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Preparation and Characterization of Li-Doped ZnO Nano-Sized Powders for Photocatalytic Applications
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Different types of Li-doped ZnO (LDZ) (Li = 0 to 10%) powders were prepared by following a novel pyro-hydrolysis route at 450°C, and were thoroughly characterized by means of thermo-gravimetry (TG), differential scanning calorimetry (DSC), X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), Fourier-transform infrared (FT-IR) spectroscopy, Fourier-transform Raman spectroscopy (FT-Raman), diffuse reflectance spectroscopy (DRS), ultra-violet visible (UV-vis.) spectroscopy, BET SA, and zeta potential (ζ) measurements. Photocatalytic activity of these powders was evaluated by means of methylene blue (MB) degradation experiments conducted under the irradiation of simulated and natural solar light. Characterization results suggest that both pure and LDZ powders are quite thermally stable up to a temperature of 700°C and possess band gap (BG) energies in the range of 3.16 to 3.2 eV with a direct band to band transition and ζ values of-31.6 mV to-56.4 mV. The properties exhibited by LDZ powders were found to be quite comparable to those exhibited byp-type semi-conducting LDZ powders. In order to study the kinetics of MB degradation reaction under the irradiation of simulated solar light, the Li (0.2 to 10%) and Al (0.5%) co-doped ZnO powders were also synthesized and employed for this purpose. The photocatalytic degradation of MB over Al and Li co-doped ZnO powders followed the Langmuir-Hinshelwood (L-H) first order reaction rate relationship. The 10% Li and 0.5% Al co-doped ZnO exhibited highest photocatalytic activity among various powders investigated in this study.
Trans Tech Publications, Ltd.
Title: Preparation and Characterization of Li-Doped ZnO Nano-Sized Powders for Photocatalytic Applications
Description:
Different types of Li-doped ZnO (LDZ) (Li = 0 to 10%) powders were prepared by following a novel pyro-hydrolysis route at 450°C, and were thoroughly characterized by means of thermo-gravimetry (TG), differential scanning calorimetry (DSC), X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), Fourier-transform infrared (FT-IR) spectroscopy, Fourier-transform Raman spectroscopy (FT-Raman), diffuse reflectance spectroscopy (DRS), ultra-violet visible (UV-vis.
) spectroscopy, BET SA, and zeta potential (ζ) measurements.
Photocatalytic activity of these powders was evaluated by means of methylene blue (MB) degradation experiments conducted under the irradiation of simulated and natural solar light.
Characterization results suggest that both pure and LDZ powders are quite thermally stable up to a temperature of 700°C and possess band gap (BG) energies in the range of 3.
16 to 3.
2 eV with a direct band to band transition and ζ values of-31.
6 mV to-56.
4 mV.
The properties exhibited by LDZ powders were found to be quite comparable to those exhibited byp-type semi-conducting LDZ powders.
In order to study the kinetics of MB degradation reaction under the irradiation of simulated solar light, the Li (0.
2 to 10%) and Al (0.
5%) co-doped ZnO powders were also synthesized and employed for this purpose.
The photocatalytic degradation of MB over Al and Li co-doped ZnO powders followed the Langmuir-Hinshelwood (L-H) first order reaction rate relationship.
The 10% Li and 0.
5% Al co-doped ZnO exhibited highest photocatalytic activity among various powders investigated in this study.
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