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Publikationsserver der RWTH Aachen University

Elektrischer Transport in GaN- und InN-Nanodrähten

Abstract

dc:description

This thesis discusses the analysis of the electrical transport in GaN and InN nanowires at room temperature and deep temperatures. From those measurements two different transport models for those two in matter of the band banding completely different materials have been found. To perform those measurements on these tinny nanostructures an appropriate contact technology has been processed. With a special developed electron beam mask it is possible to contact specifically chosen nanowires with ohmic contacts, although they aren't aligned in a certain way on the substrate. In the investigation of the GaN nanowires the main focus was the electrical transport in dependence of the diameter and the n-doping. With the use of IV-measurements on those MBE grown nanowires with different diameters at dark and under UV illumination as well as the decay of the persistent photocurrent, it was possible to find an for GaN untypical behaviour. The electrical transport in those wires is extremely diameter dependent. The photocurrent grows exponentially up to a critical diameter and later on only linear with the growing diameter. Below this critical diameter no persistent photocurrent could be measured with the used equipment, but afterwards it is possible. The dark current shows space charged limited current. With the help of those cognitions a diameter dependent transport model could be found. The transport phenomena in those wires is based on the diameter depending band bending at the edge of the wires caused by the fermi level pinning inside the forbidden band. This model can be fit to the data with the three parameter doping, fermi level pinning and wire diameter. On the base of those effects a method to determine the doping concentration inside those wires without field effect measurements and contact resistance has been developed. The defect structure inside those wires has been analysed with the help of spectral photoluminescence measurements. Here several defect bands have been found and it was possible with help of several contacts on one single wire to determine different defect regions along the wire and to explain them by the lattice mismatch between nanowire and substrate. Further temperature depending measurements and investigations on Schottky contacted wires as well as on GaN wires with AlN tunnel structures complete the work on GaN. The electrical characterisation on a large scale of undoped and doped InN nanowires shows linear growth of the dark current with the diameter up to wires of around 100 nm. Furthermore that III-V semiconductor shows metallic behaviour on temperature dependent investigations. From these results it can be concluded, that the transport occurs mainly on the edge of the nanowire, where due to the downwards fermi level pinning an electron accumulation zone is exists. This result is supported by the fact, that the thick highly n-doped nanowires over around 100 nm show a quadratic current growth with the diameter, as here the bulk material inside the wire becomes important for the transport. To investigate the transport behaviours of those InN nanowires well directed magneto transport measurements have been performed at deep temperatures 0,3 K and 30 K. With a perpendicular magnetic field universal current fluctuations could be found and the phase coherence length could be extracted from those data. Measurements with an axial magnetic field showed a periodic oscillation pattern with the period of $phi$. These periodic oscillation can be lead to coherent Eigenstates inside the 2DEG on the wires edges and is in completely sympathy with the result of the with the wire diameter linear growing current found in the room temperature measurements.

Degree

thesis:*
Grantor dc:publisher
Publikationsserver der RWTH Aachen University
Year dc:date
2008

Author and committee

dc:creator, dc:contributor.*
Author dc:creator
  • Richter, Thomas Fabian
Contributors dc:contributor
  • Lüth, Hans

Subjects

dc:subject × 15

Rights

dc:rights
Statement dc:rights
  • info:eu-repo/semantics/openAccess
Language dc:language
ger

Identifiers

dc:identifier.*

Chain of custody

source
Harvested from
RWTH Aachen University
Base URL
publications.rwth-aachen.de/oai2d
Last updated
2026-07-30
Source record
OAI-PMH GetRecord
citation

Richter, Thomas Fabian. Elektrischer Transport in GaN- und InN-Nanodrähten. Publikationsserver der RWTH Aachen University, 2008. https://publications.rwth-aachen.de/record/50569