Cargando…

Controlled Growth of Semiconducting ZnO Nanorods for Piezoelectric Energy Harvesting-Based Nanogenerators

Zinc oxide (ZnO) nanorods have attracted considerable attention in recent years owing to their piezoelectric properties and potential applications in energy harvesting, sensing, and nanogenerators. Piezoelectric energy harvesting-based nanogenerators have emerged as promising new devices capable of...

Descripción completa

Detalles Bibliográficos
Autores principales: Abubakar, Shamsu, Tan, Sin Tee, Liew, Josephine Ying Chyi, Talib, Zainal Abidin, Sivasubramanian, Ramsundar, Vaithilingam, Chockalingam Aravind, Indira, Sridhar Sripadmanabhan, Oh, Won-Chun, Siburian, Rikson, Sagadevan, Suresh, Paiman, Suriati
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10056750/
https://www.ncbi.nlm.nih.gov/pubmed/36985919
http://dx.doi.org/10.3390/nano13061025
_version_ 1785016200064925696
author Abubakar, Shamsu
Tan, Sin Tee
Liew, Josephine Ying Chyi
Talib, Zainal Abidin
Sivasubramanian, Ramsundar
Vaithilingam, Chockalingam Aravind
Indira, Sridhar Sripadmanabhan
Oh, Won-Chun
Siburian, Rikson
Sagadevan, Suresh
Paiman, Suriati
author_facet Abubakar, Shamsu
Tan, Sin Tee
Liew, Josephine Ying Chyi
Talib, Zainal Abidin
Sivasubramanian, Ramsundar
Vaithilingam, Chockalingam Aravind
Indira, Sridhar Sripadmanabhan
Oh, Won-Chun
Siburian, Rikson
Sagadevan, Suresh
Paiman, Suriati
author_sort Abubakar, Shamsu
collection PubMed
description Zinc oxide (ZnO) nanorods have attracted considerable attention in recent years owing to their piezoelectric properties and potential applications in energy harvesting, sensing, and nanogenerators. Piezoelectric energy harvesting-based nanogenerators have emerged as promising new devices capable of converting mechanical energy into electric energy via nanoscale characterizations such as piezoresponse force microscopy (PFM). This technique was used to study the piezoresponse generated when an electric field was applied to the nanorods using a PFM probe. However, this work focuses on intensive studies that have been reported on the synthesis of ZnO nanostructures with controlled morphologies and their subsequent influence on piezoelectric nanogenerators. It is important to note that the diatomic nature of zinc oxide as a potential solid semiconductor and its electromechanical influence are the two main phenomena that drive the mechanism of any piezoelectric device. The results of our findings confirm that the performance of piezoelectric devices can be significantly improved by controlling the morphology and initial growth conditions of ZnO nanorods, particularly in terms of the magnitude of the piezoelectric coefficient factor (d33). Moreover, from this review, a proposed facile synthesis of ZnO nanorods, suitably produced to improve coupling and switchable polarization in piezoelectric devices, has been reported.
format Online
Article
Text
id pubmed-10056750
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-100567502023-03-30 Controlled Growth of Semiconducting ZnO Nanorods for Piezoelectric Energy Harvesting-Based Nanogenerators Abubakar, Shamsu Tan, Sin Tee Liew, Josephine Ying Chyi Talib, Zainal Abidin Sivasubramanian, Ramsundar Vaithilingam, Chockalingam Aravind Indira, Sridhar Sripadmanabhan Oh, Won-Chun Siburian, Rikson Sagadevan, Suresh Paiman, Suriati Nanomaterials (Basel) Review Zinc oxide (ZnO) nanorods have attracted considerable attention in recent years owing to their piezoelectric properties and potential applications in energy harvesting, sensing, and nanogenerators. Piezoelectric energy harvesting-based nanogenerators have emerged as promising new devices capable of converting mechanical energy into electric energy via nanoscale characterizations such as piezoresponse force microscopy (PFM). This technique was used to study the piezoresponse generated when an electric field was applied to the nanorods using a PFM probe. However, this work focuses on intensive studies that have been reported on the synthesis of ZnO nanostructures with controlled morphologies and their subsequent influence on piezoelectric nanogenerators. It is important to note that the diatomic nature of zinc oxide as a potential solid semiconductor and its electromechanical influence are the two main phenomena that drive the mechanism of any piezoelectric device. The results of our findings confirm that the performance of piezoelectric devices can be significantly improved by controlling the morphology and initial growth conditions of ZnO nanorods, particularly in terms of the magnitude of the piezoelectric coefficient factor (d33). Moreover, from this review, a proposed facile synthesis of ZnO nanorods, suitably produced to improve coupling and switchable polarization in piezoelectric devices, has been reported. MDPI 2023-03-13 /pmc/articles/PMC10056750/ /pubmed/36985919 http://dx.doi.org/10.3390/nano13061025 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Abubakar, Shamsu
Tan, Sin Tee
Liew, Josephine Ying Chyi
Talib, Zainal Abidin
Sivasubramanian, Ramsundar
Vaithilingam, Chockalingam Aravind
Indira, Sridhar Sripadmanabhan
Oh, Won-Chun
Siburian, Rikson
Sagadevan, Suresh
Paiman, Suriati
Controlled Growth of Semiconducting ZnO Nanorods for Piezoelectric Energy Harvesting-Based Nanogenerators
title Controlled Growth of Semiconducting ZnO Nanorods for Piezoelectric Energy Harvesting-Based Nanogenerators
title_full Controlled Growth of Semiconducting ZnO Nanorods for Piezoelectric Energy Harvesting-Based Nanogenerators
title_fullStr Controlled Growth of Semiconducting ZnO Nanorods for Piezoelectric Energy Harvesting-Based Nanogenerators
title_full_unstemmed Controlled Growth of Semiconducting ZnO Nanorods for Piezoelectric Energy Harvesting-Based Nanogenerators
title_short Controlled Growth of Semiconducting ZnO Nanorods for Piezoelectric Energy Harvesting-Based Nanogenerators
title_sort controlled growth of semiconducting zno nanorods for piezoelectric energy harvesting-based nanogenerators
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10056750/
https://www.ncbi.nlm.nih.gov/pubmed/36985919
http://dx.doi.org/10.3390/nano13061025
work_keys_str_mv AT abubakarshamsu controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT tansintee controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT liewjosephineyingchyi controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT talibzainalabidin controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT sivasubramanianramsundar controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT vaithilingamchockalingamaravind controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT indirasridharsripadmanabhan controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT ohwonchun controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT siburianrikson controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT sagadevansuresh controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators
AT paimansuriati controlledgrowthofsemiconductingznonanorodsforpiezoelectricenergyharvestingbasednanogenerators