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This indicates that the bandgap can be engineered in this type of process by varying the evaporation profiles, and consequently also that unintended profile variations should be noted and avoided.
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CIGS possesses superior absorption characteristics due to its direct bandgap, which can be engineered by the partial substitution of indium by gallium atoms.
Even though the bandgap of graphene can be engineered by depositing on particular substrates [6] or fabricating nanoribbons [7, 8], it deteriorates the mobility.
This work therefore shows that the Zn1– x Mg x O window layer sub-bandgap state density and thickness are critical parameters that can be engineered to minimize the effect of Schottky barriers on device performance.
This can be engineered.
First, NSCs can be engineered to produce different genes.
AIN and Al-rich AlGaN alloys covering wavelengths from 300 to 200 nm are ideal materials for the development of chip-scale UV light sources/sensors, because AlGaN is the only ultra-wide-bandgap semiconductor system by which the bandgap can be easily engineered through the use of alloying and heterostructure design.
The optical bandgap can be tuned by controlling the grain size in Ge and SiGe nanocrystals.
Comparing with the pentacene, the maximal hypsochromic shift of the optical bandgap can be reached by partial outermost substitution.
Intermediate bands within its bandgap can be created by doping.
(3) Emission bandgap can be designed to fulfill specific wavelength.
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