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Band gap tuning of ferroelectric PbTiO3 by Mo doping | SpringerLink
Band gap tuning of ferroelectric PbTiO3 by Mo doping | SpringerLink

Band gap tuning in ferroelectric Bi4Ti3O12 by alloying with LaTMO3 (TM =  Ti, V, Cr, Mn, Co, Ni, and Al): Applied Physics Letters: Vol 100, No 13
Band gap tuning in ferroelectric Bi4Ti3O12 by alloying with LaTMO3 (TM = Ti, V, Cr, Mn, Co, Ni, and Al): Applied Physics Letters: Vol 100, No 13

Above-Band-Gap Voltage from Oriented Bismuth Ferrite Ceramic Photovoltaic  Cells | ACS Applied Energy Materials
Above-Band-Gap Voltage from Oriented Bismuth Ferrite Ceramic Photovoltaic Cells | ACS Applied Energy Materials

Band gap tuning of ferroelectric PbTiO3 by Mo doping | SpringerLink
Band gap tuning of ferroelectric PbTiO3 by Mo doping | SpringerLink

Origin of band gaps in 3d perovskite oxides | Nature Communications
Origin of band gaps in 3d perovskite oxides | Nature Communications

Applied Sciences | Free Full-Text | Ferroelectric Materials: A Novel  Pathway for Efficient Solar Water Splitting | HTML
Applied Sciences | Free Full-Text | Ferroelectric Materials: A Novel Pathway for Efficient Solar Water Splitting | HTML

A semiconducting molecular ferroelectric with a bandgap much lower than  that of BiFeO3 | NPG Asia Materials
A semiconducting molecular ferroelectric with a bandgap much lower than that of BiFeO3 | NPG Asia Materials

Integration of Ferroelectric Materials: An Ultimate Solution for  Next-Generation Computing and Storage Devices
Integration of Ferroelectric Materials: An Ultimate Solution for Next-Generation Computing and Storage Devices

Ferroelectric Gating of Narrow Band-Gap Nanocrystal Arrays with Enhanced  Light–Matter Coupling | ACS Photonics
Ferroelectric Gating of Narrow Band-Gap Nanocrystal Arrays with Enhanced Light–Matter Coupling | ACS Photonics

Ferroelectric properties, narrow band gap and ultra-large reversible  entropy change in a novel nonlinear ionic chromium(vi) compound - Chemical  Communications (RSC Publishing)
Ferroelectric properties, narrow band gap and ultra-large reversible entropy change in a novel nonlinear ionic chromium(vi) compound - Chemical Communications (RSC Publishing)

Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe1–xCoxO3  Thin Films | Chemistry of Materials
Band Gap Tuning of Solution-Processed Ferroelectric Perovskite BiFe1–xCoxO3 Thin Films | Chemistry of Materials

Enhanced Visible Photocatalytic Hydrogen Evolution of KN-Based  Semiconducting Ferroelectrics via Band-Gap Engineering and High-Field  Poling | ACS Applied Materials & Interfaces
Enhanced Visible Photocatalytic Hydrogen Evolution of KN-Based Semiconducting Ferroelectrics via Band-Gap Engineering and High-Field Poling | ACS Applied Materials & Interfaces

Frontiers | Band Gap Reduction in Ferroelectric BaTiO3 Through Heterovalent  Cu-Te Co-Doping for Visible-Light Photocatalysis
Frontiers | Band Gap Reduction in Ferroelectric BaTiO3 Through Heterovalent Cu-Te Co-Doping for Visible-Light Photocatalysis

Materials | Free Full-Text | Strategies to Improve the Energy Storage  Properties of Perovskite Lead-Free Relaxor Ferroelectrics: A Review | HTML
Materials | Free Full-Text | Strategies to Improve the Energy Storage Properties of Perovskite Lead-Free Relaxor Ferroelectrics: A Review | HTML

Band gap tuning of ferroelectric PbTiO3 by Mo doping | SpringerLink
Band gap tuning of ferroelectric PbTiO3 by Mo doping | SpringerLink

Reconfigurable two-dimensional optoelectronic devices enabled by local  ferroelectric polarization | Nature Communications
Reconfigurable two-dimensional optoelectronic devices enabled by local ferroelectric polarization | Nature Communications

Frontiers | Band Gap Reduction in Ferroelectric BaTiO3 Through Heterovalent  Cu-Te Co-Doping for Visible-Light Photocatalysis
Frontiers | Band Gap Reduction in Ferroelectric BaTiO3 Through Heterovalent Cu-Te Co-Doping for Visible-Light Photocatalysis

Ferroelectric Gating of Narrow Band-Gap Nanocrystal Arrays with Enhanced  Light–Matter Coupling | ACS Photonics
Ferroelectric Gating of Narrow Band-Gap Nanocrystal Arrays with Enhanced Light–Matter Coupling | ACS Photonics

A review of flexible perovskite oxide ferroelectric films and their  application - ScienceDirect
A review of flexible perovskite oxide ferroelectric films and their application - ScienceDirect

Purely one-dimensional ferroelectricity and antiferroelectricity from van  der Waals niobium oxide trihalides | npj Computational Materials
Purely one-dimensional ferroelectricity and antiferroelectricity from van der Waals niobium oxide trihalides | npj Computational Materials

Ferroelectric Gating of Narrow Band-Gap Nanocrystal Arrays with Enhanced  Light–Matter Coupling | ACS Photonics
Ferroelectric Gating of Narrow Band-Gap Nanocrystal Arrays with Enhanced Light–Matter Coupling | ACS Photonics

Ferroelectric Gating of Narrow Band-Gap Nanocrystal Arrays with Enhanced  Light–Matter Coupling | ACS Photonics
Ferroelectric Gating of Narrow Band-Gap Nanocrystal Arrays with Enhanced Light–Matter Coupling | ACS Photonics

Lead-free molecular ferroelectric [N,N-dimethylimidazole]3Bi2I9 with narrow  bandgap - ScienceDirect
Lead-free molecular ferroelectric [N,N-dimethylimidazole]3Bi2I9 with narrow bandgap - ScienceDirect

Enhanced Visible Photocatalytic Hydrogen Evolution of KN-Based  Semiconducting Ferroelectrics via Band-Gap Engineering and High-Field  Poling | ACS Applied Materials & Interfaces
Enhanced Visible Photocatalytic Hydrogen Evolution of KN-Based Semiconducting Ferroelectrics via Band-Gap Engineering and High-Field Poling | ACS Applied Materials & Interfaces

Comparison of crystal structures of (a) M1-Pbcm (antiferroelectric),... |  Download Scientific Diagram
Comparison of crystal structures of (a) M1-Pbcm (antiferroelectric),... | Download Scientific Diagram