| Literature DB >> 24994951 |
Xia Wang1, Dong-Xing Kou1, Wen-Hui Zhou1, Zheng-Ji Zhou1, Si-Xin Wu1, Xuan Cao2.
Abstract
In this work, we employed a convenient one-step synthesis method for synthesizing Cu2ZnSnSe4 (CZTSe) nanocrystals (NCs) in an excess selenium environment. This excess selenium situation enhanced the reaction of metal acetylacetonates with selenium, resulting in the burst nucleation of NCs at relatively low temperatures. The phase morphology and surface and optoelectronic properties of NCs before and after ligand exchange were discussed in depth. It was found that pure tetragonal-phase structure CZTSe NCs with approximately 1.7-eV bandgap could be synthesized. The removal of large organic molecules on CZTSe NCs after ligand exchange by S(2-) decreased the resistivity. The bandgap of the films after ligand exchange by 550°C selenization was also decreased due to better crystallinity. For potential application in CZTSe solar cells, we constructed an energy level diagram to explain the mutual effect between the absorption layer and CdS layer. Using cyclic voltammetry (CV) measurement, we found that the highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) energy levels of CZTSe films shifted down after ligand exchange. After energy level alignment at the CdS/CZTSe interface, a type I band alignment structure was more conveniently formed after ligand exchange. This structure acted as the barrier against injection electrons from ZnO to the CZTSe layer, and recombination would subsequently be depressed.Entities:
Keywords: CZTSe NCs; Energy level alignment; Ligand exchange; One-step synthesis
Year: 2014 PMID: 24994951 PMCID: PMC4072846 DOI: 10.1186/1556-276X-9-262
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1XRD pattern, Raman spectrum, HRTEM image, and optical absorption spectrum of CZTSe NCs. (a) XRD pattern of CZTSe NCs. [The standard diffraction lines of tetragonal-phase CTZSe (JCPDS 52-0868) are shown at the bottom for comparison.] (b) Raman spectrum of CZTSe NCs. (c) HRTEM image of CZTSe NCs. (d) Optical absorption spectrum of CZTSe NCs. (The inset shows the bandgap of CZTSe NCs).
Figure 2FTIR spectra of OLA and CZTSe NCs before and after ligand exchange. The inset shows the colloidal dispersion of CZTSe NCs before and after ligand exchange.
Figure 3XRD patterns (a) and Raman spectra (b) of CZTSe nanocrystal thin films before and after 550°C selenization.
Energy level and resistivity of CZTSe NC thin films before and after ligand exchange by 550°C selenization
| Before exchange (550°C) | 3.09 | −3.95 | −5.57 | 1.62 |
| After exchange (550°C) | 0.17 | −4.37 | −5.91 | 1.54 |
aDetermined by CV, |E'ox − E'red|.
Figure 4Mott-Schottky plots for CZTSe NC thin films before and after ligand exchange by 550°C selenization.
Figure 5CV curves of the CZTSe NC thin films and the energy level diagram. (a) CV curves of the CZTSe NC thin films before and after ligand exchange by 550°C selenization. (b) The energy level diagram before the formation of heterojunction in CZTSe solar cells.