Theoretical and experimental investigation of ZrO2 incorporated in nickel phosphate matrix for hydrogen production: Catalytic efficiency and electronic properties
IF 3.9 2区 材料科学Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
S. Mokhliss , A. Ait Mhid , E.M. Jalal , H. Kerrai , S. Ojala , R. Brahmi , M. Agunaou
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引用次数: 0
Abstract
This study presents a comprehensive experimental and theoretical evaluation of a Zr/NiP catalyst for hydrogen production via the partial oxidation of ethanol (POE). The catalyst Zr/NiP was prepared by impregnation in liquid phase, and their catalytic tests in POE showed an excellent performance, achieving a hydrogen yield of 83% at 295 °C; thus, it can be attributed to the synergistic interaction between nickel and ZrO, which enhances metal dispersion and catalytic stability. Catalytic activity tests performed at elevated temperature demonstrated a high selectivity toward CO, with minimal acetaldehyde formation, indicating effective oxidative dehydrogenation and resistance to carbon deposition. Complementary density functional theory calculations confirmed that cubic ZrO has a wide band gap (5.3 eV), with electronic states dominated by O 2p and Zr 4d, which contribute to surface polarization and activate the catalytic sites. Optical studies confirm that ZrO has strong UV absorption, enhancing its photocatalytic efficiency for sustainable hydrogen production.
期刊介绍:
Vacuum is an international rapid publications journal with a focus on short communication. All papers are peer-reviewed, with the review process for short communication geared towards very fast turnaround times. The journal also published full research papers, thematic issues and selected papers from leading conferences.
A report in Vacuum should represent a major advance in an area that involves a controlled environment at pressures of one atmosphere or below.
The scope of the journal includes:
1. Vacuum; original developments in vacuum pumping and instrumentation, vacuum measurement, vacuum gas dynamics, gas-surface interactions, surface treatment for UHV applications and low outgassing, vacuum melting, sintering, and vacuum metrology. Technology and solutions for large-scale facilities (e.g., particle accelerators and fusion devices). New instrumentation ( e.g., detectors and electron microscopes).
2. Plasma science; advances in PVD, CVD, plasma-assisted CVD, ion sources, deposition processes and analysis.
3. Surface science; surface engineering, surface chemistry, surface analysis, crystal growth, ion-surface interactions and etching, nanometer-scale processing, surface modification.
4. Materials science; novel functional or structural materials. Metals, ceramics, and polymers. Experiments, simulations, and modelling for understanding structure-property relationships. Thin films and coatings. Nanostructures and ion implantation.