Cargando…

Comprehensive evaluation of photoelectrochemical performance dependence on geometric features of ZnO nanorod electrodes

The impact of geometric features, light absorption spectra, and electrochemical active surface area on photoelectrochemical properties was investigated in this work. Nanoforests of ZnO nanorods with rationally controlled morphologies were grown on ITO substrates by the hydrothermal method and utiliz...

Descripción completa

Detalles Bibliográficos
Autores principales: Guler, Ali Can, Antos, Jan, Masar, Milan, Urbanek, Michal, Machovsky, Michal, Kuritka, Ivo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10228492/
https://www.ncbi.nlm.nih.gov/pubmed/37260485
http://dx.doi.org/10.1039/d3na00089c
_version_ 1785050976348012544
author Guler, Ali Can
Antos, Jan
Masar, Milan
Urbanek, Michal
Machovsky, Michal
Kuritka, Ivo
author_facet Guler, Ali Can
Antos, Jan
Masar, Milan
Urbanek, Michal
Machovsky, Michal
Kuritka, Ivo
author_sort Guler, Ali Can
collection PubMed
description The impact of geometric features, light absorption spectra, and electrochemical active surface area on photoelectrochemical properties was investigated in this work. Nanoforests of ZnO nanorods with rationally controlled morphologies were grown on ITO substrates by the hydrothermal method and utilized as a model for this purpose. The size of the nanorods was systematically adjusted by varying the concentration of polyethyleneimine as a cation surfactant in the growth solution. It was found that the emergent geometric characteristics (i.e. the aspect ratio) increased almost at the same pace as the electrochemically active surface area, but the light scattering effect slightly increased as a result of the random spatial orientation of the nanorods. The large surface area and the void space between nanorods increased the photon-to-current conversion efficiency by promoting the hole transfer process at the electrode/electrolyte interface. A maximum photocurrent density of 0.06 mA cm(−2) (0.5 V vs. NHE) for smaller diameter and length ZnO nanorods (ZnO–P1) was obtained under 365 nm UV light illumination. Additionally, we provide visual evidence that a shorter photogenerated hole diffusion distance results in improved charge separation efficiency using Mn(2+) as the photogenerated hole imaging agent. Therefore, the present work demonstrates a facile strategy for nanoforest morphology improvement for generating strong contact at the ZnO NR electrode/electrolyte interface, which is favourable in energy conversion and storage technologies.
format Online
Article
Text
id pubmed-10228492
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher RSC
record_format MEDLINE/PubMed
spelling pubmed-102284922023-05-31 Comprehensive evaluation of photoelectrochemical performance dependence on geometric features of ZnO nanorod electrodes Guler, Ali Can Antos, Jan Masar, Milan Urbanek, Michal Machovsky, Michal Kuritka, Ivo Nanoscale Adv Chemistry The impact of geometric features, light absorption spectra, and electrochemical active surface area on photoelectrochemical properties was investigated in this work. Nanoforests of ZnO nanorods with rationally controlled morphologies were grown on ITO substrates by the hydrothermal method and utilized as a model for this purpose. The size of the nanorods was systematically adjusted by varying the concentration of polyethyleneimine as a cation surfactant in the growth solution. It was found that the emergent geometric characteristics (i.e. the aspect ratio) increased almost at the same pace as the electrochemically active surface area, but the light scattering effect slightly increased as a result of the random spatial orientation of the nanorods. The large surface area and the void space between nanorods increased the photon-to-current conversion efficiency by promoting the hole transfer process at the electrode/electrolyte interface. A maximum photocurrent density of 0.06 mA cm(−2) (0.5 V vs. NHE) for smaller diameter and length ZnO nanorods (ZnO–P1) was obtained under 365 nm UV light illumination. Additionally, we provide visual evidence that a shorter photogenerated hole diffusion distance results in improved charge separation efficiency using Mn(2+) as the photogenerated hole imaging agent. Therefore, the present work demonstrates a facile strategy for nanoforest morphology improvement for generating strong contact at the ZnO NR electrode/electrolyte interface, which is favourable in energy conversion and storage technologies. RSC 2023-05-24 /pmc/articles/PMC10228492/ /pubmed/37260485 http://dx.doi.org/10.1039/d3na00089c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Guler, Ali Can
Antos, Jan
Masar, Milan
Urbanek, Michal
Machovsky, Michal
Kuritka, Ivo
Comprehensive evaluation of photoelectrochemical performance dependence on geometric features of ZnO nanorod electrodes
title Comprehensive evaluation of photoelectrochemical performance dependence on geometric features of ZnO nanorod electrodes
title_full Comprehensive evaluation of photoelectrochemical performance dependence on geometric features of ZnO nanorod electrodes
title_fullStr Comprehensive evaluation of photoelectrochemical performance dependence on geometric features of ZnO nanorod electrodes
title_full_unstemmed Comprehensive evaluation of photoelectrochemical performance dependence on geometric features of ZnO nanorod electrodes
title_short Comprehensive evaluation of photoelectrochemical performance dependence on geometric features of ZnO nanorod electrodes
title_sort comprehensive evaluation of photoelectrochemical performance dependence on geometric features of zno nanorod electrodes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10228492/
https://www.ncbi.nlm.nih.gov/pubmed/37260485
http://dx.doi.org/10.1039/d3na00089c
work_keys_str_mv AT guleralican comprehensiveevaluationofphotoelectrochemicalperformancedependenceongeometricfeaturesofznonanorodelectrodes
AT antosjan comprehensiveevaluationofphotoelectrochemicalperformancedependenceongeometricfeaturesofznonanorodelectrodes
AT masarmilan comprehensiveevaluationofphotoelectrochemicalperformancedependenceongeometricfeaturesofznonanorodelectrodes
AT urbanekmichal comprehensiveevaluationofphotoelectrochemicalperformancedependenceongeometricfeaturesofznonanorodelectrodes
AT machovskymichal comprehensiveevaluationofphotoelectrochemicalperformancedependenceongeometricfeaturesofznonanorodelectrodes
AT kuritkaivo comprehensiveevaluationofphotoelectrochemicalperformancedependenceongeometricfeaturesofznonanorodelectrodes