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Fabrication and properties of coherent-structure In-polarity InN/In0.7Ga0.3N multiquantum wells emitting at around 1.55 μm.

Authors :
Che, Song-Bek
Mizuno, Tomoyasu
Wang, Xinqiang
Ishitani, Yoshihiro
Yoshikawa, Akihiko
Source :
Journal of Applied Physics; Oct2007, Vol. 102 Issue 8, p083539, 6p, 1 Color Photograph, 1 Diagram, 1 Chart, 5 Graphs
Publication Year :
2007

Abstract

In-polarity InN/In<subscript>0.7</subscript>Ga<subscript>0.3</subscript>N multiquantum wells (MQWs) were fabricated on a thick In<subscript>0.7</subscript>Ga<subscript>0.3</subscript>N interlayer/Ga-polarity GaN template by radio-frequency plasma-assisted molecular beam epitaxy. We then investigated how the lattice relaxation and piezoelectric field in InN wells affect their structural and photoluminescence (PL) properties, respectively. It was found that the critical thickness of InN well on In<subscript>0.7</subscript>Ga<subscript>0.3</subscript>N barrier was about 1 nm. A clear PL peak shift from 1.40 to 1.95 μm was observed depending on the InN well thickness from 0.7 to 2.0 nm. Correspondingly, PL-intensity reduction was also observed with increasing well thickness. No PL was observed for the sample with 4.1 nm thick InN wells. On the basis of theoretical estimation of transition energies in InN/In<subscript>0.7</subscript>Ga<subscript>0.3</subscript>N MQWs, it was confirmed that the quantum-confined Stark effect (QCSE) played an important role for both the observed PL peak shift and the decrease in intensity. The piezoelectric field in coherently grown InN wells was about 3 MV/cm but it was reduced to about 1–2 MV/cm for the samples with relaxed InN wells. It was confirmed that the InN wells must be thinner than the critical thickness (1 nm) in following two points: to reduce defects arising from lattice relaxation and to reduce QCSE leading to emission-peak redshift and a decrease in intensity. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00218979
Volume :
102
Issue :
8
Database :
Complementary Index
Journal :
Journal of Applied Physics
Publication Type :
Academic Journal
Accession number :
27345149
Full Text :
https://doi.org/10.1063/1.2800843