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The 51 pages that link to Doping (semiconductors), each with the reason it gives.
SiliconRelated: Dopants turn nearly pure silicon into controllable n-type and p-type material.
Solar cellRelated: Doping creates the p-type and n-type regions used in many cells.
Silicon carbideRelated: Doping sets carrier type and concentration in SiC power-device regions.
Gallium arsenideRelated: Dopants create the charge regions used in GaAs junctions and transistors.
Point defectRelated: Substitutional dopants create point defects that supply charge carriers.
MetalloidRelated: Doping turns metalloid silicon into material for controlled electronic devices.
MOSFETRelated: Doping defines the source, drain, body, and channel behavior.
Band theoryRelated: Impurity states shift carrier populations relative to the semiconductor’s bands.
DiodeRelated: Different dopants create the p-type and n-type regions of a junction diode.
Zinc sulfideRelated: Activators and impurities tune ZnS phosphor emission.
HeterojunctionRelated: Doping sets carrier populations and can shape fields near the interface.
ArsineRelated: Arsine can introduce arsenic donors into silicon and other semiconductor materials.
Semiconductor deviceRelated: Doping creates the carrier-rich regions used in many device structures.
Vacancy defectRelated: Vacancies can act as electrically active defects alongside dopant atoms.