Impact of cobalt concentration on the structural, optical, and photoelectrochemical properties of titanium dioxide nanorods synthesized by hydrothermal method
IF 4.2 3区 材料科学Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Walid Ismail , Ghada Ibrahim , Ahmed A. El-Naggar , Mahmoud Abdelfatah , Abdelhamid El-Shaer
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引用次数: 0
Abstract
In this investigation, the effects of cobalt doping with various concentrations of Co2+ ions (0, 0.1, 0.3, 0.5, 0.7 M) on the physical and photoelectrochemical properties of TiO2 were examined using an economical hydrothermal process. Properties of the samples were analyzed using XRD, Raman, SEM, UV–Vis, PL, photocurrent, Mott-Schottky, and EIS techniques. XRD patterns indicate that Co-doped TiO2 films were found to have a rutile phase, with crystallite sizes ranging from 16.82 to 23.52 nm. Raman spectroscopy showed peaks at 144, 443, and 609 cm−1, demonstrating the formation of the rutile phase of TiO2. SEM images revealed that TiO2 NRs were uniformly formed in a tetragonal structure, and the grain size increased with higher doping levels. In the visible spectrum. Photoluminescence (PL) measurements showed two significant emission peaks at 520 and 700 nm, with reduced strength due to doping. UV–Vis results indicated that the optical absorption edge of the films ranging 386–417 nm, and the estimated band gap (Eg) reduced from 3.21 to 2.89 eV with increasing doping levels. The photocurrent (PC) measurements revealed that the films produced behave as n-type semiconductors. Mott-Schottky results indicated an enhancement in the flat band potential and donor density increased as the dopant concentration increased from −0.47 to −0.72 V and 1.55 × 1018 to 6.15 × 1018 cm−3, respectively. Additionally, EIS results indicate a reduced in the resistance of charge transfer (RCT) for doped samples compare to pure samples. This is due to the lattice distortion resulting from Cobalt doping, which enhances the efficiency of charge transfer. Our results show that Co-doped TiO2 films are viable options for biosensors, supercapacitors, and photovoltaic applications.
期刊介绍:
Optical Materials has an open access mirror journal Optical Materials: X, sharing the same aims and scope, editorial team, submission system and rigorous peer review.
The purpose of Optical Materials is to provide a means of communication and technology transfer between researchers who are interested in materials for potential device applications. The journal publishes original papers and review articles on the design, synthesis, characterisation and applications of optical materials.
OPTICAL MATERIALS focuses on:
• Optical Properties of Material Systems;
• The Materials Aspects of Optical Phenomena;
• The Materials Aspects of Devices and Applications.
Authors can submit separate research elements describing their data to Data in Brief and methods to Methods X.