Enhancement of Structural and Optical Characteristics of Nanostructured InGaN Using Electrochemical Etching

In this work, we used an alternating current electrochemical etching technique to fabricate nanostructured InGaN in potassium hydroxide, which serves as an electrolyte. The effects of different current densities during alternating current electrochemical etching on the morphological and optical char...

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Published in:International Journal of Nanoelectronics and Materials
Main Author: Daud A.N.M.; Radzali R.; Mahmood A.; Hassan Z.; Rahim A.F.A.; Malik M.F.I.A.; Abdullah M.H.; Noorsal E.
Format: Article
Language:English
Published: Universiti Malaysia Perlis 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185268791&doi=10.58915%2fijneam.v16iDECEMBER.416&partnerID=40&md5=7825872aeda26617d9aca23e9a8be114
id 2-s2.0-85185268791
spelling 2-s2.0-85185268791
Daud A.N.M.; Radzali R.; Mahmood A.; Hassan Z.; Rahim A.F.A.; Malik M.F.I.A.; Abdullah M.H.; Noorsal E.
Enhancement of Structural and Optical Characteristics of Nanostructured InGaN Using Electrochemical Etching
2023
International Journal of Nanoelectronics and Materials
16
Special Issue
10.58915/ijneam.v16iDECEMBER.416
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185268791&doi=10.58915%2fijneam.v16iDECEMBER.416&partnerID=40&md5=7825872aeda26617d9aca23e9a8be114
In this work, we used an alternating current electrochemical etching technique to fabricate nanostructured InGaN in potassium hydroxide, which serves as an electrolyte. The effects of different current densities during alternating current electrochemical etching on the morphological and optical characteristics of the nanostructured InGaN samples were investigated. The morphology of the nanostructured InGaN samples was determined by extreme high resolution field emission scanning electron microscopy. The pore size (~38 nm) and estimated porosity (~35%) were highest at 250 mA/cm2 current density. Furthermore, the surface roughness and average pore depth of the nanostructured InGaN increased with increasing current density, as revealed by atomic force microscopy. X-ray diffraction data showed a reduction in the full width at half maximum value and dislocation density of the nanostructured InGaN samples. The InGaN-like E2(high) phonon mode of the nanostructured InGaN sample was shifted to a higher frequency in the Raman spectra relative to that of the untreated sample, indicating that stress relaxation occurs in the nanostructured samples. Raman spectra showed an increase in intensity of the nanostructured InGaN samples showing improvement in optical property. The observed properties illustrate the potential of using nanostructured InGaN application in sensing devices. © 2023, Universiti Malaysia Perlis. All rights reserved.
Universiti Malaysia Perlis
19855761
English
Article
All Open Access; Hybrid Gold Open Access
author Daud A.N.M.; Radzali R.; Mahmood A.; Hassan Z.; Rahim A.F.A.; Malik M.F.I.A.; Abdullah M.H.; Noorsal E.
spellingShingle Daud A.N.M.; Radzali R.; Mahmood A.; Hassan Z.; Rahim A.F.A.; Malik M.F.I.A.; Abdullah M.H.; Noorsal E.
Enhancement of Structural and Optical Characteristics of Nanostructured InGaN Using Electrochemical Etching
author_facet Daud A.N.M.; Radzali R.; Mahmood A.; Hassan Z.; Rahim A.F.A.; Malik M.F.I.A.; Abdullah M.H.; Noorsal E.
author_sort Daud A.N.M.; Radzali R.; Mahmood A.; Hassan Z.; Rahim A.F.A.; Malik M.F.I.A.; Abdullah M.H.; Noorsal E.
title Enhancement of Structural and Optical Characteristics of Nanostructured InGaN Using Electrochemical Etching
title_short Enhancement of Structural and Optical Characteristics of Nanostructured InGaN Using Electrochemical Etching
title_full Enhancement of Structural and Optical Characteristics of Nanostructured InGaN Using Electrochemical Etching
title_fullStr Enhancement of Structural and Optical Characteristics of Nanostructured InGaN Using Electrochemical Etching
title_full_unstemmed Enhancement of Structural and Optical Characteristics of Nanostructured InGaN Using Electrochemical Etching
title_sort Enhancement of Structural and Optical Characteristics of Nanostructured InGaN Using Electrochemical Etching
publishDate 2023
container_title International Journal of Nanoelectronics and Materials
container_volume 16
container_issue Special Issue
doi_str_mv 10.58915/ijneam.v16iDECEMBER.416
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185268791&doi=10.58915%2fijneam.v16iDECEMBER.416&partnerID=40&md5=7825872aeda26617d9aca23e9a8be114
description In this work, we used an alternating current electrochemical etching technique to fabricate nanostructured InGaN in potassium hydroxide, which serves as an electrolyte. The effects of different current densities during alternating current electrochemical etching on the morphological and optical characteristics of the nanostructured InGaN samples were investigated. The morphology of the nanostructured InGaN samples was determined by extreme high resolution field emission scanning electron microscopy. The pore size (~38 nm) and estimated porosity (~35%) were highest at 250 mA/cm2 current density. Furthermore, the surface roughness and average pore depth of the nanostructured InGaN increased with increasing current density, as revealed by atomic force microscopy. X-ray diffraction data showed a reduction in the full width at half maximum value and dislocation density of the nanostructured InGaN samples. The InGaN-like E2(high) phonon mode of the nanostructured InGaN sample was shifted to a higher frequency in the Raman spectra relative to that of the untreated sample, indicating that stress relaxation occurs in the nanostructured samples. Raman spectra showed an increase in intensity of the nanostructured InGaN samples showing improvement in optical property. The observed properties illustrate the potential of using nanostructured InGaN application in sensing devices. © 2023, Universiti Malaysia Perlis. All rights reserved.
publisher Universiti Malaysia Perlis
issn 19855761
language English
format Article
accesstype All Open Access; Hybrid Gold Open Access
record_format scopus
collection Scopus
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