| Literature DB >> 36080006 |
Jingling Li1,2, Haixin Zheng1,2, Ziming Zheng1,2, Haibo Rong1,2,3, Zhidong Zeng1,2, Hui Zeng1,2.
Abstract
Mastery over the structure of nanocrystals is a powerful tool for the control of their fluorescence properties and to broaden the range of their applications. In this work, the crystalline structure of CdSe can be tuned by the precursor concentration and the dosage of tributyl phosphine, which is verified by XRD, photoluminescence and UV-vis spectra, TEM observations, and time-correlated single photon counting (TCSPC) technology. Using a TBP-assisted thermal-cycling technique coupled with the single precursor method, core-shell QDs with different shell thicknesses were then prepared. The addition of TBP improves the isotropic growth of the shell, resulting in a high QY value, up to 91.4%, and a single-channel decay characteristic of CdSe/ZnS quantum dots. This work not only provides a facile synthesis route to precisely control the core-shell structures and fluorescence properties of CdSe nanocrystals but also builds a link between ligand chemistry and crystal growth theory.Entities:
Keywords: CdSe; crystal structure control; photoluminescence; quantum dot
Year: 2022 PMID: 36080006 PMCID: PMC9457710 DOI: 10.3390/nano12172969
Source DB: PubMed Journal: Nanomaterials (Basel) ISSN: 2079-4991 Impact factor: 5.719
Figure 1(a–h) PL and UV-vis spectra as a function of precursor concentration. Evolutions of (i) PL peak and (j) FWHM with reaction time.
Figure 2(a) XRD patterns of CdSe QDs prepared at different precursor concentrations. TEM images of CdSe NCs with (b) wurtzite structure, (c) wurtzite/zinc blende hybrid structure, and (d) zinc blende structure.
Figure 3(a–d) PL and UV-vis spectra of CdSe NCs prepared under different synthesis conditions. (e,f) The corresponding XRD patterns of CdSe NCs.
Figure 4(a) XRD profiles of CdSe NCs. (b) EDS spectra of CdSe NCs. (c) PL decay curves.
Figure 5TEM images of (a) CdSe core and (b–f) CdSe/ZnS core–shell NCs with different ZnS thicknesses. (g) Statistical distribution histograms.
Figure 6High-resolution TEM images of CdSe/ZnS QDs (a,b) without or (c,d) with TBP. (e) Schematic diagram of the influence of TBP on shell growth. (f) Aspect ratio as a function of ZnS shell thickness. (g) XRD patterns of CdSe/ZnS QDs.
Figure 7(a) Evolution of PL spectra with different ZnS shell thicknesses. (b) Fluorescence properties in terms of peak position and FWHM of the emission. (c) QY value as a function of CdS shell thickness. (d) PL decays of CdSe QDs. (e–i) PL decays of CdSe/ZnS QDs with different shell thicknesses.
Lifetime and fractional contribution of different decay channels of CdSe/ZnS QDs.
| Structure | Shell Thickness (ML) |
|
|
| |||
|---|---|---|---|---|---|---|---|
| CdSe | 0 | 9.7 | 49.9 | 49.2 | 50.1 | 42.7 | 1.04 |
| CdSe/ZnS (Without TBP) | 0.5 | 22.9 | 68.3 | 84.7 | 31.7 | 62.0 | 1.10 |
| 1.2 | 16.3 | 64.8 | 32.8 | 35.2 | 24.9 | 1.05 | |
| 1.7 | 6.9 | 22.2 | 20.4 | 77.8 | 19.2 | 1.01 | |
| 2.1 | 3.2 | 39.1 | 13.5 | 60.9 | 12.1 | 1.08 | |
| CdSe/ZnS (With TBP) | 0.6 | 24.8 | 69.2 | 94.3 | 30.8 | 68.5 | 1.16 |
| 1.5 | — | — | 22.7 | 100 | 22.7 | 1.21 | |
| 1.9 | — | — | 20.2 | 100 | 20.2 | 1.24 | |
| 2.3 | — | — | 19.9 | 100 | 19.9 | 1.05 | |
| 2.7 | — | — | 20.9 | 100 | 20.9 | 1.28 |
Figure 8(a) Evolution of PL spectra with different CdS shell thicknesses. (b,c) TEM images of the CdSe/CdS QDs. (d) QY value as a function of CdS shell thickness. (e–j) PL decays of CdSe/CdS QDs with different shell thicknesses.
Lifetime and fractional contribution of different decay channels of CdSe/CdS QDs.
| Structure | Shell Thickness (ML) |
|
|
| |||
|---|---|---|---|---|---|---|---|
| CdSe | 0 | 9.7 | 48.8 | 49.2 | 512 | 42.6 | 1.12 |
| CdSe/CdS (Without TBP) | 0.8 | 22.9 | 65.0 | 96.8 | 35.0 | 74.2 | 1.27 |
| 2.6 | 12.3 | 34.7 | 23.5 | 65.3 | 21.1 | 1.01 | |
| 4.9 | — | — | 19.6 | 100.0 | 19.6 | 1.15 | |
| 6.7 | — | — | 20.2 | 100.0 | 20.2 | 1.25 | |
| 8 | 9.8 | 15.4 | 24.5 | 84.6 | 23.5 | 1.06 | |
| CdSe/CdS (With TBP) | 0.8 | 23.5 | 68.9 | 86.6 | 31.1 | 68.8 | 1.07 |
| 2.8 | — | — | 19.6 | 100.0 | 21.0 | 1.10 | |
| 5.1 | — | — | 20.5 | 100.0 | 20.5 | 1.05 | |
| 6.8 | — | — | 21.4 | 100.0 | 21.37 | 1.07 | |
| 8.1 | — | — | 22.7 | 100.0 | 22.7 | 1.19 |