Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Design and Characterization of Nanostructured Ag2O-Ag/Au Based on Al2O3 Template Membrane for Photoelectrochemical Water Splitting and Hydrogen Generation

View through CrossRef
This study considers the progress of our previous study for hydrogen generation depends on the highly ordered metal oxide/plasmonic materials. This study reports the preparation of Ag2O-Ag/Au on the Al2O3 template (Ag2O-Ag/Au/Al2O3) for photocatalytic sewage water splitting and H2 gas production. Ni imprinting, followed by two-step anodization procedures, prepare the Al2O3 template. Ag2O-Ag and Au materials are prepared inside the template using electrochemical deposition and sputter coating methods, respectively. The chemical structure is confirmed by X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS) analyses, in which all the peaks characterized by Ag2O, Ag, Au, and Al2O3 are confirmed. The scanning electron microscope (SEM) images confirm the preparation of a highly ordered hexagonal Al2O3 template with a pore wide of about 350 nm. Ag2O-Ag/Au accept the same morphology after the deposition process, in which the materials are deposited inside and on the Al2O3 template, in which the hexagonal pores are still opened after the deposition process. These open pores increase the surface area and then enhance the optical and electrical properties. For the H2 generated from sewage water, the produced Ag2O-Ag/Au on the Al2O3 photoelectrode achieved an incident to photon conversion efficiency (IPCE) of 30%. Additionally, the impact of light wavelength and intensity on photoelectrode performance is evaluated. Under increasing the light total power from 25 to 75 mW.cm−2, the current density (Jph) value goes up from 8.9 to 9.5 mA.cm−2. The current study’s findings show promising results for resolving the issue of energy in remote areas by turning wastewater into hydrogen fuel.
Title: Design and Characterization of Nanostructured Ag2O-Ag/Au Based on Al2O3 Template Membrane for Photoelectrochemical Water Splitting and Hydrogen Generation
Description:
This study considers the progress of our previous study for hydrogen generation depends on the highly ordered metal oxide/plasmonic materials.
This study reports the preparation of Ag2O-Ag/Au on the Al2O3 template (Ag2O-Ag/Au/Al2O3) for photocatalytic sewage water splitting and H2 gas production.
Ni imprinting, followed by two-step anodization procedures, prepare the Al2O3 template.
Ag2O-Ag and Au materials are prepared inside the template using electrochemical deposition and sputter coating methods, respectively.
The chemical structure is confirmed by X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS) analyses, in which all the peaks characterized by Ag2O, Ag, Au, and Al2O3 are confirmed.
The scanning electron microscope (SEM) images confirm the preparation of a highly ordered hexagonal Al2O3 template with a pore wide of about 350 nm.
Ag2O-Ag/Au accept the same morphology after the deposition process, in which the materials are deposited inside and on the Al2O3 template, in which the hexagonal pores are still opened after the deposition process.
These open pores increase the surface area and then enhance the optical and electrical properties.
For the H2 generated from sewage water, the produced Ag2O-Ag/Au on the Al2O3 photoelectrode achieved an incident to photon conversion efficiency (IPCE) of 30%.
Additionally, the impact of light wavelength and intensity on photoelectrode performance is evaluated.
Under increasing the light total power from 25 to 75 mW.
cm−2, the current density (Jph) value goes up from 8.
9 to 9.
5 mA.
cm−2.
The current study’s findings show promising results for resolving the issue of energy in remote areas by turning wastewater into hydrogen fuel.

Related Results

Procedure for Western blot v1
Procedure for Western blot v1
Goal: This document has the objective of standardizing the protocol for Western blot. This technique allows the detection of specific proteins separated on polyacrylamide gel and t...
Electro-Oxidation of Ammonia at Novel Ag2O−PrO2/γ-Al2O3 Catalysts
Electro-Oxidation of Ammonia at Novel Ag2O−PrO2/γ-Al2O3 Catalysts
An Ag2O(x)−PrO2(y)/γ-Al2O3 electrocatalyst series (X:Y is for Ag:Pr from 0 to 10) was synthesized, to use synthesized samples in electrochemical applications, a step in fuel cells ...
Sn doped Hematite Nanorods for High-Performance Photoelectrochemical Water Splitting
Sn doped Hematite Nanorods for High-Performance Photoelectrochemical Water Splitting
Photoelectrochemical water splitting is of great attention due to its environmentally friendly generation of clean fuels. Hematite (α-Fe2O3) is considered a promising candidate due...
Karakterisasi Sensor Liquefied Petroleum Gas (LPG) dari Bahan SnO2 Didoping dengan Al2O3
Karakterisasi Sensor Liquefied Petroleum Gas (LPG) dari Bahan SnO2 Didoping dengan Al2O3
Karakterisasi terhadap sensor gas LPG dari bahan SnO2 didoping dengan Al2O3 telah dilakukan. Sampel dibuat dengan persentase doping 0%, 2%, 4%, 6%, 8% dan 10% mol terhadap bahan da...
Design
Design
Conventional definitions of design rarely capture its reach into our everyday lives. The Design Council, for example, estimates that more than 2.5 million people use design-related...
Influence of Ag2O in Physico‐Chemical Properties and HAp Precipitation on Phosphate‐Based Glasses
Influence of Ag2O in Physico‐Chemical Properties and HAp Precipitation on Phosphate‐Based Glasses
Phosphate‐based glass systems with different Ag2O contents 45P2O5–30CaO–(25‐x)Na2O–xAg2O (x = 0, 0.25, 0.5, 0.75, and 1.0, hereafter termed, respectively, as PCNA0, PCNA0.25, PCNA0...

Back to Top