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Electronic properties of wurtzite-phase InP nanowires determined by optical and magneto-optical spectroscopy

De Luca, Marta and Polimeni, Antonio. (2017) Electronic properties of wurtzite-phase InP nanowires determined by optical and magneto-optical spectroscopy. Applied Physics Reviews, 4. 041102.

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Official URL: https://edoc.unibas.ch/59677/

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Abstract

Thanks to their peculiar shape and dimensions, semiconductor nanowires (NWs) are emerging as building components of novel devices. The presence of wurtzite (WZ) phase in the lattice structure of non-nitride III-V NWs is one of the most surprising findings in these nanostructures: this phase, indeed, cannot be found in the same materials in the bulk form, where the zincblende (ZB) structure is ubiquitous, and therefore the WZ properties are poorly known. This review focuses on WZ InP NWs, because growth techniques have reached a high degree of control on the structural properties of this material, and optical studies performed on high-quality samples have allowed determining the most useful electronic properties, which are reviewed here. After an introduction summarizing the reasons for the interest in WZ InP nanowires (Sec. I), we give an overview on growth process and structural and optical properties of WZ InP NWs (Sec. II). In Sec. III, a complete picture of the energy and symmetry of the lowest-energy conduction and valence bands, as assessed by polarization-resolved photoluminescence (PL) and photoluminescence-excitation (PLE) studies is drawn and compared to all the available theoretical information. The elastic properties of WZ InP (determined by PL under hydrostatic pressure) and the radiative recombination dynamics of spatially direct and indirect (namely, occurring across the WZ/ZB interfaces) transitions are also discussed. Section IV, focuses on the magneto-optical studies of WZ InP NWs. The diagram of the energy levels of excitons in WZ materials—with and without magnetic field—is first provided. Then, all theoretical and experimental information available about the changes in the transport properties (i.e., carrier effective mass) caused by the ZB→WZ phase variation are reviewed. Different NW/magnetic field geometrical configurations, sensitive to polarization selection rules, highlight anisotropies in the diamagnetic shifts, Zeeman splitting, and field-induced circular dichroism of the emitted light. These characteristics are indeed inherent to the NW crystal symmetry. Such an exhaustive summary of the electronic properties of WZ InP NWs (energy, symmetry, thermal-, and pressure-induced shift of near band gap electronic bands, impurities binding energy, WZ and ZB band-offset values, exciton lifetime, exciton, electron, and hole effective masses) is valuable in the prediction of fundamental device parameters or as a reference for detailed band-structure calculations, as summarized in the last section (Sec. V), where also the open issues are critically discussed.
Faculties and Departments:05 Faculty of Science > Departement Physik > Physik > Experimental Material Physics (Zardo)
UniBasel Contributors:De Luca, Marta
Item Type:Article, refereed
Article Subtype:Research Article
Publisher:AIP Publishing
e-ISSN:1931-9401
Note:Publication type according to Uni Basel Research Database: Journal article
Identification Number:
Last Modified:28 Feb 2018 12:52
Deposited On:28 Feb 2018 12:52

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