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Bandgap reduction of photocatalytic TiO2 nanotube by Cu doping | Scientific  Reports
Bandgap reduction of photocatalytic TiO2 nanotube by Cu doping | Scientific Reports

Titanium Dioxide: From Engineering to Applications
Titanium Dioxide: From Engineering to Applications

Band-gap energy (hν) of TiO2-GO composites. | Download Scientific Diagram
Band-gap energy (hν) of TiO2-GO composites. | Download Scientific Diagram

Modification strategies of TiO2 for potential applications in  photocatalysis: a critical review
Modification strategies of TiO2 for potential applications in photocatalysis: a critical review

The Direct transition and not Indirect transition, is more favourable for Band  Gap calculation of Anatase TiO2 nanoparticles | Semantic Scholar
The Direct transition and not Indirect transition, is more favourable for Band Gap calculation of Anatase TiO2 nanoparticles | Semantic Scholar

Band gap and photocatalytic properties of Ti-substituted hydroxyapatite:  Comparison with anatase-TiO2 - ScienceDirect
Band gap and photocatalytic properties of Ti-substituted hydroxyapatite: Comparison with anatase-TiO2 - ScienceDirect

Effect of band gap engineering in anionic-doped TiO2 photocatalyst -  ScienceDirect
Effect of band gap engineering in anionic-doped TiO2 photocatalyst - ScienceDirect

Highly Visible Light Responsive, Narrow Band gap TiO2 Nanoparticles  Modified by Elemental Red Phosphorus for Photocatalysis and  Photoelectrochemical Applications | Scientific Reports
Highly Visible Light Responsive, Narrow Band gap TiO2 Nanoparticles Modified by Elemental Red Phosphorus for Photocatalysis and Photoelectrochemical Applications | Scientific Reports

Band structure engineering of anatase TiO2 by metal-assisted P-O coupling:  The Journal of Chemical Physics: Vol 140, No 17
Band structure engineering of anatase TiO2 by metal-assisted P-O coupling: The Journal of Chemical Physics: Vol 140, No 17

Band-gap calculation, according to the absorbance spectrum of TiO2 P25,...  | Download Scientific Diagram
Band-gap calculation, according to the absorbance spectrum of TiO2 P25,... | Download Scientific Diagram

Band structure engineering of TiO2 nanowires by n–p codoping for enhanced  visible-light photoelectrochemical water-splitting - Physical Chemistry  Chemical Physics (RSC Publishing)
Band structure engineering of TiO2 nanowires by n–p codoping for enhanced visible-light photoelectrochemical water-splitting - Physical Chemistry Chemical Physics (RSC Publishing)

a) Band gap energies and band positions of titania (anatase and... |  Download Scientific Diagram
a) Band gap energies and band positions of titania (anatase and... | Download Scientific Diagram

Is the Band Gap of Pristine TiO2 Narrowed by Anion- and Cation-Doping of Titanium  Dioxide in Second-Generation Photocatalysts? | The Journal of Physical  Chemistry B
Is the Band Gap of Pristine TiO2 Narrowed by Anion- and Cation-Doping of Titanium Dioxide in Second-Generation Photocatalysts? | The Journal of Physical Chemistry B

Engineering the Band Gap States of the Rutile TiO2(110) Surface by  Modulating the Active Heteroatom - Yu - 2018 - Angewandte Chemie  International Edition - Wiley Online Library
Engineering the Band Gap States of the Rutile TiO2(110) Surface by Modulating the Active Heteroatom - Yu - 2018 - Angewandte Chemie International Edition - Wiley Online Library

TiO2 Band Gap, Doping, and Modifying, Ion-implantation method
TiO2 Band Gap, Doping, and Modifying, Ion-implantation method

Role of dopant Ga in tuning the band gap of rutile TiO2 from first  principles - ScienceDirect
Role of dopant Ga in tuning the band gap of rutile TiO2 from first principles - ScienceDirect

Band gap engineered, oxygen-rich TiO2 for visible light induced  photocatalytic reduction of CO2 - Chemical Communications (RSC Publishing)
Band gap engineered, oxygen-rich TiO2 for visible light induced photocatalytic reduction of CO2 - Chemical Communications (RSC Publishing)

Molecules | Free Full-Text | Photonic Band Gap and Bactericide Performance  of Amorphous Sol-Gel Titania: An Alternative to Crystalline TiO2
Molecules | Free Full-Text | Photonic Band Gap and Bactericide Performance of Amorphous Sol-Gel Titania: An Alternative to Crystalline TiO2

Synthesis of visible light-responsive cobalt-doped TiO2 nanoparticles with  tunable optical band gap | SpringerLink
Synthesis of visible light-responsive cobalt-doped TiO2 nanoparticles with tunable optical band gap | SpringerLink

Microbial fuel cell assisted band gap narrowed TiO2 for visible  light-induced photocatalytic activities and power generation
Microbial fuel cell assisted band gap narrowed TiO2 for visible light-induced photocatalytic activities and power generation

Effect of band gap engineering in anionic-doped TiO2 photocatalyst -  ScienceDirect
Effect of band gap engineering in anionic-doped TiO2 photocatalyst - ScienceDirect

Catalysts | Free Full-Text | Insights into the TiO2-Based Photocatalytic  Systems and Their Mechanisms | HTML
Catalysts | Free Full-Text | Insights into the TiO2-Based Photocatalytic Systems and Their Mechanisms | HTML

Revisit of the band gaps of rutile SnO2 and TiO2: a first-principles study
Revisit of the band gaps of rutile SnO2 and TiO2: a first-principles study

Band Gap Measurements on Titanium Dioxide Powder
Band Gap Measurements on Titanium Dioxide Powder

Tuning the optical bandgap of TiO2-TiN composite films as photocatalyst in  the visible light: AIP Advances: Vol 3, No 6
Tuning the optical bandgap of TiO2-TiN composite films as photocatalyst in the visible light: AIP Advances: Vol 3, No 6

TiO2-Low Band Gap Semiconductor Heterostructures for Water Treatment Using  Sunlight-Driven Photocatalysis | IntechOpen
TiO2-Low Band Gap Semiconductor Heterostructures for Water Treatment Using Sunlight-Driven Photocatalysis | IntechOpen

Challenges in Band Alignment between Semiconducting Materials: A Case of  Rutile and Anatase TiO
Challenges in Band Alignment between Semiconducting Materials: A Case of Rutile and Anatase TiO

Figure 7. Variation of (h)2 versus h for direct band gap transitions in (a)  TiO2/Nb2O5 composite (b) TiO2 and (c) Nb2O5 films. : Electrophoretic  Deposition and Characterization of TiO2/Nb2O5 Composite Thin Films
Figure 7. Variation of (h)2 versus h for direct band gap transitions in (a) TiO2/Nb2O5 composite (b) TiO2 and (c) Nb2O5 films. : Electrophoretic Deposition and Characterization of TiO2/Nb2O5 Composite Thin Films

Tuning optical band gap by electrochemical reduction in TiO2 nanorods for  improving photocatalytic activities - RSC Advances (RSC Publishing)
Tuning optical band gap by electrochemical reduction in TiO2 nanorods for improving photocatalytic activities - RSC Advances (RSC Publishing)

Highly Visible Light Responsive, Narrow Band gap TiO2 Nanoparticles  Modified by Elemental Red Phosphorus for Photocatalysis and  Photoelectrochemical Applications | Scientific Reports
Highly Visible Light Responsive, Narrow Band gap TiO2 Nanoparticles Modified by Elemental Red Phosphorus for Photocatalysis and Photoelectrochemical Applications | Scientific Reports