 2,3-butanedione and with 3,3-dimethyl-2,4-pentanedione, followed by hydrazine cyclization. These chelates were then utilized in the preparation of four emissive Pt(II) metal complexes [Pt(tbbpy)(bipz)] (1), [Pt(msbpy)(bipz)] (2), [Pt(tbbpy)(mepz)] (3) and [Pt(msbpy)(mepz)] (4), where tbbpy and msbpy represent 4,4′-di-t-butyl-2,2′-bipyridine and 4,4′-dimesityl-2,2′-bipyridine, respectively. Single crystal X-ray structural analyses of 2 and 3 were executed to unveil the basic coordination geometry around the Pt(II) center as well as the π–π stacking interaction in the solid state. These complexes are essentially non-emissive in solution (Q. Y. = 0.2–0.4%), but are highly luminescent in the solid state with QY of 52% and 83% and τobs of 368 ns and 8.37 μs for 1 and 3, respectively. Their photophysical properties were measured and discussed on the basis of computational approaches. For applications, non-doped organic light emitting diodes (OLEDs) were fabricated using 1 and 3 as emitters, exhibiting red-orange emission with a maximum luminance of 43?000 cd m?2, an EQE of 19.0%, a CE of 21.0 cd A?1 and a PE of 15.5 lm W?1, and yellow emission with a maximum luminance of 5100 cd m?2, an EQE of 7.1%, a CE of 21.0 cd A?1 and a PE of 11.3 lm W?1, respectively. The particularly higher OLED efficiencies of 1versus3 highlight the design principle of Pt(II) based phosphors, particularly for the fabrication of a non-doped OLED architecture.
Recommended Literature
- [1] Distinct correlation between (CN2)x units and pores: a low-cost method for predesigned wide range control of micropore size of porous carbon? Xiaotong Feng,Lei Bian,Jie Ma,Lei Zhou,Xiayan Wang,Guangsheng Guo,Qiaosheng PuChem. Commun., 2019,55, 3963-3966 10.1039/C9CC01213C
- [2] Exceptionally high temperature spin crossover in amide-functionalised 2,6-bis(pyrazol-1-yl)pyridine iron(ii) complex revealed by variable temperature Raman spectroscopy and single crystal X-ray diffraction? Max Attwood,Hiroki Akutsu,Lee Martin,Toby J. Blundell,Pierre Le Maguere,Scott S. TurnerDalton Trans., 2021,50, 11843-11851 10.1039/D1DT01743H
- [3] Fe3O4 nanoclusters highly dispersed on a porous graphene support as an additive for improving the hydrogen storage properties of LiBH4? Guang Xu,Wei Zhang,Ying Zhang,Xiaoxia Zhao,Ping Wen,Di MaRSC Adv., 2018,8, 19353-19361 10.1039/C8RA02762E
- [4] Evolution in surface coverage of CH3NH3PbI3?XClXvia heat assisted solvent vapour treatment and their effects on photovoltaic performance of devices Dhirendra K. Chaudhary,Pramendra Kumar,Lokendra KumarRSC Adv., 2016,6, 94731-94738 10.1039/C6RA18729C
- [5] Emerging investigator series: heterogeneous reactions of sulfur dioxide on mineral dust nanoparticles: from single component to mixed components? Tao Wang,Yangyang Liu,Yue Deng,Hongbo Fu,Jianmin ChenEnviron. Sci.: Nano, 2018,5, 1821-1833 10.1039/C8EN00376A
- [6] Excimer emission and magnetoluminescence of radical-based zinc(ii) complexes doped in host crystals? Shojiro Kimura,Tetsuro KusamotoChem. Commun., 2020,56, 11195-11198 10.1039/D0CC04830E
- [7] Evolution of hierarchical porous structures in supramolecular guest–host hydrogels? Christopher B. Rodell,Christopher B. Highley,Minna H. Chen,Neville N. Dusaj,Chao Wang,Lin Han,Jason A. BurdickSoft Matter, 2016,12, 7839-7847 10.1039/C6SM01395C
- [8] Excited state dynamics of symmetric and asymmetric Cr3(dpa)4Cl2 measured using femtosecond transient absorption spectroscopy? Chao-Han Cheng,Wen-Zhen Wang,Shie-Ming Peng,I-Chia ChenPhys. Chem. Chem. Phys., 2017,19, 25471-25477 10.1039/C7CP03968A
- [9] Evolution and characterization of a benzylguanine-binding RNA aptamer? J. Xu,T. J. Carrocci,A. A. HoskinsChem. Commun., 2016,52, 549-552 10.1039/C5CC07605F
- [10] Fe/S-Catalyzed synthesis of 2-benzoylbenzoxazoles and 2-quinolylbenzoxazoles via redox condensation of o-nitrophenols with acetophenones and methylquinolines? Thi Thu Tram Nguyen,Thanh Binh NguyenOrg. Biomol. Chem., 2021,19, 6015-6020 10.1039/D1OB00976A
Journal Name:Journal of Materials Chemistry C
research_products
-
CAS no.: 89640-58-4