molybdenum trioxide has been researched along with titanium in 10 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 0 (0.00) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 2 (20.00) | 29.6817 |
2010's | 7 (70.00) | 24.3611 |
2020's | 1 (10.00) | 2.80 |
Authors | Studies |
---|---|
Kobayashi, K; Natori, H; Takahashi, M | 1 |
Choy, JH; Hwang, SJ; Jung, H; Kang, JH; Paek, SM | 1 |
Bauer, S; Guggenbichler, JP; Gutbrod, K; Lorenz, K; Schmuki, P; Zollfrank, C | 1 |
Capron, M; Dongare, M; Dumeignil, F; Jalowiecki-Duhamel, L; Kotbagi, T; Lamonier, C; Lancelot, C; Nguyen, DL; Thavornprasert, KA; Umbarkar, S; Wenli, Z | 1 |
Chang, H; Du, Y; Hao, J; Jong, MT; Li, J; Qu, R; Wang, C | 1 |
Peng, C; Wu, J; Yao, L | 1 |
Chang, H; Duan, L; Hao, J; Li, J; Li, M; Sun, X; Wu, Q; Zhang, T | 1 |
Du, J; Liu, Z; Luo, H; Tang, Q; Tao, C; Xie, B | 1 |
Fakhri, A; Hadadi, T; Hosseini, M; Nobakht, N; Rad, SS; Zhu, JM | 1 |
Duan, L; Jiang, D; Liu, J; Lv, S; Qi, R | 1 |
10 other study(ies) available for molybdenum trioxide and titanium
Article | Year |
---|---|
Fabrication and photocatalytic activity of TiO2/MoO3 particulate films.
Topics: Catalysis; Microscopy, Atomic Force; Molybdenum; Oxides; Photochemical Processes; Quaternary Ammonium Compounds; Solutions; Spectrum Analysis; Titanium | 2009 |
Enhanced lithium storage capacity and cyclic performance of nanostructured TiO2-MoO3 hybrid electrode.
Topics: Electrodes; Lithium; Molybdenum; Nanostructures; Oxides; Titanium; X-Ray Diffraction | 2009 |
Anodic TiO₂ nanotube layers electrochemically filled with MoO₃ and their antimicrobial properties.
Topics: Anti-Infective Agents; Escherichia coli; Microbial Viability; Molybdenum; Nanotubes; Oxides; Pseudomonas aeruginosa; Staphylococcus aureus; Surface Properties; Titanium | 2011 |
Transesterification of diethyl oxalate with phenol over sol-gel MoO(3)/TiO(2) catalysts.
Topics: Catalysis; Esterification; Hydrogen-Ion Concentration; Molybdenum; Oxalates; Oxides; Phenol; Titanium | 2012 |
Design strategies for P-containing fuels adaptable CeO2-MoO3 catalysts for DeNO(x): significance of phosphorus resistance and N2 selectivity.
Topics: Adsorption; Ammonia; Catalysis; Cerium; Cobalt; Denitrification; Fossil Fuels; Molybdenum; Nitrates; Nitric Oxide; Nitrogen; Oxidation-Reduction; Oxides; Phosphorus; Spectroscopy, Fourier Transform Infrared; Sulfur Dioxide; Titanium; Water | 2013 |
Wettability and bond strength between leucite-reinforced dental porcelains and Co-Cr alloy.
Topics: Aluminum Silicates; Chromium Alloys; Dental Bonding; Dental Porcelain; Humans; Materials Testing; Metal Ceramic Alloys; Molybdenum; Optical Imaging; Oxides; Spectrometry, X-Ray Emission; Spectrum Analysis, Raman; Stress, Mechanical; Surface Properties; Titanium; Wettability | 2013 |
Design Strategies for CeO2-MoO3 Catalysts for DeNOx and Hg(0) Oxidation in the Presence of HCl: The Significance of the Surface Acid-Base Properties.
Topics: Adsorption; Ammonia; Carbon Dioxide; Catalysis; Cerium; Hydrogen-Ion Concentration; Mercury; Molybdenum; Nitric Oxide; Oxidation-Reduction; Oxides; Photoelectron Spectroscopy; Surface Properties; Temperature; Titanium | 2015 |
The black rock series supported SCR catalyst for NO
Topics: Adsorption; Ammonia; Catalysis; Molybdenum; Nitrogen Oxides; Oxidation-Reduction; Oxides; Oxygen; Silicon Dioxide; Temperature; Titanium; Vanadium Compounds; X-Ray Diffraction | 2017 |
Highly efficient of molybdenum trioxide-cadmium titanate nanocomposites for ultraviolet light photocatalytic and antimicrobial application: Influence of reactive oxygen species.
Topics: Anti-Bacterial Agents; Anti-Infective Agents; Antifungal Agents; Cadmium Compounds; Catalysis; Molybdenum; Nanocomposites; Oxides; Photochemical Processes; Reactive Oxygen Species; Titanium; Ultraviolet Rays | 2019 |
Design of two-dimensional molybdenum trioxide-immobilized magnetic graphite nitride nanocomposites with multiple affinity sites for phosphopeptide enrichment.
Topics: Caseins; Chromatography, Affinity; Graphite; Humans; Magnetic Phenomena; Molybdenum; Nanocomposites; Oxides; Phosphopeptides; Titanium | 2022 |