| Literature DB >> 29404784 |
Gustavo G Parra1,2, Lucimara P Ferreira3, Pablo J Gonçalves4, Svetlana V Sizova5, Vladimir A Oleinikov5, Vladimir N Morozov6, Vladimir A Kuzmin6, Iouri E Borissevitch3,4.
Abstract
Interaction between porphyrins and quantum dots (QD) via energy and/or charge transfer is usually accompanied by reduction of the QD luminescence intensity and lifetime. However, for CdSe/ZnS-Cys QD water solutions, kept at 276 K during 3 months (aged QD), the significant increase in the luminescence intensity at the addition of meso-tetrakis (p-sulfonato-phenyl) porphyrin (TPPS4) has been observed in this study. Aggregation of QD during the storage provokes reduction in the quantum yield and lifetime of their luminescence. Using steady-state and time-resolved fluorescence techniques, we demonstrated that TPPS4 stimulated disaggregation of aged CdSe/ZnS-Cys QD in aqueous solutions, increasing the quantum yield of their luminescence, which finally reached that of the fresh-prepared QD. Disaggregation takes place due to increase in electrostatic repulsion between QD at their binding with negatively charged porphyrin molecules. Binding of just four porphyrin molecules per single QD was sufficient for total QD disaggregation. The analysis of QD luminescence decay curves demonstrated that disaggregation stronger affected the luminescence related with the electron-hole annihilation in the QD shell. The obtained results demonstrate the way to repair aged QD by adding of some molecules or ions to the solutions, stimulating QD disaggregation and restoring their luminescence characteristics, which could be important for QD biomedical applications, such as bioimaging and fluorescence diagnostics. On the other hand, the disaggregation is important for QD applications in biology and medicine since it reduces the size of the particles facilitating their internalization into living cells across the cell membrane.Entities:
Keywords: Cysteine-coated quantum dot; Disaggregation; Electrostatic interaction; Luminescence stimulation; TPPS4 porphyrin
Year: 2018 PMID: 29404784 PMCID: PMC5799094 DOI: 10.1186/s11671-018-2449-x
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Normalized luminescence spectra of (CdSe/ZnS)-Cys 558 quantum dots in phosphate buffer (7.5 mM) at pH 7.3: fresh prepared (black line, λmax = 558 nm), after 3 months in the refrigerator at 276 K (aged QD) without TPPS4 (red line, λmax = 556 nm), and at addition of [TPPS4] = 5.0 μM to aged QD (blue line, λmax = 559 nm), λex = 480 nm
Fig. 2a Luminescence spectra and quantum yield (inset) of aged (CdSe/ZnS)-Cys 558 QD ([QD] = 570 nM, black curve) solutions as a function of the TPPS4 porphyrin concentration. b Decay kinetics of QD luminescence and the ratio (inset, see Eq. (3)) as a function of the TPPS4 porphyrin concentration
Lifetimes of the (CdSe/ZnS)-Cys QD luminescence decay curve components in phosphate buffer (7.5 mM) at pH 7.3: fresh QD and those after 3 months in the refrigerator at 276 K (aged QD) in the absence and presence of TPPS4, λex = 480 nm, λem = 558 nm
| Sample | τ1, ns | τ2, ns | τ3, ns |
|---|---|---|---|
| Fresh QD | 0.7 ± 0.1 | 3.8 ± 0.4 | 19 ± 1 |
| Fresh QD + 8.6μМ [TPPS4] | 0.7 ± 0.1 | 4.1 ± 0.5 | 20 ± 1 |
| Aged QD | 0.1 ± 0.1 | 1.0 ± 0.2 | 5.2 ± 0.5 |
| Aged QD + 5.0μМ [TPPS4] | 0.1 ± 0.1 | 0.9 ± 0.2 | 5.2 ± 0.5 |
Fig. 3Normalized luminescence emission spectra of TPPS4 in phosphate buffer (7.5 mM, pH 7.3) for various TPPS4 concentrations in the presence of aged (CdSe/ZnS)-Cys 558 quantum dot (570 nM), λex = 460 nm
Scheme 1The scheme of the interaction between aged (CdSe/ZnS)-Cys 558 QD and TPPS4 porphyrin at neutral pH. The porphyrin molecules adsorb on the QD surface due to the high affinity of the porphyrin π-conjugated system for metal surfaces increasing the net negative charge on the QD surface, thus increasing electrostatic repulsion between particles and inducing their disaggregation
Fig. 4a Luminescence spectra and quantum yield (inset) of aged (CdSe/ZnS)-Cys 558 QD solutions in function of its concentration. b Decay kinetics of the QD luminescence and the I3 value (inset, see Eq. (3)) in function of its concentration