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Electron-hole Pair in Semiconductors | nuclear-power.com
Electron-hole Pair in Semiconductors | nuclear-power.com

Optical and Thermal Excitation in Semiconductors | nuclear-power.com
Optical and Thermal Excitation in Semiconductors | nuclear-power.com

10.5: Semiconductors- Band Gaps, Colors, Conductivity and Doping -  Chemistry LibreTexts
10.5: Semiconductors- Band Gaps, Colors, Conductivity and Doping - Chemistry LibreTexts

Catalysts | Free Full-Text | Recent Advances on Small Band Gap  Semiconductor Materials (≤2.1 eV) for Solar Water Splitting
Catalysts | Free Full-Text | Recent Advances on Small Band Gap Semiconductor Materials (≤2.1 eV) for Solar Water Splitting

Colour - Energy Bands | Britannica
Colour - Energy Bands | Britannica

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

Photoinduced Bandgap Renormalization and Exciton Binding Energy Reduction  in WS2 | ACS Nano
Photoinduced Bandgap Renormalization and Exciton Binding Energy Reduction in WS2 | ACS Nano

P/N Junctions and Band Gaps
P/N Junctions and Band Gaps

Time-resolved luminescence and excitation spectroscopy of co-doped  Gd3Ga3Al2O12 scintillating crystals | Scientific Reports
Time-resolved luminescence and excitation spectroscopy of co-doped Gd3Ga3Al2O12 scintillating crystals | Scientific Reports

Doping and devices - Open Solid State Notes
Doping and devices - Open Solid State Notes

Exciton-driven change of phonon modes causes strong temperature dependent  bandgap shift in nanoclusters | Nature Communications
Exciton-driven change of phonon modes causes strong temperature dependent bandgap shift in nanoclusters | Nature Communications

Structure and Electronic Effects from Mn and Nb Co-doping for Low Band Gap  BaTiO3 Ferroelectrics | The Journal of Physical Chemistry C
Structure and Electronic Effects from Mn and Nb Co-doping for Low Band Gap BaTiO3 Ferroelectrics | The Journal of Physical Chemistry C

A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap  of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina  Polymorphs | Inorganic Chemistry
A Generalized Semiempirical Approach to the Modeling of the Optical Band Gap of Ternary Al-(Ga, Nb, Ta, W) Oxides Containing Different Alumina Polymorphs | Inorganic Chemistry

Understanding of sub-band gap absorption of femtosecond-laser sulfur  hyperdoped silicon using synchrotron-based techniques | Scientific Reports
Understanding of sub-band gap absorption of femtosecond-laser sulfur hyperdoped silicon using synchrotron-based techniques | Scientific Reports

n-type doping of diamond
n-type doping of diamond

Frontiers | Different Effects of Mg and Si Doping on the Thermal Transport  of Gallium Nitride
Frontiers | Different Effects of Mg and Si Doping on the Thermal Transport of Gallium Nitride

Illustration of the band diagram of (a) slightly-doped and (b)... |  Download Scientific Diagram
Illustration of the band diagram of (a) slightly-doped and (b)... | Download Scientific Diagram

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

Controlling n-Type Molecular Doping via Regiochemistry and Polarity of  Pendant Groups on Low Band Gap Donor–Acceptor Copolymers | Macromolecules
Controlling n-Type Molecular Doping via Regiochemistry and Polarity of Pendant Groups on Low Band Gap Donor–Acceptor Copolymers | Macromolecules

Intrinsic and Extrinsic Semiconductors
Intrinsic and Extrinsic Semiconductors

What are the Benefits of Gapless States for Semiconductors?
What are the Benefits of Gapless States for Semiconductors?

Valence and conduction bands - Wikipedia
Valence and conduction bands - Wikipedia

Thermally induced band gap increase and high thermoelectric figure of merit  of n-type PbTe - ScienceDirect
Thermally induced band gap increase and high thermoelectric figure of merit of n-type PbTe - ScienceDirect

Electronic Structures, Bonding Configurations, and Band‐Gap‐Opening  Properties of Graphene Binding with Low‐Concentration Fluorine - Duan -  2015 - ChemistryOpen - Wiley Online Library
Electronic Structures, Bonding Configurations, and Band‐Gap‐Opening Properties of Graphene Binding with Low‐Concentration Fluorine - Duan - 2015 - ChemistryOpen - Wiley Online Library

Attosecond band-gap dynamics in silicon | Science
Attosecond band-gap dynamics in silicon | Science

6.23 Semiconductors
6.23 Semiconductors

Expand band gap and suppress bipolar excitation to optimize thermoelectric  performance of Bi0.35Sb1.65Te3 sintered materials - ScienceDirect
Expand band gap and suppress bipolar excitation to optimize thermoelectric performance of Bi0.35Sb1.65Te3 sintered materials - ScienceDirect