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Výraz Netolerovatelné gang biio4 band gap výše Ovocný Emulace

The effects of Sc doping and O vacancy on the electronic states and optical  properties of m-BiVO4
The effects of Sc doping and O vacancy on the electronic states and optical properties of m-BiVO4

Band alignment between BiVO 4 and In 2 O 3 from cited values of... |  Download Scientific Diagram
Band alignment between BiVO 4 and In 2 O 3 from cited values of... | Download Scientific Diagram

Materials Chemistry A
Materials Chemistry A

Energy band diagrams of BiVO4/RuO2, BiVO4/NiO, BiVO4/CoOx and BiVO4/ITO...  | Download Scientific Diagram
Energy band diagrams of BiVO4/RuO2, BiVO4/NiO, BiVO4/CoOx and BiVO4/ITO... | Download Scientific Diagram

Ab Initio Calculation of Surface-Controlled Photocatalysis in  Multiple-Phase BiVO4 | The Journal of Physical Chemistry C
Ab Initio Calculation of Surface-Controlled Photocatalysis in Multiple-Phase BiVO4 | The Journal of Physical Chemistry C

Boosting the Visible-Light Photoactivity of BiOCl/BiVO4/N-GQD Ternary  Heterojunctions Based on Internal Z-Scheme Charge Transfer of N-GQDs:  Simultaneous Band Gap Narrowing and Carrier Lifetime Prolonging | ACS  Applied Materials & Interfaces
Boosting the Visible-Light Photoactivity of BiOCl/BiVO4/N-GQD Ternary Heterojunctions Based on Internal Z-Scheme Charge Transfer of N-GQDs: Simultaneous Band Gap Narrowing and Carrier Lifetime Prolonging | ACS Applied Materials & Interfaces

Band Edge Electronic Structure of BiVO4: Elucidating the Role of the Bi s  and V d Orbitals
Band Edge Electronic Structure of BiVO4: Elucidating the Role of the Bi s and V d Orbitals

Energy Band Alignment of BiVO4 from Photoelectron Spectroscopy of  Solid-state Interfaces
Energy Band Alignment of BiVO4 from Photoelectron Spectroscopy of Solid-state Interfaces

New application for the BiVO4 photoanode: A photoelectroanalytical sensor  for nitrite
New application for the BiVO4 photoanode: A photoelectroanalytical sensor for nitrite

Structural stability, band structure and optical properties of different  BiVO4 phases under pressure | SpringerLink
Structural stability, band structure and optical properties of different BiVO4 phases under pressure | SpringerLink

Efficient solar water splitting by enhanced charge separation in a bismuth  vanadate-silicon tandem photoelectrode | Nature Communications
Efficient solar water splitting by enhanced charge separation in a bismuth vanadate-silicon tandem photoelectrode | Nature Communications

Phase transition-induced band edge engineering of BiVO4 to split pure water  under visible light | PNAS
Phase transition-induced band edge engineering of BiVO4 to split pure water under visible light | PNAS

Structural and electronic properties of oxygen defective and Se-doped  p-type BiVO4(001) thin film for the applications of photocatalysis -  ScienceDirect
Structural and electronic properties of oxygen defective and Se-doped p-type BiVO4(001) thin film for the applications of photocatalysis - ScienceDirect

Surface modification of m-BiVO4 with wide band-gap semiconductor BiOCl to  largely improve the visible light induced photocatalytic activity -  ScienceDirect
Surface modification of m-BiVO4 with wide band-gap semiconductor BiOCl to largely improve the visible light induced photocatalytic activity - ScienceDirect

Catalysts | Free Full-Text | Network Structured CuWO4/BiVO4/Co-Pi  Nanocomposite for Solar Water Splitting
Catalysts | Free Full-Text | Network Structured CuWO4/BiVO4/Co-Pi Nanocomposite for Solar Water Splitting

The Role of Underlayers and Overlayers in Thin Film BiVO4 Photoanodes for  Solar Water Splitting - García‐Tecedor - 2019 - Advanced Materials  Interfaces - Wiley Online Library
The Role of Underlayers and Overlayers in Thin Film BiVO4 Photoanodes for Solar Water Splitting - García‐Tecedor - 2019 - Advanced Materials Interfaces - Wiley Online Library

Enhanced visible-light photocatalytic activity of a g-C3N4/BiVO4  nanocomposite: a first-principles study - Physical Chemistry Chemical  Physics (RSC Publishing)
Enhanced visible-light photocatalytic activity of a g-C3N4/BiVO4 nanocomposite: a first-principles study - Physical Chemistry Chemical Physics (RSC Publishing)

Efficient solar-driven water splitting by nanocone BiVO4-perovskite tandem  cells | Science Advances
Efficient solar-driven water splitting by nanocone BiVO4-perovskite tandem cells | Science Advances

Structural stability, band structure and optical properties of different  BiVO4 phases under pressure | SpringerLink
Structural stability, band structure and optical properties of different BiVO4 phases under pressure | SpringerLink

Multifunctional Mulberry‐like BiVO4−Bi2O3 p‐n Heterostructures with  Enhanced both Photocatalytic Reduction and Oxidation Activities - Huang -  2021 - ChemCatChem - Wiley Online Library
Multifunctional Mulberry‐like BiVO4−Bi2O3 p‐n Heterostructures with Enhanced both Photocatalytic Reduction and Oxidation Activities - Huang - 2021 - ChemCatChem - Wiley Online Library

Electronic and optical competence of TiO2/BiVO4 nanocomposites in the  photocatalytic processes | Scientific Reports
Electronic and optical competence of TiO2/BiVO4 nanocomposites in the photocatalytic processes | Scientific Reports

BISMUTH – BASED OXIDE SEMICONDUCTORS: MILD SYNTHESIS AND PRACTICAL  APPLICATIONS by HARI KRISHNA TIMMAJI Presented to the Facu
BISMUTH – BASED OXIDE SEMICONDUCTORS: MILD SYNTHESIS AND PRACTICAL APPLICATIONS by HARI KRISHNA TIMMAJI Presented to the Facu

Factors in the Metal Doping of BiVO4 for Improved Photoelectrocatalytic  Activity as Studied by Scanning Electrochemical Microsco
Factors in the Metal Doping of BiVO4 for Improved Photoelectrocatalytic Activity as Studied by Scanning Electrochemical Microsco

Fabrication of core-shell BiVO4@Fe2O3 heterojunctions for realizing  photocatalytic hydrogen evolution via conduction band elevation -  ScienceDirect
Fabrication of core-shell BiVO4@Fe2O3 heterojunctions for realizing photocatalytic hydrogen evolution via conduction band elevation - ScienceDirect