Synergetic and charge transfer properties of a metal oxide heterojunction: Photocatalytic activities

Improvement in the synthesis techniques and their optimum properties to be up-to-date is the global need for industrially scalable applications. The sol–gel solution combustion synthesis (SG-SCS) approach is an easy, time-/energy-efficient, and creates regularly ordered porous materials that have si...

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Main Author: Buzuayehu Abebe
Format: Article
Language:English
Published: Frontiers Media S.A. 2022-08-01
Series:Frontiers in Catalysis
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fctls.2022.950384/full
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author Buzuayehu Abebe
author_facet Buzuayehu Abebe
author_sort Buzuayehu Abebe
collection DOAJ
description Improvement in the synthesis techniques and their optimum properties to be up-to-date is the global need for industrially scalable applications. The sol–gel solution combustion synthesis (SG-SCS) approach is an easy, time-/energy-efficient, and creates regularly ordered porous materials that have significance in the ion-/mass-transport phenomenon. Furthermore, the approach also yields a decent heterojunction once optimized via the HSAB theory. Forming a heterojunction also tunes the crucial properties of the materials, thus, boosting the photocatalytic ability through charge transfer or/and synergistic roles. From the stability investigation results, the calcination temperature of 500°C is determined to be ideal. The X-ray diffraction and high-resolution transmission electron microscopy (HRTEM) techniques confirmed the nanoscale size of the NPs and NCs. The porous nature of the materials is revealed from the scanning electron microscopy micrographs and BET analysis; consistent results are also noted from selected area electron diffraction and HRTEM. The detected stacking faults on the IFFT image of HRTEM also confirmed the porous properties of the NCs. The precise elemental composition and local heterojunction within Zn/Fe(III)/Mn(III) oxides were confirmed in the HRTEM, X-ray photoelectron spectroscopy, and energy-dispersive X-ray studies. The significant charge transfer capability of the NCs more than bare ZnO was evidenced from the electrochemical analysis. The NCs were also effective on acid orange 8 (AO8) and Congo red (CR) dye degradations.
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spelling doaj.art-f638b81830704db093591b2f45a909222022-12-22T04:02:37ZengFrontiers Media S.A.Frontiers in Catalysis2673-78412022-08-01210.3389/fctls.2022.950384950384Synergetic and charge transfer properties of a metal oxide heterojunction: Photocatalytic activitiesBuzuayehu AbebeImprovement in the synthesis techniques and their optimum properties to be up-to-date is the global need for industrially scalable applications. The sol–gel solution combustion synthesis (SG-SCS) approach is an easy, time-/energy-efficient, and creates regularly ordered porous materials that have significance in the ion-/mass-transport phenomenon. Furthermore, the approach also yields a decent heterojunction once optimized via the HSAB theory. Forming a heterojunction also tunes the crucial properties of the materials, thus, boosting the photocatalytic ability through charge transfer or/and synergistic roles. From the stability investigation results, the calcination temperature of 500°C is determined to be ideal. The X-ray diffraction and high-resolution transmission electron microscopy (HRTEM) techniques confirmed the nanoscale size of the NPs and NCs. The porous nature of the materials is revealed from the scanning electron microscopy micrographs and BET analysis; consistent results are also noted from selected area electron diffraction and HRTEM. The detected stacking faults on the IFFT image of HRTEM also confirmed the porous properties of the NCs. The precise elemental composition and local heterojunction within Zn/Fe(III)/Mn(III) oxides were confirmed in the HRTEM, X-ray photoelectron spectroscopy, and energy-dispersive X-ray studies. The significant charge transfer capability of the NCs more than bare ZnO was evidenced from the electrochemical analysis. The NCs were also effective on acid orange 8 (AO8) and Congo red (CR) dye degradations.https://www.frontiersin.org/articles/10.3389/fctls.2022.950384/fullsolution combustion synthesisnanocompositesphotocatalytic degradationmechanismdyes
spellingShingle Buzuayehu Abebe
Synergetic and charge transfer properties of a metal oxide heterojunction: Photocatalytic activities
Frontiers in Catalysis
solution combustion synthesis
nanocomposites
photocatalytic degradation
mechanism
dyes
title Synergetic and charge transfer properties of a metal oxide heterojunction: Photocatalytic activities
title_full Synergetic and charge transfer properties of a metal oxide heterojunction: Photocatalytic activities
title_fullStr Synergetic and charge transfer properties of a metal oxide heterojunction: Photocatalytic activities
title_full_unstemmed Synergetic and charge transfer properties of a metal oxide heterojunction: Photocatalytic activities
title_short Synergetic and charge transfer properties of a metal oxide heterojunction: Photocatalytic activities
title_sort synergetic and charge transfer properties of a metal oxide heterojunction photocatalytic activities
topic solution combustion synthesis
nanocomposites
photocatalytic degradation
mechanism
dyes
url https://www.frontiersin.org/articles/10.3389/fctls.2022.950384/full
work_keys_str_mv AT buzuayehuabebe synergeticandchargetransferpropertiesofametaloxideheterojunctionphotocatalyticactivities