Cargando…

Photoelectrochemistry by Design: Tailoring the Nanoscale Structure of Pt/NiO Composites Leads to Enhanced Photoelectrochemical Hydrogen Evolution Performance

[Image: see text] Photoelectrochemical hydrogen evolution is a promising avenue to store the energy of sunlight in the form of chemical bonds. The recent rapid development of new synthetic approaches enables the nanoscale engineering of semiconductor photoelectrodes, thus tailoring their physicochem...

Descripción completa

Detalles Bibliográficos
Autores principales: Sápi, András, Varga, András, Samu, Gergely F., Dobó, Dorina, Juhász, Koppány L., Takács, Bettina, Varga, Erika, Kukovecz, Ákos, Kónya, Zoltán, Janáky, Csaba
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5467181/
https://www.ncbi.nlm.nih.gov/pubmed/28620447
http://dx.doi.org/10.1021/acs.jpcc.7b00429
_version_ 1783243221945548800
author Sápi, András
Varga, András
Samu, Gergely F.
Dobó, Dorina
Juhász, Koppány L.
Takács, Bettina
Varga, Erika
Kukovecz, Ákos
Kónya, Zoltán
Janáky, Csaba
author_facet Sápi, András
Varga, András
Samu, Gergely F.
Dobó, Dorina
Juhász, Koppány L.
Takács, Bettina
Varga, Erika
Kukovecz, Ákos
Kónya, Zoltán
Janáky, Csaba
author_sort Sápi, András
collection PubMed
description [Image: see text] Photoelectrochemical hydrogen evolution is a promising avenue to store the energy of sunlight in the form of chemical bonds. The recent rapid development of new synthetic approaches enables the nanoscale engineering of semiconductor photoelectrodes, thus tailoring their physicochemical properties toward efficient H(2) formation. In this work, we carried out the parallel optimization of the morphological features of the semiconductor light absorber (NiO) and the cocatalyst (Pt). While nanoporous NiO films were obtained by electrochemical anodization, the monodisperse Pt nanoparticles were synthesized using wet chemical methods. The Pt/NiO nanocomposites were characterized by XRD, XPS, SEM, ED, TEM, cyclic voltammetry, photovoltammetry, EIS, etc. The relative enhancement of the photocurrent was demonstrated as a function of the nanoparticle size and loading. For mass-specific surface activity the smallest nanoparticles (2.0 and 4.8 nm) showed the best performance. After deconvoluting the trivial geometrical effects (stemming from the variation of Pt particle size and thus the electroactive surface area), however, the intermediate particle sizes (4.8 and 7.2 nm) were found to be optimal. Under optimized conditions, a 20-fold increase in the photocurrent (and thus the H(2) evolution rates) was observed for the nanostructured Pt/NiO composite, compared to the benchmark nanoparticulate NiO film.
format Online
Article
Text
id pubmed-5467181
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-54671812017-06-13 Photoelectrochemistry by Design: Tailoring the Nanoscale Structure of Pt/NiO Composites Leads to Enhanced Photoelectrochemical Hydrogen Evolution Performance Sápi, András Varga, András Samu, Gergely F. Dobó, Dorina Juhász, Koppány L. Takács, Bettina Varga, Erika Kukovecz, Ákos Kónya, Zoltán Janáky, Csaba J Phys Chem C Nanomater Interfaces [Image: see text] Photoelectrochemical hydrogen evolution is a promising avenue to store the energy of sunlight in the form of chemical bonds. The recent rapid development of new synthetic approaches enables the nanoscale engineering of semiconductor photoelectrodes, thus tailoring their physicochemical properties toward efficient H(2) formation. In this work, we carried out the parallel optimization of the morphological features of the semiconductor light absorber (NiO) and the cocatalyst (Pt). While nanoporous NiO films were obtained by electrochemical anodization, the monodisperse Pt nanoparticles were synthesized using wet chemical methods. The Pt/NiO nanocomposites were characterized by XRD, XPS, SEM, ED, TEM, cyclic voltammetry, photovoltammetry, EIS, etc. The relative enhancement of the photocurrent was demonstrated as a function of the nanoparticle size and loading. For mass-specific surface activity the smallest nanoparticles (2.0 and 4.8 nm) showed the best performance. After deconvoluting the trivial geometrical effects (stemming from the variation of Pt particle size and thus the electroactive surface area), however, the intermediate particle sizes (4.8 and 7.2 nm) were found to be optimal. Under optimized conditions, a 20-fold increase in the photocurrent (and thus the H(2) evolution rates) was observed for the nanostructured Pt/NiO composite, compared to the benchmark nanoparticulate NiO film. American Chemical Society 2017-04-05 2017-06-08 /pmc/articles/PMC5467181/ /pubmed/28620447 http://dx.doi.org/10.1021/acs.jpcc.7b00429 Text en Copyright © 2017 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Sápi, András
Varga, András
Samu, Gergely F.
Dobó, Dorina
Juhász, Koppány L.
Takács, Bettina
Varga, Erika
Kukovecz, Ákos
Kónya, Zoltán
Janáky, Csaba
Photoelectrochemistry by Design: Tailoring the Nanoscale Structure of Pt/NiO Composites Leads to Enhanced Photoelectrochemical Hydrogen Evolution Performance
title Photoelectrochemistry by Design: Tailoring the Nanoscale Structure of Pt/NiO Composites Leads to Enhanced Photoelectrochemical Hydrogen Evolution Performance
title_full Photoelectrochemistry by Design: Tailoring the Nanoscale Structure of Pt/NiO Composites Leads to Enhanced Photoelectrochemical Hydrogen Evolution Performance
title_fullStr Photoelectrochemistry by Design: Tailoring the Nanoscale Structure of Pt/NiO Composites Leads to Enhanced Photoelectrochemical Hydrogen Evolution Performance
title_full_unstemmed Photoelectrochemistry by Design: Tailoring the Nanoscale Structure of Pt/NiO Composites Leads to Enhanced Photoelectrochemical Hydrogen Evolution Performance
title_short Photoelectrochemistry by Design: Tailoring the Nanoscale Structure of Pt/NiO Composites Leads to Enhanced Photoelectrochemical Hydrogen Evolution Performance
title_sort photoelectrochemistry by design: tailoring the nanoscale structure of pt/nio composites leads to enhanced photoelectrochemical hydrogen evolution performance
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5467181/
https://www.ncbi.nlm.nih.gov/pubmed/28620447
http://dx.doi.org/10.1021/acs.jpcc.7b00429
work_keys_str_mv AT sapiandras photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance
AT vargaandras photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance
AT samugergelyf photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance
AT dobodorina photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance
AT juhaszkoppanyl photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance
AT takacsbettina photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance
AT vargaerika photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance
AT kukoveczakos photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance
AT konyazoltan photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance
AT janakycsaba photoelectrochemistrybydesigntailoringthenanoscalestructureofptniocompositesleadstoenhancedphotoelectrochemicalhydrogenevolutionperformance