| Literature DB >> 35518223 |
Stefano Marchesi1, Chiara Bisio1,2, Fabio Carniato1.
Abstract
Tb3+ and Eu3+ ions were encapsulated for the first time in the inorganic layers of a synthetic saponite clay following a one-pot synthetic approach. The co-presence of the two metal ions led to tuneable light-emitting properties, promoted by an efficient Tb3+ → Eu3+ energy transfer and enhanced Stokes shift character. To our knowledge, the so-prepared luminescent material was tested for the first time as an optical sensor for the detection of chromate anions in water. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35518223 PMCID: PMC9056159 DOI: 10.1039/d0ra05693f
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1(A) X-ray diffraction pattern of Na-SAP (a), Na-TbSAP (b) and Na-TbEuSAP (c) samples. (B) Schematic representation of the Na-TbEuSAP clay.
Fig. 2(A) Excitation spectra at solid state of Na-TbSAP (a, λem = 545 nm) and Na-TbEuSAP (b, λem = 545 nm, c, λem = 615 nm). (B) Emission spectra at solid state of Na-TbSAP (a, λexc = 270 nm) and Na-TbEuSAP (b, λexc = 395 nm, c, λexc = 270 nm); the intensity of Na-TbSAP spectrum was normalized (divided by five) for a better comparison. (C) CIE 1931 xy chromaticity diagrams derived from emission spectra in frame B. The colour of each emission spectrum in frame B is associated to its corresponding xy coordinates (frame C and Table S2†).
Experimental lifetimes (τ) of Na-TbSAP (D) and Na-TbEuSAP (DA), collected by monitoring the 5D4–7F5 emission transition of Tb3+ at 545 nm under irradiation at 370 nm and the Tb3+ → Eu3+ energy transfer rate (kEnT) and efficiency (EEnT)
|
|
|
|
|
|---|---|---|---|
| 5.66 × 10−5 | 1.09 × 10−5 | 7.41 × 104 | 80.74 |
Fig. 3(A) Normalized PL intensity of the band at 545 nm in the presence of different CrO42− concentrations for Na-TbSAP (a) and Na-TbEuSAP (b). (B) Normalized PL intensity of the 615 nm band as a function of the different CrO42− concentrations for Na-TbEuSAP at λexc = 270 (a) and 395 nm (b).