| Literature DB >> 35424895 |
Kateryna V Terebilenko1, Vitalii P Chornii1,2, Valeriіa O Zozulia1, Il'ya A Gural'skiy1, Sergiu G Shova3, Serhii G Nedilko1, Mykola S Slobodyanik1.
Abstract
K2Eu(PO4)(WO4) has been prepared via the high-temperature solution growth (HTSG) method using K2WO4-KPO3 molten salts as a self-flux and characterized by single-crystal X-ray diffraction analysis, IR and luminescence spectroscopy. The structure of this new compound features a 2D framework containing [EuPO6]4- layers, which are composed of zigzag chains of [EuO8]n interlinked by slightly distorted PO4 tetrahedra. Isolated WO4 tetrahedra are attached above and below these layers, leaving space for the K+ counter-cations. The photoluminescence (PL) characteristics (spectra, line intensity distribution and decay kinetics) confirm structural data concerning one distinct position for europium ions. The luminescence color coordinates suggest K2Eu(PO4)(WO4) as an efficient red phosphor for lighting applications. This journal is © The Royal Society of Chemistry.Entities:
Year: 2022 PMID: 35424895 PMCID: PMC8985141 DOI: 10.1039/d2ra00932c
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Crystal data and structure refinements for K2Eu(PO4)(WO4)
| Empirical formula | EuK2O8PW |
|---|---|
| Formula weight | 572.98 |
| Temperature/K | 293(2) |
| Crystal system | Orthorhombic |
| Space group |
|
|
| 6.9856(4) |
|
| 12.2954(5) |
|
| 19.7434(9) |
| Volume/Å3 | 1695.79(15) |
|
| 8 |
|
| 4.489 |
| μ mm−1 | 22.064 |
| Crystal size/mm3 | 0.25 × 0.25 × 0.02 |
| 2 | 4.126 to 58.916 |
| Reflections collected | 5948 |
| Independent reflections | 1049 [ |
| Data/restraints/parameters | 1049/0/61 |
| Goodness-of-fit on F2 | 1.084 |
| Final |
|
Fig. 1(a) The nearest surrounding of europium cation in K2Eu(PO4)(WO4) structure; (b) 2D layer at ab plane; c) The crystal structure view along a axis.
Parameters of oxygen polyhedra in K2Eu(PO4)(WO4)
| Moieties (MO | EuO8 | KO8 | PO4 | WO4 |
|---|---|---|---|---|
| Bond lengths (Å) | 2.327(6) ×2 | 2.659(6) | 1.515(5)×2 | 1.763(6)×2 |
| 2.392(6) ×2 | 2.705(6) | 1.543(6)×2 | 1.788(6)×2 | |
| 2.433(6) ×2 | 2.782(6) | |||
| 2.475(5) ×2 | 2.970(7) | |||
| 2.980(7) | ||||
| 3.069(6) | ||||
| 3.186(7) | ||||
| 3.198(7) | ||||
|
|
|
|
| |
| Polyhedron type | Triangular | Biaugmented trigonal prism | Tetrahedron | |
| Dodecahedron | ||||
| Symmetry of ideal polyhedron |
|
|
| |
|
| 2.908 | 4.036 | 0.212 | 0.047 |
Fig. 2(a) 2D layers [EuPO6]4-, K atoms are omitted for clarity; (b) graphene-like layer of K cations.
Fig. 3IR spectrum of K2Eu(PO4)(WO4).
IR wavenumbers (cm−1) and band assignments for A2R(PO4)(MO4) (A–K, Rb, R–Bi, Eu, M−Mo, W)
| Host |
|
|
|
|
|---|---|---|---|---|
| K2Eu(PO4)(WO4) | 1102 | 1000 | 887 | 618 |
| 1078 | 961 | 852 | 572 | |
| 792 | 530 | |||
| Na2Y(PO4)(WO4)[ | 1095 | 985 | 860 | 620 |
| 945 | 823 | 575 | ||
| 797 | 535 | |||
| Rb2Eu(PO4)(MoO4)[ | 1075 | 950 | 901 | 608 |
| 825 | 562 | |||
| 780 | 524 | |||
| K2Gd(PO4)(WO4)[ | 1081 | 962 | 843 | — |
| 786 | ||||
| K2Bi(PO4)(MoO4)[ | 1055 | 945 | 895 | 590 |
| 860 | 555 | |||
| 815 | 520 | |||
| 790 | ||||
| 740 |
Ratios between totala intensities of 5D0 → 7F transitions in Eu3+ ions in K2Eu(PO4)(WO4) and chromaticity coordinates
|
|
|
|
|
|
|
|---|---|---|---|---|---|
| 380 | 3.05 | 4.26 | 1.40 | 0.647 | 0.349 |
| 393 | 3.26 | 5.40 | 1.66 | 0.652 | 0.347 |
| 466 | 2.96 | 4.94 | 1.67 | 0.647 | 0.353 |
total intensity is calculated as area under spectra in the regions 580–600 (5D0 → 7F1), 600–630 (5D0 → 7F2) and 680–710 nm (5D0 → 7F4).
Fig. 4Luminescence spectra of the K2Eu(PO4)(WO4) obtained for excitation at λe = 380 (1), 393 (2) and 466 nm (2) at room temperature.
Fig. 5PL excitation spectra of the K2Eu(PO4)(WO4) registered at λem = 594 (1), 615 (2) and 702.5 nm (3); T = 300 K. Inset: PL decay curve in semi-logarithmic scale (λex = 465 nm, λem = 615 nm) and its fitting with formulae I = I1 × exp(−t/τ1) + I2 × exp(−t/τ2).