Insights Into the Sunlight-Driven Water Oxidation by Ce and Er-Doped ZrO2

In the present work, the activity of Ce and Er-doped ZrO2 nanopowders for sun-driven photocatalytic water oxidation has been investigated. ZrO2 powders with tunable amounts of tetragonal, monoclinic and cubic polymorphs have been synthesized by introducing Ce and Er (from 0.5 to 10 mol % on an oxide...

Full description

Bibliographic Details
Main Authors: Simelys Hernández, Chiara Gionco, Thomas Husak, Micaela Castellino, José A. Muñoz-Tabares, Kristine R. Tolod, Elio Giamello, Maria C. Paganini, Nunzio Russo
Format: Article
Language:English
Published: Frontiers Media S.A. 2018-08-01
Series:Frontiers in Chemistry
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fchem.2018.00368/full
id doaj-e90e96a1eef94e82b553cdb81de73220
record_format Article
spelling doaj-e90e96a1eef94e82b553cdb81de732202020-11-24T21:17:49ZengFrontiers Media S.A.Frontiers in Chemistry2296-26462018-08-01610.3389/fchem.2018.00368370920Insights Into the Sunlight-Driven Water Oxidation by Ce and Er-Doped ZrO2Simelys Hernández0Chiara Gionco1Thomas Husak2Micaela Castellino3José A. Muñoz-Tabares4Kristine R. Tolod5Kristine R. Tolod6Elio Giamello7Maria C. Paganini8Nunzio Russo9CREST Group, Department of Applied Science and Technology (DISAT), Politecnico di Torino, Turin, ItalyDepartment of Chemistry, University of Torino, Turin, ItalyCREST Group, Department of Applied Science and Technology (DISAT), Politecnico di Torino, Turin, ItalyCenter for Sustainable Future Technologies (CSFT), Istituto Italiano di Tecnologia, Turin, ItalyCenter for Sustainable Future Technologies (CSFT), Istituto Italiano di Tecnologia, Turin, ItalyCREST Group, Department of Applied Science and Technology (DISAT), Politecnico di Torino, Turin, ItalyEcole Doctorale de Chimie, Université Claude Bernard Lyon 1, Lyon, FranceDepartment of Chemistry, University of Torino, Turin, ItalyDepartment of Chemistry, University of Torino, Turin, ItalyCREST Group, Department of Applied Science and Technology (DISAT), Politecnico di Torino, Turin, ItalyIn the present work, the activity of Ce and Er-doped ZrO2 nanopowders for sun-driven photocatalytic water oxidation has been investigated. ZrO2 powders with tunable amounts of tetragonal, monoclinic and cubic polymorphs have been synthesized by introducing Ce and Er (from 0.5 to 10 mol % on an oxide basis) through hydrothermal method. The aim of this work is to investigate the role of rare earth (RE) ions rich of electrons (Er3+) and with entirely empty levels (Ce4+) in the ZrO2 matrix for the sun-driven photocatalytic water oxidation reaction. The samples have been characterized by means of UV-Vis spectroscopy, X-Ray diffraction (XRD), N2 adsorption, X-ray photoelectron spectrophotometry (XPS) and transmission electronic microscopy (TEM) with energy dispersive spectroscopy (EDS). With respect to the bare ZrO2 mainly containing monoclinic (m-) phase, an increasing amount of rare-earth (RE) dopant was found to improve the specific BET surface area and to stabilize the tetragonal (t-) or cubic (c-) polymorphs of ZrO2 at room temperature. XRD data confirmed that dopants were mainly inserted in the t-ZrO2 phase. The photocatalytic O2 evolution from water under AM 1.5 G simulated sunlight illumination of the prepared samples have been correlated with their optical, structural and chemical properties. The effect of the dopant concentration on the chemical-physical and photocatalytic properties of the Er- and Ce-doped ZrO2 materials was elucidated. The samples with 5% of RE oxide were the most active, i.e., three times more than pure zirconia. Their superior photocatalytic activity was found to be mainly correlated to two factors: (i) an optimal surface concentration of RE ions of about 3.7%, which increased charge carriers separation in the photocatalysts surface due more superficial defects of the t-ZrO2 and a higher surface area, thus enhancing the reaction kinetics, (ii) a controlled amount of monoclinic vs. tetragonal (or cubic) polymorphs of zirconia with an optimum ratio of about 70/30 of t-ZrO2/m-ZrO2. Instead, the increased ability of the RE-doped ZrO2 to harvest visible light was found to have a secondary role on the photocatalytic activity of the Ce-doped ZrO2 material.https://www.frontiersin.org/article/10.3389/fchem.2018.00368/fullZrO2rare-earth dopantswater splittingthird-generation photocatalystsO2 evolution photocatalyst
collection DOAJ
language English
format Article
sources DOAJ
author Simelys Hernández
Chiara Gionco
Thomas Husak
Micaela Castellino
José A. Muñoz-Tabares
Kristine R. Tolod
Kristine R. Tolod
Elio Giamello
Maria C. Paganini
Nunzio Russo
spellingShingle Simelys Hernández
Chiara Gionco
Thomas Husak
Micaela Castellino
José A. Muñoz-Tabares
Kristine R. Tolod
Kristine R. Tolod
Elio Giamello
Maria C. Paganini
Nunzio Russo
Insights Into the Sunlight-Driven Water Oxidation by Ce and Er-Doped ZrO2
Frontiers in Chemistry
ZrO2
rare-earth dopants
water splitting
third-generation photocatalysts
O2 evolution photocatalyst
author_facet Simelys Hernández
Chiara Gionco
Thomas Husak
Micaela Castellino
José A. Muñoz-Tabares
Kristine R. Tolod
Kristine R. Tolod
Elio Giamello
Maria C. Paganini
Nunzio Russo
author_sort Simelys Hernández
title Insights Into the Sunlight-Driven Water Oxidation by Ce and Er-Doped ZrO2
title_short Insights Into the Sunlight-Driven Water Oxidation by Ce and Er-Doped ZrO2
title_full Insights Into the Sunlight-Driven Water Oxidation by Ce and Er-Doped ZrO2
title_fullStr Insights Into the Sunlight-Driven Water Oxidation by Ce and Er-Doped ZrO2
title_full_unstemmed Insights Into the Sunlight-Driven Water Oxidation by Ce and Er-Doped ZrO2
title_sort insights into the sunlight-driven water oxidation by ce and er-doped zro2
publisher Frontiers Media S.A.
series Frontiers in Chemistry
issn 2296-2646
publishDate 2018-08-01
description In the present work, the activity of Ce and Er-doped ZrO2 nanopowders for sun-driven photocatalytic water oxidation has been investigated. ZrO2 powders with tunable amounts of tetragonal, monoclinic and cubic polymorphs have been synthesized by introducing Ce and Er (from 0.5 to 10 mol % on an oxide basis) through hydrothermal method. The aim of this work is to investigate the role of rare earth (RE) ions rich of electrons (Er3+) and with entirely empty levels (Ce4+) in the ZrO2 matrix for the sun-driven photocatalytic water oxidation reaction. The samples have been characterized by means of UV-Vis spectroscopy, X-Ray diffraction (XRD), N2 adsorption, X-ray photoelectron spectrophotometry (XPS) and transmission electronic microscopy (TEM) with energy dispersive spectroscopy (EDS). With respect to the bare ZrO2 mainly containing monoclinic (m-) phase, an increasing amount of rare-earth (RE) dopant was found to improve the specific BET surface area and to stabilize the tetragonal (t-) or cubic (c-) polymorphs of ZrO2 at room temperature. XRD data confirmed that dopants were mainly inserted in the t-ZrO2 phase. The photocatalytic O2 evolution from water under AM 1.5 G simulated sunlight illumination of the prepared samples have been correlated with their optical, structural and chemical properties. The effect of the dopant concentration on the chemical-physical and photocatalytic properties of the Er- and Ce-doped ZrO2 materials was elucidated. The samples with 5% of RE oxide were the most active, i.e., three times more than pure zirconia. Their superior photocatalytic activity was found to be mainly correlated to two factors: (i) an optimal surface concentration of RE ions of about 3.7%, which increased charge carriers separation in the photocatalysts surface due more superficial defects of the t-ZrO2 and a higher surface area, thus enhancing the reaction kinetics, (ii) a controlled amount of monoclinic vs. tetragonal (or cubic) polymorphs of zirconia with an optimum ratio of about 70/30 of t-ZrO2/m-ZrO2. Instead, the increased ability of the RE-doped ZrO2 to harvest visible light was found to have a secondary role on the photocatalytic activity of the Ce-doped ZrO2 material.
topic ZrO2
rare-earth dopants
water splitting
third-generation photocatalysts
O2 evolution photocatalyst
url https://www.frontiersin.org/article/10.3389/fchem.2018.00368/full
work_keys_str_mv AT simelyshernandez insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
AT chiaragionco insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
AT thomashusak insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
AT micaelacastellino insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
AT joseamunoztabares insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
AT kristinertolod insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
AT kristinertolod insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
AT eliogiamello insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
AT mariacpaganini insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
AT nunziorusso insightsintothesunlightdrivenwateroxidationbyceanderdopedzro2
_version_ 1726011964145008640