Home

Rond en rond Inzet hardware doping low band gap 0.05 ev Uluru Traditie voertuig

Improved conductivity and ionic mobility in nanostructured thin films via  aliovalent doping for ultra-high rate energy storage - Nanoscale Advances  (RSC Publishing) DOI:10.1039/D0NA00160K
Improved conductivity and ionic mobility in nanostructured thin films via aliovalent doping for ultra-high rate energy storage - Nanoscale Advances (RSC Publishing) DOI:10.1039/D0NA00160K

Effects of nonmetal elements doping on the electronic structures of InNbO4:  first-principles calculations - IOPscience
Effects of nonmetal elements doping on the electronic structures of InNbO4: first-principles calculations - IOPscience

Electronic structure of O-doped SiGe calculated by DFT + <em>U</em> method
Electronic structure of O-doped SiGe calculated by DFT + <em>U</em> method

1D doped semiconductors
1D doped semiconductors

Pathway to oxide photovoltaics via band-structure engineering of SnO: APL  Materials: Vol 4, No 10
Pathway to oxide photovoltaics via band-structure engineering of SnO: APL Materials: Vol 4, No 10

Journal Material Science | Open Access Publishers
Journal Material Science | Open Access Publishers

Doping evolution of the Mott–Hubbard landscape in infinite-layer nickelates  | PNAS
Doping evolution of the Mott–Hubbard landscape in infinite-layer nickelates | PNAS

Evidence of indirect gap in monolayer WSe2 | Nature Communications
Evidence of indirect gap in monolayer WSe2 | Nature Communications

αhν) 2 -hν graphs for different ZnO based films to estimate the band... |  Download Scientific Diagram
αhν) 2 -hν graphs for different ZnO based films to estimate the band... | Download Scientific Diagram

Electronic structure and insulating gap in epitaxial VO2 polymorphs: APL  Materials: Vol 3, No 12
Electronic structure and insulating gap in epitaxial VO2 polymorphs: APL Materials: Vol 3, No 12

Introduction To Semiconductors (all content)
Introduction To Semiconductors (all content)

1D doped semiconductors
1D doped semiconductors

Catalysts | Free Full-Text | Doping of Graphitic Carbon Nitride with  Non-Metal Elements and Its Applications in Photocatalysis | HTML
Catalysts | Free Full-Text | Doping of Graphitic Carbon Nitride with Non-Metal Elements and Its Applications in Photocatalysis | HTML

1D doped semiconductors
1D doped semiconductors

Investigation of energy band at atomic layer deposited AZO/β-Ga2O3 ( 2 ¯ 01  $$ \overline{2}01 $$ ) heterojunctions | Nanoscale Research Letters | Full  Text
Investigation of energy band at atomic layer deposited AZO/β-Ga2O3 ( 2 ¯ 01 $$ \overline{2}01 $$ ) heterojunctions | Nanoscale Research Letters | Full Text

Tuning the band gap of M-doped titanate nanotubes (M = Fe, Co, Ni, and Cu):  an experimental and theoretical study - Nanoscale Advances (RSC Publishing)  DOI:10.1039/D0NA00932F
Tuning the band gap of M-doped titanate nanotubes (M = Fe, Co, Ni, and Cu): an experimental and theoretical study - Nanoscale Advances (RSC Publishing) DOI:10.1039/D0NA00932F

Catalysts | Free Full-Text | Review of First-Principles Studies of TiO2:  Nanocluster, Bulk, and Material Interface | HTML
Catalysts | Free Full-Text | Review of First-Principles Studies of TiO2: Nanocluster, Bulk, and Material Interface | HTML

Quantum engineering of non-equilibrium efficient p-doping in ultra-wide band -gap nitrides | Light: Science & Applications
Quantum engineering of non-equilibrium efficient p-doping in ultra-wide band -gap nitrides | Light: Science & Applications

Tuning the band gap of M-doped titanate nanotubes (M = Fe, Co, Ni, and Cu):  an experimental and theoretical study - Nanoscale Advances (RSC Publishing)  DOI:10.1039/D0NA00932F
Tuning the band gap of M-doped titanate nanotubes (M = Fe, Co, Ni, and Cu): an experimental and theoretical study - Nanoscale Advances (RSC Publishing) DOI:10.1039/D0NA00932F

Acceptor doping, hydration and band-gap engineering of BaZrO3 -  ScienceDirect
Acceptor doping, hydration and band-gap engineering of BaZrO3 - ScienceDirect

Investigation of energy band at atomic layer deposited AZO/β-Ga2O3 ( 2 ¯ 01  $$ \overline{2}01 $$ ) heterojunctions | Nanoscale Research Letters | Full  Text
Investigation of energy band at atomic layer deposited AZO/β-Ga2O3 ( 2 ¯ 01 $$ \overline{2}01 $$ ) heterojunctions | Nanoscale Research Letters | Full Text

Band-gap plots of the pure and Na-doped Cu2Se thin films | Download  Scientific Diagram
Band-gap plots of the pure and Na-doped Cu2Se thin films | Download Scientific Diagram

Ba-induced phase segregation and band gap reduction in mixed-halide  inorganic perovskite solar cells | Nature Communications
Ba-induced phase segregation and band gap reduction in mixed-halide inorganic perovskite solar cells | Nature Communications

Band Gap Energy - an overview | ScienceDirect Topics
Band Gap Energy - an overview | ScienceDirect Topics