| Literature DB >> 23663554 |
Matthew Zervos1, Chrystalla Karipi, Andreas Othonos.
Abstract
Zinc nitride (Zn3N2) nanowires (NWs) with diameters of 50 to 100 nm and a cubic crystal structure have been grown on 1 nm Au/Al2O3 via the reaction of Zn with NH3 including H2 between 500°C and 600°C. These exhibited an optical band gap of ≈ 3.2 eV, estimated from steady state absorption-transmission spectroscopy. We compared this with the case of ZnO NWs and discussed the surface oxidation of Zn3N2 NWs which is important and is expected to lead to the formation of a Zn3N2/ZnO core-shell NW, the energy band diagram of which was calculated via the self-consistent solution of the Poisson-Schrödinger equations within the effective mass approximation by taking into account a fundamental energy band gap of 1.2 eV. In contrast, only highly oriented Zn3N2 layers with a cubic crystal structure and an optical band gap of ≈ 2.9 eV were obtained on Au/Si(001) using the same growth conditions.Entities:
Year: 2013 PMID: 23663554 PMCID: PMC3663681 DOI: 10.1186/1556-276X-8-221
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Temperatures and gas flows used for the growth of ZnNon 1.8 nm Au/Si(001)
| CVD1066 | 700 | 250 | - |
| CVD1065 | 600 | 250 | - |
| CVD1070 | 500 | 450 | 50 |
| CVD1069 | 500 | 450 | - |
| CVD1072 | 500 | 250 | - |
| CVD1068 | 500 | 50 | - |
The temperature ramp was 10°C/min, and 0.9 g of Zn was used in all cases. Upon reaching TG = 500°C to 700°C, the same flow of NH3 and H2 was maintained for a further 60 min; after which, the reactor was allowed to cool down slowly for at least 30 min without changing the gas flows.
Figure 1XRD spectra of the ZnNlayers obtained on Si(001) as described in Table 1. The peaks belonging to the Al holder have also been identified. The inset shows the room-temperature PL of Zn3N2 layers grown on 1.8 nm Au/Si(001) at 500°C using 50 sccms NH3 (CVD1068 lowest two traces), 450 sccms NH3 (CVD1069 mid two traces) and 450 sccms NH3:50 sccms H2 (CVD1070 top two traces). The bold traces shown in the inset correspond to Zn3N2 obtained closest to Zn, and the thin ones to Zn3N2 obtained further donwstream.
Figure 2XRD spectra of ZnO NWs’ lower trace. Inset shows the PL of the ZnO NWs and square of the absorption versus energy.
Figure 3XRD spectra of the ZnNNWs grown on 1 nm Au/AlOat 600°C under NH:H. Inset shows the SEM image of Zn3N2 NWs.
Figure 4Self-consistent conduction-band edge potential with respect to the Fermi level.EC − EF (EF = 0 eV) versus radial position for a 50-nm diameter Zn3N2/ZnO core-shell NW. The core has a radius of 24 nm. Inset shows the absorption squared versus energy for the Zn3N2 NWs grown on 1 nm Au/Al2O3.