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      An Experimental Insight into the Structural and Electronic Characteristics of Strontium-Doped Titanium Dioxide Nanotube Arrays

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          Most cited references28

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          Effective ionic radii in oxides and fluorides

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            Review on modified TiO2 photocatalysis under UV/visible light: selected results and related mechanisms on interfacial charge carrier transfer dynamics.

            Titania is one of the most widely used benchmark standard photocatalysts in the field of environmental applications. However, the large band gap of titania and massive recombination of photogenerated charge carriers limit its overall photocatalytic efficiency. The former can be overcome by modifying the electronic band structure of titania including various strategies like coupling with a narrow band gap semiconductor, metal ion/nonmetal ion doping, codoping with two or more foreign ions, surface sensitization by organic dyes or metal complexes, and noble metal deposition. The latter can be corrected by changing the surface properties of titania by fluorination or sulfation or by the addition of suitable electron acceptors besides molecular oxygen in the reaction medium. This review encompasses several advancements made in these aspects, and also some of the new physical insights related to the charge transfer events like charge carrier generation, trapping, detrapping, and their transfer to surface are discussed for each strategy of the modified titania to support the conclusions derived. The synergistic effects in the mixed polymorphs of titania and also the theories proposed for their enhanced activity are reported. A recent venture on the synthesis and applications of anatase titania with a large percentage of reactive {001} facets and their band gap extension to the visible region via nonmetal ion doping which is a current hot topic is briefly outlined.
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              Relations between the Concentrations of Imperfections in Crystalline Solids

                Author and article information

                Journal
                Advanced Functional Materials
                Adv. Funct. Mater.
                Wiley
                1616301X
                November 2014
                November 2014
                August 28 2014
                : 24
                : 43
                : 6783-6796
                Affiliations
                [1 ]School of Materials Science and Engineering; Georgia Institute of Technology; Atlanta GA 30332 USA
                [2 ]Energy Materials Laboratory (EML), Physics Department; School of Sciences and Engineering, The American University in Cairo; New Cairo 11835 Egypt
                [3 ]School of Chemistry and Biochemistry; Georgia Institute of Technology; Atlanta GA 30332 USA
                [4 ]Qatar Energy and Environment Research Institute; Qatar Foundation; P.O. Box 5825 Doha Qatar
                Article
                10.1002/adfm.201401760
                8cf10e6c-1de7-46ce-a822-3980f33a3489
                © 2014

                http://doi.wiley.com/10.1002/tdm_license_1.1

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