| Literature DB >> 26787050 |
Veeradasan Perumal1, Uda Hashim2, Subash C B Gopinath2,3, Haarindraprasad Rajintra Prasad2, Liu Wei-Wen2, S R Balakrishnan2, Thivina Vijayakumar2, Ruslinda Abdul Rahim2.
Abstract
Generation of hybrid nanostructures has been attested as a promising approach to develop high-performance sensing substrates. Herein, hybrid zinc oxide (ZnO) nanorod dopants with different gold (Au) thicknesses were grown on silicon wafer and studied for their impact on physical, optical and electrical characteristics. Structural patterns displayed that ZnO crystal lattice is in preferred c-axis orientation and proved the higher purities. Observations under field emission scanning electron microscopy revealed the coverage of ZnO nanorods by Au-spots having diameters in the average ranges of 5-10 nm, as determined under transmission electron microscopy. Impedance spectroscopic analysis of Au-sputtered ZnO nanorods was carried out in the frequency range of 1 to 100 MHz with applied AC amplitude of 1 V RMS. The obtained results showed significant changes in the electrical properties (conductance and dielectric constant) with nanostructures. A clear demonstration with 30-nm thickness of Au-sputtering was apparent to be ideal for downstream applications, due to the lowest variation in resistance value of grain boundary, which has dynamic and superior characteristics.Entities:
Keywords: Dopant; Gold; Impedance; Nanorods; Nanostructure; Zinc oxide
Year: 2016 PMID: 26787050 PMCID: PMC4718909 DOI: 10.1186/s11671-016-1245-8
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Schematic illustration shows the steps involved in the synthesis interdigitated electrode (IDE) coated with Au-sputtered ZnO-NRs. a Fabricated IDE. b ZnO thin film coating. c Hydrothermal growth of ZnO-NRs. d Sputtering different thicknesses of Au
Fig. 2FESEM images of ZnO-NRs sputtered with different thicknesses of Au. a 10, b 20, c 30 and d 40 nm. The inset shows the magnified morphological observation of ZnO-NRs sputtered with different thicknesses of Au
Fig. 3TEM images of ZnO-NRs sputtered with different thicknesses of Au. a Typical TEM micrograph of Au-sputtered ZnO-NRs and the inset graph is a histogram illustrating the particle size distributions. b High-resolution TEM image showing ZnO/Au nanohybrids. c Selected area electron diffraction pattern
Fig. 4X-ray diffraction pattern of ZnO-NRs sputtered with different thicknesses of Au. a Bare ZnO-NRs; b 10-, c 20-, d 30- and e 40-nm Au-sputtered ZnO-NRs
Fig. 5X-ray photoelectron spectroscopy data showing binding energies of 20- and 40-nm Au-sputtered ZnO-NRs. a Survey scan of 20 nm. b Survey scan of 40 nm. c Zn 2p, 20 nm. d Zn 2p, 40 nm. e Au 4f, 20 nm. f Au 4f, 40 nm
Fig. 6Photoluminescence spectra of ZnO-NRs sputtered with different thicknesses of Au with figure insets showing the corresponding variations of enhancement factors of UV emission with different deposition thicknesses of AuNPs
Fig. 7Impedance characterizations of ZnO-NRs sputtered with different thicknesses of Au. a Nyquist plot and b imaginary part showing the overall impedance
Parameters for ZnO nanorods sputtered with different Au thicknesses
| Samples | Rct (MΩ) | CPE (nF) |
|
|---|---|---|---|
| ZnO | 0.92 | 13.58 | 0.89 |
| ZnO/Au 10 nm | 0.70 | 9.85 | 0.89 |
| ZnO/Au 20 nm | 0.43 | 7.27 | 0.90 |
| ZnO/Au 30 nm | 0.10 | 3.51 | 0.91 |
| ZnO/Au 40 nm | 0.29 | 4.38 | 0.91 |