| Literature DB >> 29364146 |
Yuki Hasegawa1, Ayumi Ishii2,3, Yudai Inazuka4, Naho Yajima5, Shogo Kawaguchi6, Kunihisa Sugimoto7, Miki Hasegawa8.
Abstract
The luminescence of a Eu complex (EuL) is enhanced by stabilization of the coordination structure in highly viscous ionic liquids. The EuL was found to maintain a stable single helical structure both in organic solvents and in the ionic liquids [BMIM][PF₆] and [EMIM][PF₆]. A colorless solution of EuL dissolved in [BMIM][PF₆] exhibits bright red luminescence with a quantum yield of 32.3%, a value that is much higher than that in acetonitrile (12%). Estimated rate constants for the energy relaxation pathway indicate that the energy transfer efficiency is enhanced in [BMIM][PF₆] as a result of the suppression of molecular fluctuations in the ligands. Additionally, a highly luminescent helical structure is preserved in [EMIM][PF₆] up to 120 °C.Entities:
Keywords: Eu complex; energy transfer; ionic liquid; luminescence; molecular fluctuation
Mesh:
Substances:
Year: 2018 PMID: 29364146 PMCID: PMC6017298 DOI: 10.3390/molecules23020055
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Molecular structures of the Eu complex (EuL) and the ionic liquids [BMIM][PF6] and [EMIM][PF6].
Figure 2Electronic absorption spectra of the helical Eu complex with L (a) in [BMIM][PF6] compared with (b) in acetonitrile [4].
Figure 3Emission spectra of the helical Eu complex with L (a) in [BMIM][PF6] compared with (b) in acetonitrile [4] (λex = 328 nm).
Luminescence quantum yields (ϕff) and luminescence lifetimes (τobs) of the helical Eu complex with L in [BMIM][PF6] and in acetonitrile [4] (a: λex = 328 nm, λmon = 550–782 nm, b: λex = 340 nm, λmon = 616 nm).
| in [BMIM][PF6] | 32.3 | 1.48 |
| in acetonitrile | 12.0 | 1.55 |
Figure 4Phosphorescence spectra localized on the ligand moiety of helical Gd complex with L in (a) [BMIM][PF6] and (b) ethanol at 77 K (λex = 328 nm).
ϕT, τT, and kNR for the triplet state (kNR(T)) of the ligand L of helical Gd complex as GdL in [BMIM][PF6] and in ethanol at 77 K (a: λex = 328 nm, λmon = 400–600 nm, b: λex = 340 nm, λmon = 488 nm).
| in [BMIM][PF6] | <0.1 | ca. 200 | 5.0 × 106 |
| in ethanol | <0.1 | ca. 5 | 2.0 × 108 |
ϕff, τobs, n, kR, kNR, and ηEnT values for EuL in mixed solvents of [BMIM][PF6] and acetonitrile along with the kinetic viscosity values (ν) [27] (a: λex = 328 nm, λmon = 550–780 nm, b: λex = 340 nm, λmon = 616 nm).
| Molar Ratios | |||||||
|---|---|---|---|---|---|---|---|
| 1.00 | 0.00 | 198.18 | 32.3 | 1.46 | 287.2 | 388.5 | 76.0 |
| 0.64 | 0.36 | 40.69 | 30.0 | 1.42 | 300.7 | 403.6 | 70.3 |
| 0.59 | 0.41 | 23.84 | 17.6 | 1.46 | 254.3 | 430.6 | 47.4 |
| 0.43 | 0.75 | 9.15 | 15.8 | 1.43 | 254.6 | 444.7 | 43.4 |
| 0.35 | 0.65 | 5.31 | 12.1 | 1.49 | 255.2 | 416.0 | 31.8 |
| 0.20 | 0.80 | 1.87 | 11.6 | 1.45 | 257.6 | 432.0 | 31.1 |
| 0.00 | 1.00 | 0.48 | 12.0 | 1.55 | 266.2 | 379.0 | 29.1 |
Figure 5ηEnT (filled circles) and ν (open circles) as functions of the [BMIM][PF6] mole fraction.
Figure 6Excitation (left) and emission (right) spectra of EuL in [EMIM][PF6] (λmon = 616 nm, λex = 328 nm).
ϕff, τobs, and ηEnT values of EuL in [EMIM][PF6] (a: λex = 328 nm, λmon = 550–782 nm, b: λex = 340 nm, λmon = 616 nm).
| 52.1 | 1.37 | >99 |
Figure 7Synchrotron X-ray powder diffraction patterns of (a) [EMIM][PF6] and (b) EuL in [EMIM][PF6]. (a-1,b-1) before and (a-2,b-2) after heating at 70 °C (λ = 1.017593 Å).
Figure 8In situ temperature dependence of emission spectra with photographs of EuL in [EMIM][PF6] at (a) 17, (b) 61, (c) 108, and (d) 121 °C (λex = 254 nm).