Preparation and Photocatalytic Activity of Potassium- Incorporated Titanium Oxide Nanostructures Produced by the Wet Corrosion Process Using Various Titanium Alloys

Nanostructured potassium-incorporated Ti-based oxides have attracted much attention because the incorporated potassium can influence their structural and physico-chemical properties. With the aim of tuning the structural and physical properties, we have demonstrated the wet corrosion process (WCP)...

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Main Authors: So Yoon Lee, Choong Hyun Lee, Do Yun Kim, Jean-Pierre Locquet, Jin Won Seo
Format: Article
Language:English
Published: MDPI AG 2015-08-01
Series:Nanomaterials
Subjects:
Online Access:http://www.mdpi.com/2079-4991/5/3/1397
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author So Yoon Lee
Choong Hyun Lee
Do Yun Kim
Jean-Pierre Locquet
Jin Won Seo
author_facet So Yoon Lee
Choong Hyun Lee
Do Yun Kim
Jean-Pierre Locquet
Jin Won Seo
author_sort So Yoon Lee
collection DOAJ
description Nanostructured potassium-incorporated Ti-based oxides have attracted much attention because the incorporated potassium can influence their structural and physico-chemical properties. With the aim of tuning the structural and physical properties, we have demonstrated the wet corrosion process (WCP) as a simple method for nanostructure fabrication using various Ti-based materials, namely Ti–6Al–4V alloy (TAV), Ti–Ni (TN) alloy and pure Ti, which have 90%, 50% and 100% initial Ti content, respectively. We have systematically investigated the relationship between the Ti content in the initial metal and the precise condition of WCP to control the structural and physical properties of the resulting nanostructures. The WCP treatment involved various concentrations of KOH solutions. The precise conditions for producing K-incorporated nanostructured titanium oxide films (nTOFs) were strongly dependent on the Ti content of the initial metal. Ti and TAV yielded one-dimensional nanowires of K-incorporated nTOFs after treatment with 10 mol/L-KOH solution, whereas TN required a higher concentration (20 mol/L-KOH solution) to produce comparable nanostructures. The obtained nanostructures revealed a blue-shift in UV absorption spectra due to the quantum confinement effects. A significant enhancement of the photocatalytic activity was observed via the chromomeric change and the intermediate formation of methylene blue molecules under UV irradiation. This study demonstrates the WCP as a simple, versatile and scalable method for the production of nanostructured K-incorporated nTOFs to be used as high-performance photocatalysts for environmental and energy applications.
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spelling doaj.art-3cefee259bd44f45af9cecf3340d72022022-12-22T01:19:22ZengMDPI AGNanomaterials2079-49912015-08-01531397141710.3390/nano5031397nano5031397Preparation and Photocatalytic Activity of Potassium- Incorporated Titanium Oxide Nanostructures Produced by the Wet Corrosion Process Using Various Titanium AlloysSo Yoon Lee0Choong Hyun Lee1Do Yun Kim2Jean-Pierre Locquet3Jin Won Seo4Department of Materials Engineering, KU Leuven, Kasteelpark Arenberg 44—Bus 2450, Leuven B-3001, BelgiumDepartment of Materials Engineering, the University of Tokyo, 7-3-1 Hongo, Tokyo 113-8656, JapanLaboratory of Photovoltaic Materials and Device, Department of Electrical Sustainable Energy, Delft University of Technology, Delft 2628CD, The NetherlandsLaboratory of Solid-State Physics and Magnetism, KU Leuven, Celestijnenlaan 200D, Leuven B-3001, BelgiumDepartment of Materials Engineering, KU Leuven, Kasteelpark Arenberg 44—Bus 2450, Leuven B-3001, BelgiumNanostructured potassium-incorporated Ti-based oxides have attracted much attention because the incorporated potassium can influence their structural and physico-chemical properties. With the aim of tuning the structural and physical properties, we have demonstrated the wet corrosion process (WCP) as a simple method for nanostructure fabrication using various Ti-based materials, namely Ti–6Al–4V alloy (TAV), Ti–Ni (TN) alloy and pure Ti, which have 90%, 50% and 100% initial Ti content, respectively. We have systematically investigated the relationship between the Ti content in the initial metal and the precise condition of WCP to control the structural and physical properties of the resulting nanostructures. The WCP treatment involved various concentrations of KOH solutions. The precise conditions for producing K-incorporated nanostructured titanium oxide films (nTOFs) were strongly dependent on the Ti content of the initial metal. Ti and TAV yielded one-dimensional nanowires of K-incorporated nTOFs after treatment with 10 mol/L-KOH solution, whereas TN required a higher concentration (20 mol/L-KOH solution) to produce comparable nanostructures. The obtained nanostructures revealed a blue-shift in UV absorption spectra due to the quantum confinement effects. A significant enhancement of the photocatalytic activity was observed via the chromomeric change and the intermediate formation of methylene blue molecules under UV irradiation. This study demonstrates the WCP as a simple, versatile and scalable method for the production of nanostructured K-incorporated nTOFs to be used as high-performance photocatalysts for environmental and energy applications.http://www.mdpi.com/2079-4991/5/3/1397titaniumTi–Al–VTiNi (TN)nanostructureswet corrosion process (WCP)photocatalysis
spellingShingle So Yoon Lee
Choong Hyun Lee
Do Yun Kim
Jean-Pierre Locquet
Jin Won Seo
Preparation and Photocatalytic Activity of Potassium- Incorporated Titanium Oxide Nanostructures Produced by the Wet Corrosion Process Using Various Titanium Alloys
Nanomaterials
titanium
Ti–Al–V
TiNi (TN)
nanostructures
wet corrosion process (WCP)
photocatalysis
title Preparation and Photocatalytic Activity of Potassium- Incorporated Titanium Oxide Nanostructures Produced by the Wet Corrosion Process Using Various Titanium Alloys
title_full Preparation and Photocatalytic Activity of Potassium- Incorporated Titanium Oxide Nanostructures Produced by the Wet Corrosion Process Using Various Titanium Alloys
title_fullStr Preparation and Photocatalytic Activity of Potassium- Incorporated Titanium Oxide Nanostructures Produced by the Wet Corrosion Process Using Various Titanium Alloys
title_full_unstemmed Preparation and Photocatalytic Activity of Potassium- Incorporated Titanium Oxide Nanostructures Produced by the Wet Corrosion Process Using Various Titanium Alloys
title_short Preparation and Photocatalytic Activity of Potassium- Incorporated Titanium Oxide Nanostructures Produced by the Wet Corrosion Process Using Various Titanium Alloys
title_sort preparation and photocatalytic activity of potassium incorporated titanium oxide nanostructures produced by the wet corrosion process using various titanium alloys
topic titanium
Ti–Al–V
TiNi (TN)
nanostructures
wet corrosion process (WCP)
photocatalysis
url http://www.mdpi.com/2079-4991/5/3/1397
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