The aim of this work is focused on the study of a series of non-traditional catalytic nanomaterials to transform greenhouse CO gas into added-value products. We found encouraging results of CO hydrogenation activity over sodium titanates with different morphologies. The yield to methanol increases with the increase in the Na incorporated in the nanostructures confirming the proposed mechanism. Samples were prepared at different times of hydrothermal treatment (HTT) with NaOH solutions, and these materials were labeled as Ti-nR-x with x as the hours on the HTT. HRTEM initially showed sphere-shaped nanoparticles in the TiO commercial nanopowder, increasing the HTT resulted in morphological changes in which the structures passed from nanosheets and finally to nanorods after 30 h. The X-ray diffraction and Raman spectroscopy results indicated the formation of sodium titanates such as NaTiO with short Ti-O bonds and that Na begins to be incorporated into the distorted TiO crystalline structure after 5 h of HTT (until 12 wt%). The crystalline and shape transformation resulted in a significant modification on the textural properties passing from 51 m.g to 150 m.g and from a pore volume of 0.12 cm.g to 1.03 cm.g for Ti-ref and Ti-nR-30 respectively. We also observed differences in the electronic properties as the bandgap presented a blue shift from 3.16 eV on the TiO reference nano-powder to 3.44 eV for the Ti-nR-30 calcined sample. This fact coincides with the presence of a more electron-rich state of the Ti and the formation of negative charge layer induced by the presence of Na interlayer cations detected by XPS analysis, at the same this helped us to explain the catalytic activity results.
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http://dx.doi.org/10.3389/fchem.2019.00750 | DOI Listing |
Sci Rep
December 2024
Materials Science and Nanotechnology Department, Faculty of Postgraduate Studies for Advanced Sciences (PSAS), Beni-Suef University, Beni-Suef, 62511, Egypt.
In this study, a titanate-polyurethane-chitosan ternary nanocomposite was prepared by physical mixing. Sodium titanate nanotubes (Na-TNTs) were prepared by the hydrothermal method, and chitosan was extracted from shrimp shell. Na-TNTs were mixed with polyurethane (PU) of different ratios by weight, and chitosan was added after optimization.
View Article and Find Full Text PDFMaterials (Basel)
November 2024
Faculty of Computer Science, Electronics and Telecommunications, AGH University of Science & Technology, 30-059 Krakow, Poland.
Small Methods
November 2024
Research Center for Materials Nanoarchitectonics (MANA), National Institute for Materials Science (NIMS), 1-1 Namiki, Tsukuba, Ibaraki, 305-0044, Japan.
Demand on high-performance ion exchangers is ever-increasing in energy and environment applications. Among many cation exchangers, layered alkali titanates generally show larger cation exchange capacity, but slower cation exchange rate due to their 2D micrometer-size particle morphologies, which limits their practical applications. Here, a rational conversion of a layered sodium titanate, NaTiO, is reported to the corresponding 1D ultra-narrow nanowires via hydrothermal treatment under basic conditions.
View Article and Find Full Text PDFJ Chem Phys
November 2024
Department of Physics, Indian Institute of Technology Indore, Indore 453552, India.
A new study explores the distinct roles of spontaneous polarization and piezoelectric polarization in piezo-phototronic coupling. This investigation focuses on differences in photocatalytic and piezo-photocatalytic performance using sodium bismuth titanate, a key ferroelectric material. The research aims to identify which type of polarization has a greater influence on piezo-phototronic effects.
View Article and Find Full Text PDFACS Appl Mater Interfaces
November 2024
Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials, School of Materials Science and Engineering, Shaanxi University of Science and Technology, Xi'an, Shaanxi 710021, China.
Dielectric capacitors play a crucial role in the field of energy storage; however, the low discharged energy density () of existing commercial dielectrics limits their future applications. Currently, further improvement in the of dielectrics is constrained by the challenge of simultaneously achieving high permittivity (ε) and high breakdown electric field strength (). To address this issue, we designed a series of four-layer poly(vinylidene fluoride) (PVDF)-based composite films comprising three functional layers: a sodium bismuth titanate (NBT) plus PVDF composite (NBT&PVDF) layer to achieve high ε values and a pure PVDF layer and a boron nitride (BN) plus PVDF composite (BN&PVDF) layer to achieve high values.
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