| Literature DB >> 36128251 |
Chun-Yin Wong1, Man-Chung Tang1, Lok-Kwan Li1, Ming-Yi Leung1,2, Wai-Kit Tang1, Shiu-Lun Lai1, Wai-Lung Cheung1, Maggie Ng1, Mei-Yee Chan1,2, Vivian Wing-Wah Yam1,2.
Abstract
A series of carbazolyl ligands has been designed and synthesized through the integration of various electron-donating and electron-accepting motifs, including electron-donating 4-(diphenylamino)aryl and electron-accepting cyano and diphenylphosphine oxide moieties, for the development of a new class of gold(iii) complexes, where the energies of their triplet intraligand and ligand-to-ligand charge transfer excited states can be manipulated for the activation of thermally activated delayed fluorescence (TADF). Upon excitation, these complexes show high photoluminescence quantum yields of up to 80% in solid-state thin films, with short excited state lifetimes down to 1 μs. Vacuum-deposited and solution-processed organic light-emitting devices based on these complexes demonstrate promising electroluminescence (EL) performance with maximum external quantum efficiencies of 15.0% and 11.7%, respectively, and notably small efficiency roll-off values of less than 1% at the practical luminance brightness level of 1000 cd m-2. These distinct EL performances are believed to be due to the occurrence of multichannel radiative decay pathways via both phosphorescence and TADF that significantly shorten the emission lifetimes and hence reduce the occurrence of the detrimental triplet-triplet annihilation in the gold(iii) complexes. This journal is © The Royal Society of Chemistry.Entities:
Year: 2022 PMID: 36128251 PMCID: PMC9430534 DOI: 10.1039/d2sc03037c
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.969
Chart 1Molecular structures of carbazolylgold(iii) complexes.
Fig. 1(a) Normalized PL spectra of 1–6 in degassed toluene at 298 K. (b) Normalized PL spectra of thin films of 20 wt% 1–6 doped in MCP at 298 K.
Luminescence data of the gold(iii) complexes
| Complex | Medium ( | Emission |
|
|
|
|
|---|---|---|---|---|---|---|
| 1 | Toluene (298) | 540 (2.0) | 0.15 | 7.50 × 104 | 4.25 × 105 | |
| Solid (298) | 497, 544 | |||||
| Solid (77) | 509, 543, 591 | |||||
| Glass (77) | 484, 518, 556, 608 (233.5) | |||||
| Thin film (298) | ||||||
| 5 wt% in MCP | 494, 524 (81.6) | 0.41 | 5.02 × 103 | 7.23 × 103 | ||
| 10 wt% in MCP | 495, 525 (78.9) | 0.40 | 5.07 × 103 | 7.60 × 103 | ||
| 15 wt% in MCP | 497, 526 (67.0) | 0.41 | 6.12 × 103 | 8.81 × 103 | ||
| 20 wt% in MCP | 498, 526 (62.9) | 0.34 | 5.41 × 103 | 1.05 × 104 | ||
| 2 | Toluene (298) | 570 (0.6) | 0.14 | 2.33 × 105 | 1.43 × 106 | |
| Solid (298) | 512, 542 (5.9, 49) | |||||
| Solid (77) | 522, 559, 605 (24.6, 131.2) | |||||
| Glass (77) | 484, 520, 560, 607 (199.6) | |||||
| Thin film (298) | ||||||
| 5 wt% in MCP | 496, 523 (70.4) | 0.57 | 8.10 × 103 | 6.11 × 103 | ||
| 10 wt% in MCP | 497, 523 (64.6) | 0.63 | 9.75 × 103 | 5.73 × 103 | ||
| 15 wt% in MCP | 499, 523 (59.4) | 0.60 | 1.01 × 104 | 6.73 × 103 | ||
| 20 wt% in MCP | 501, 524 (54.7) | 0.59 | 1.08 × 104 | 7.50 × 103 | ||
| 3 | Toluene (298) | 659 (0.04) | 0.003 | 6.98 × 104 | 2.32 × 107 | |
| Solid (298) | 608 | |||||
| Solid (77) | 588 | |||||
| Glass (77) | 563 (2.2) | |||||
| Thin film (298) | ||||||
| 5 wt% in MCP | 557 (1.7) | 0.44 | 2.59 × 105 | 3.29 × 105 | ||
| 10 wt% in MCP | 568 (1.2) | 0.38 | 3.17 × 105 | 5.17 × 105 | ||
| 15 wt% in MCP | 568 (1.1) | 0.36 | 3.28 × 105 | 5.82 × 105 | ||
| 20 wt% in MCP | 580 (0.8) | 0.27 | 3.38 × 105 | 9.13 × 105 | ||
| 4 | Toluene (298) | 637 (0.1) | 0.01 | 1.00 × 105 | 9.90 × 106 | |
| Solid (298) | 595 | |||||
| Solid (77) | 570 | |||||
| Glass (77) | 481, 548 (1.8, 3.6) | |||||
| Thin film (298) | ||||||
| 5 wt% in MCP | 546 (2.9) | 0.60 | 2.07 × 105 | 1.38 × 105 | ||
| 10 wt% in MCP | 554 (2.0) | 0.60 | 3.00 × 105 | 2.00 × 105 | ||
| 15 wt% in MCP | 560 (1.6) | 0.56 | 3.50 × 105 | 2.75 × 105 | ||
| 20 wt% in MCP | 564 (1.3) | 0.52 | 4.00 × 105 | 3.69 × 105 | ||
| 5 | Toluene (298) | 600 (0.5) | 0.05 | 1.00 × 105 | 1.90 × 106 | |
| Solid (298) | 542 | |||||
| Solid (77) | 527, 566 | |||||
| Glass (77) | 481, 516, 553 (4.0, 8.9) | |||||
| Thin film (298) | ||||||
| 5 wt% in MCP | 530 (12.7) | 0.63 | 4.96 × 104 | 2.91 × 104 | ||
| 10 wt% in MCP | 537 (10.2) | 0.65 | 6.37 × 104 | 3.43 × 104 | ||
| 15 wt% in MCP | 539 (7.2) | 0.68 | 9.44 × 104 | 4.44 × 104 | ||
| 20 wt% in MCP | 548 (4.8) | 0.66 | 1.38 × 105 | 7.08 × 104 | ||
| 6 | Toluene (298) | 599 (0.5) | 0.07 | 1.20 × 105 | 1.88 × 106 | |
| Solid (298) | 517, 556 | |||||
| Solid (77) | 527, 560 | |||||
| Glass (77) | 483, 520, 558 (4.3, 10.6) | |||||
| Thin film (298) | ||||||
| 5 wt% in MCP | 527 (7.6) | 0.76 | 1.00 × 105 | 3.16 × 104 | ||
| 10 wt% in MCP | 535 (5.9) | 0.79 | 1.34 × 105 | 3.56 × 104 | ||
| 15 wt% in MCP | 538 (4.0) | 0.64 | 1.60 × 105 | 9.00 × 104 | ||
| 20 wt% in MCP | 543 (3.2) | 0.68 | 2.13 × 105 | 1.00 × 105 |
The relative luminescence quantum yield in solution was measured at room temperature using quinine sulphate in 1 N H2SO4 as the reference (excitation wavelength = 365 nm, Φsoln = 0.546).
Φ film of gold(iii) complexes doped into 5–20 wt% MCP excited at a wavelength of 320 nm.
Radiative decay rate constant determined from the equation kr = Φem/τo; non-radiative decay rate constant determined from the equation knr = (1 — Φem)/τo.
Measured in EtOH–MeOH–CH2Cl2 (40 : 10 : 1, v/v).
Prepared by spin-coating.
Bi-exponential decay.
Fig. 2Transient absorption spectra of 1 in degassed toluene at 298 K at decay times of 0–4 μs and the decay trace monitored at 535 nm in the inset.
Fig. 3Time-resolved emission spectra of (a) 2 and (b) 6 doped at 20 wt% in MCP.
Fig. 4(a) Emission spectra of 20 wt% 6 doped in the MCP thin film upon increasing the temperature from 160 to 300 K. (b) Normalized PL spectra of the solid sample of 2 at 77 and 298 K.
Fig. 5Relative energies of the excited states involved in the emission (i.e.3IL, 3LLCT and 1LLCT) of 1, 2 and 6.
Fig. 6Angular-dependent PL intensities of the p-polarized light of 6 and [Au{4-BuC^C(4-BuC6H4)^N}(Cbz)] (11% v/v) in m-CBP thin films with 20 nm thickness.
Fig. 7(a) Normalized EL spectra and (b) EQEs of the solution-processed devices based on 1–6.