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  4. Synthesis, Morphological, and Electro-optical Characterizations of Metal/Semiconductor Nanowire Heterostructures
 
research article

Synthesis, Morphological, and Electro-optical Characterizations of Metal/Semiconductor Nanowire Heterostructures

Glaser, Markus
•
Kitzler, Andreas
•
Johannes, Andreas
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2016
Nano Letters

In this letter, we demonstrate the formation of unique Ga/GaAs/Si nanowire heterostructures, which were successfully implemented in nanoscale light-emitting devices with visible room temperature electroluminescence. Based on our recent approach for the integration of InAs/Si heterostructures into Si nanowires by ion implantation and flash lamp annealing, we developed a routine that has proven to be suitable for the monolithic integration of GaAs nanocrystallite segments into the core of silicon nanowires. The formation of a Ga segment adjacent to longer GaAs nanocrystallites resulted in Schottky-diode-like I/V characteristics with distinct electroluminescence originating from the GaAs nanocrystallite for the nanowire device operated in the reverse breakdown regime. The observed electroluminescence was ascribed to radiative band-to-band recombinations resulting in distinct emission peaks and a low contribution due to intraband transition, which were also observed under forward bias. Simulations of the obtained nanowire heterostructure confirmed the proposed impact ionization process responsible for hot carrier luminescence. This approach may enable a new route for on-chip photonic devices used for light emission or detection purposes.

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Type
research article
DOI
10.1021/acs.nanolett.6b00315
Web of Science ID

WOS:000377642700014

Author(s)
Glaser, Markus
Kitzler, Andreas
Johannes, Andreas
Prucnal, Slawomir
Potts, Heidi
Conesa-Boj, Sonia  
Filipovic, Lidija
Kosina, Hans
Skorupa, Wolfgang
Bertagnolli, Emmerich
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Date Issued

2016

Publisher

American Chemical Society

Published in
Nano Letters
Volume

16

Issue

6

Start page

3507

End page

3513

Subjects

Nemowires

•

heterostructures

•

Schottky

•

GaAs

•

Si

•

electroluminescence

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LMSC1  
Available on Infoscience
July 19, 2016
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/127641
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