研究目的
Investigating the influence of graphene oxide coating on optical and photoluminescence properties of zinc oxide nanorods (ZnO NRs).
研究成果
The study successfully prepared ZnO NRs and ZnO NRs:GO nanocomposite, demonstrating that GO coating influences the structural and optical properties of ZnO nanorods, including a reduction in band gap and changes in photoluminescence properties. The nanocomposite shows potential for applications in optoelectronic devices.
研究不足
The study focuses on the optical and photoluminescence properties of ZnO NRs and ZnO NRs:GO nanocomposite, without delving into other potential applications or properties.
1:Experimental Design and Method Selection
ZnO NRs were prepared using a hydrothermal route, graphene oxide (GO) was fabricated by Hummer's method, and ZnO NRs:GO nanocomposite was synthesized on Si (100) substrate using a drop coating technique.
2:Sample Selection and Data Sources
ZnO NRs were prepared from zinc nitrate hexahydrate and hexamethylenetetramine. Graphene oxide was prepared from graphite powder by a modified Hummers method.
3:List of Experimental Equipment and Materials
X-ray diffractometer (XRD, Rigaku Smart Lab system), field emission scanning electron microscope (FESEM, Jeol JSM 6700F), BRUKER-RFS27 FT-Raman spectrometer, PerkinElmer FTIR spectrometer, PerkinElmer LAMBDA 1050 UV/Vis/NIR spectrometer, Jobin Yvon Fluorolog spectrometer coupled with a CCD detector.
4:Experimental Procedures and Operational Workflow
ZnO NRs were hydrothermally grown at 90°C for 24 h. GO was added by drop-casting and treated for another 4h at 200°C. The structural, morphological, optical and luminescence properties were investigated using XRD, SEM, FT-IR, Raman, UV/VIS/NIR, and PL spectroscopies.
5:Data Analysis Methods
The optical band gap energy (Eg) values were calculated by extrapolating the straight-line portion of the (αhn)2 against photon energy (hn) plot to the abscissa axis. The PL spectra were deconvoluted using Gaussian fitting.
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X-ray diffractometer
Rigaku Smart Lab system
Rigaku
Determining the crystal phase of the samples.
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Field emission scanning electron microscope
Jeol JSM 6700F
Jeol
Characterizing the surface morphology of the samples.
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FT-Raman spectrometer
BRUKER-RFS27
BRUKER
Analyzing the presence of functional molecules in the materials.
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FTIR spectrometer
PerkinElmer
PerkinElmer
Analyzing the presence of functional molecules in the materials.
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UV/Vis/NIR spectrometer
PerkinElmer LAMBDA 1050
PerkinElmer
Carrying out UV-Vis-NIR spectroscopy.
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Fluorolog spectrometer
Jobin Yvon
Jobin Yvon
Carrying out PL measurements in the steady state.
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