| Literature DB >> 36014653 |
Ion P Culeac1, Victor I Verlan1, Olga T Bordian1, Vera E Zubareva2, Mihail S Iovu1, Ion I Bulhac2, Nichita A Siminel1, Anatolii V Siminel1, Geanina Mihai3,4, Marius Enachescu3,5.
Abstract
A high-luminescent, blue-light excitable europium(III) coordination complex, [Eu(µ2-OC2H5)(btfa)(NO3)(phen)]2phen (1) {btfa = benzoyl trifluoroacetone, phen = 1,10-phenantroline}, has been synthesized and investigated. The complex was characterized by infrared (IR) and photoluminescence (PL) spectroscopy. The PL emission spectra of powder samples registered in a range of 10.7-300 K exhibit characteristic metal-centered luminescence bands, assigned to internal radiative transitions of the Eu3+ ion, 5D1→7Fj and 5D0→7Fj (j = 0-4). The high-resolution spectrum of the transition 5D0→7F0 shows that it consists of two narrow components, separated by 0.96 meV, which indicates the presence in the matrix of two different sites of the Eu3+ ion. The splitting pattern of 5D0→7Fj (j = 0-4) transitions indicates that europium ions are located in a low-symmetry environment. The absolute quantum yield and the sensitization efficiency were determined to be 49.2% and 89.3%, respectively. The complex can be excited with low-cost lasers at around 405 nm and is attractive for potential applications in optoelectronics and biochemistry.Entities:
Keywords: blue-light excitable; dinuclear coordination compound; europium(III); photoluminescence; quantum yield
Year: 2022 PMID: 36014653 PMCID: PMC9415948 DOI: 10.3390/nano12162788
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.719
Figure 1Proposed molecular structure of the complex [Eu(µ2-OC2H5)(btfa)(NO3)(phen)]2phen.
Figure 2Low-resolution excitation spectrum of the complex (1) at 300 K for the 5D0→7F2 transition.
Figure 3PL emission spectra of the powder sample measured at different temperatures (λex= 405 nm).
Figure 4Low-resolution emission spectra for the 5D0→7F0 transition at different temperatures, 10.7–300 K, λexc = 405 nm.
Figure 5High-resolution emission spectrum for the 5D0→7F0 transition at 300 K and its deconvolution, λexc = 405 nm.
Figure 6PL emission spectra of powder sample: magnetic dipole transition 5D0→7F1.
Figure 7High-resolution emission spectrum for the 520–600 nm region at 300 K, λexc = 405 nm.
Figure 8PL emission spectra of powder sample: electric dipole transition 5D0→7F2.
Figure 9Photoluminescence emission spectra of the powder sample [Eu(µ2-OC2H5)(btfa)(NO3)(phen)]2phen complex: 5D0→7F3 transition.
Figure 10Photoluminescence emission spectra of the powder sample [Eu(µ2-OC2H5)(btfa)(NO3)(phen)]2phen complex: 5D0→7F4 transition.
Figure 11Temperature dependence of integrated emission intensity for different transitions 5D0→7Fj (j = 0–4).
Figure 12PL decay profile in powder sample at 300 K measured at 612 nm under pulsed excitation at 337 nm.