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      Polarity in GaN and ZnO: Theory, measurement, growth, and devices

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          Most cited references736

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          Nanobelts of semiconducting oxides.

          Ultralong beltlike (or ribbonlike) nanostructures (so-called nanobelts) were successfully synthesized for semiconducting oxides of zinc, tin, indium, cadmium, and gallium by simply evaporating the desired commercial metal oxide powders at high temperatures. The as-synthesized oxide nanobelts are pure, structurally uniform, and single crystalline, and most of them are free from defects and dislocations. They have a rectanglelike cross section with typical widths of 30 to 300 nanometers, width-to-thickness ratios of 5 to 10, and lengths of up to a few millimeters. The beltlike morphology appears to be a distinctive and common structural characteristic for the family of semiconducting oxides with cations of different valence states and materials of distinct crystallographic structures. The nanobelts could be an ideal system for fully understanding dimensionally confined transport phenomena in functional oxides and building functional devices along individual nanobelts.
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            Spontaneous polarization and piezoelectric constants of III-V nitrides

            The spontaneous polarization, dynamical Born charges, and piezoelectric constants of the III-V nitrides AlN, GaN, and InN are studied ab initio using the Berry phase approach to polarization in solids. The piezoelectric constants are found to be up 10 times larger than in conventional III-V's and II-VI's, and comparable to those of ZnO. Further properties at variance with those of conventional III-V compounds are the sign of the piezoelectric constants (positive as in II-VI's) and the very large spontaneous polarization.
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              Kelvin probe force microscopy

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                Author and article information

                Journal
                Applied Physics Reviews
                Applied Physics Reviews
                AIP Publishing
                1931-9401
                December 2016
                December 2016
                : 3
                : 4
                : 041303
                Article
                10.1063/1.4963919
                a91f644a-8044-4a13-9a25-77238858b3a4
                © 2016
                History

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