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Both methods rely on the experimental determination of the alignment tensor for all domains in the multidomain system.
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The determination of the alignments of low-angle boundaries by transmission electron microscopy and electron backscattering diffraction (EBSD) methods is discussed.
The accurate determination of the band alignment of Zn0.778Cd0.222O/MgO heterojunction facilitates the design of optical and electronic devices based on Zn0.778Cd0.222O/MgO structure.
The accurate determination of the band alignment of non-polar ZnO/Zn1 − xMgxO heterojunctions is valuable for designing non-polar ZnO-based optoelectronic devices.
The accurate determination of the band alignment of ZnO/Zn1−xCdxO heterojunction facilitates the design of optical and electronic devices based on ZnO/Zn1−xCdxO.
The accurate determination of the band alignment of w-InN/h-BN is important for designing the devices.
The precise determination of the band alignment of Al2O3/Zn0.8Al0.2O heterojunction is of particular importance for gaining insight to the design of various electronic devices based on such heterointerface.
The accurate determination of the band alignment of InN/diamond indicates that the diamond can provide an effective carrier confinement in InN/diamond based electronic devices.
The determination of the proper alignment and secondary structure occur in parallel.
In contrast, calculating the above-mentioned two quality indicators is a more quantitative, objective measure for the determination of the quality of alignment of a given data set and the suitability of the set of input parameters for alignment.
Analysis of the angular dissymmetry of the scattered light intensity allowed the determination of polymer chain alignment in the flow direction, as well as a direct measurement of chain dimensions.
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