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Synthesis and Photocatalytic Activity of TiO(2)/CdS Nanocomposites with Co-Exposed Anatase Highly Reactive Facets
In this work, TiO(2)/CdS nanocomposites with co-exposed {101}/[111]-facets (NH4F-TiO2/CdS), {101}/{010} facets (FMA-TiO2/CdS), and {101}/{010}/[111]-facets (HF-TiO2/CdS and Urea-TiO2/CdS) were successfully synthesized through a one-pot solvothermal method by using [Ti(4)O(9)](2−) colloidal solution...
Autores principales: | , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
MDPI
2021
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8512152/ https://www.ncbi.nlm.nih.gov/pubmed/34641575 http://dx.doi.org/10.3390/molecules26196031 |
Sumario: | In this work, TiO(2)/CdS nanocomposites with co-exposed {101}/[111]-facets (NH4F-TiO2/CdS), {101}/{010} facets (FMA-TiO2/CdS), and {101}/{010}/[111]-facets (HF-TiO2/CdS and Urea-TiO2/CdS) were successfully synthesized through a one-pot solvothermal method by using [Ti(4)O(9)](2−) colloidal solution containing CdS crystals as the precursor. The crystal structure, morphology, specific surface area, pore size distribution, separation, and recombination of photogenerated electrons/holes of the TiO(2)/CdS nanocomposites were characterized. The photocatalytic activity and cycling performance of the TiO(2)/CdS nanocomposites were also investigated. The results showed that as-prepared FMA-TiO(2)/CdS with co-exposed {101}/{010} facets exhibited the highest photocatalytic activity in the process of photocatalytic degradation of methyl orange (MO), and its degradation efficiency was 88.4%. The rate constants of FMA-TiO(2)/CdS was 0.0167 min(−1), which was 55.7, 4.0, 3.7, 3.5, 3.3, and 1.9 times of No catalyst, CdS, HF-TiO(2)/CdS, NH(4)F-TiO(2)/CdS, CM-TiO(2), Urea-TiO(2)/CdS, respectively. The highest photocatalytic activity of FMA-TiO(2)/CdS could be attributed to the synergistic effects of the largest surface energy, co-exposed {101}/{010} facets, the lowest photoluminescence intensity, lower charge-transfer resistance, and a higher charge-transfer efficiency. |
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