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Long-range ordering of two-dimensional wide bandgap tantalum oxide nanosheets in printed films

Two-dimensional oxide materials are a well-studied, interesting class of materials, enabled by the fact that their bulk layered metal oxides, such as titanates and niobates, can be easily exfoliated within minutes into 2D nanosheets. However, some promising oxide materials, such tantalum oxide, are...

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Autores principales: Timmerman, Melvin A., Xia, Rui, Wang, Yang, Sotthewes, Kai, Huijben, Mark, ten Elshof, Johan E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8101408/
https://www.ncbi.nlm.nih.gov/pubmed/33996097
http://dx.doi.org/10.1039/d1tc00801c
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author Timmerman, Melvin A.
Xia, Rui
Wang, Yang
Sotthewes, Kai
Huijben, Mark
ten Elshof, Johan E.
author_facet Timmerman, Melvin A.
Xia, Rui
Wang, Yang
Sotthewes, Kai
Huijben, Mark
ten Elshof, Johan E.
author_sort Timmerman, Melvin A.
collection PubMed
description Two-dimensional oxide materials are a well-studied, interesting class of materials, enabled by the fact that their bulk layered metal oxides, such as titanates and niobates, can be easily exfoliated within minutes into 2D nanosheets. However, some promising oxide materials, such tantalum oxide, are much more difficult to delaminate, taking several weeks, due to the higher charge density resulting in stronger Coulombic interactions between the layers. This intrinsic constraint has limited detailed studies for exploiting the promising properties of tantalum oxide 2D nanosheets towards enhanced catalysis and energy storage. Here, we have studied in detail the exfoliation mechanism of high charge density 2D materials, specifically tantalum oxide (TaO(3)) nanosheets. Optimization of tetrabutylphosphonium hydroxide (TBPOH) as the exfoliation agent in a 2 : 1 ratio to HTaO(3) has resulted in a dramatic reduction of the exfoliation time down to only 36 hours at 80 °C. Furthermore, single monolayers of TaO(3) nanosheets with >95% coverage have been achieved by Langmuir–Blodgett deposition, while thicker layers (ranging from several tens of nanometers up to microns) exhibiting long-range ordering of the present nanosheets have been realized through inkjet printing. Interestingly, scanning tunneling microscopy analysis indicated a wide bandgap of ∼5 eV for the single TaO(3) nanosheets. This value is significantly higher than the reported values between 3.5 and 4.3 eV for the layered RbTaO(3) parent compound, and opens up new opportunities for 2D oxide materials.
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spelling pubmed-81014082021-05-13 Long-range ordering of two-dimensional wide bandgap tantalum oxide nanosheets in printed films Timmerman, Melvin A. Xia, Rui Wang, Yang Sotthewes, Kai Huijben, Mark ten Elshof, Johan E. J Mater Chem C Mater Chemistry Two-dimensional oxide materials are a well-studied, interesting class of materials, enabled by the fact that their bulk layered metal oxides, such as titanates and niobates, can be easily exfoliated within minutes into 2D nanosheets. However, some promising oxide materials, such tantalum oxide, are much more difficult to delaminate, taking several weeks, due to the higher charge density resulting in stronger Coulombic interactions between the layers. This intrinsic constraint has limited detailed studies for exploiting the promising properties of tantalum oxide 2D nanosheets towards enhanced catalysis and energy storage. Here, we have studied in detail the exfoliation mechanism of high charge density 2D materials, specifically tantalum oxide (TaO(3)) nanosheets. Optimization of tetrabutylphosphonium hydroxide (TBPOH) as the exfoliation agent in a 2 : 1 ratio to HTaO(3) has resulted in a dramatic reduction of the exfoliation time down to only 36 hours at 80 °C. Furthermore, single monolayers of TaO(3) nanosheets with >95% coverage have been achieved by Langmuir–Blodgett deposition, while thicker layers (ranging from several tens of nanometers up to microns) exhibiting long-range ordering of the present nanosheets have been realized through inkjet printing. Interestingly, scanning tunneling microscopy analysis indicated a wide bandgap of ∼5 eV for the single TaO(3) nanosheets. This value is significantly higher than the reported values between 3.5 and 4.3 eV for the layered RbTaO(3) parent compound, and opens up new opportunities for 2D oxide materials. The Royal Society of Chemistry 2021-04-09 /pmc/articles/PMC8101408/ /pubmed/33996097 http://dx.doi.org/10.1039/d1tc00801c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Timmerman, Melvin A.
Xia, Rui
Wang, Yang
Sotthewes, Kai
Huijben, Mark
ten Elshof, Johan E.
Long-range ordering of two-dimensional wide bandgap tantalum oxide nanosheets in printed films
title Long-range ordering of two-dimensional wide bandgap tantalum oxide nanosheets in printed films
title_full Long-range ordering of two-dimensional wide bandgap tantalum oxide nanosheets in printed films
title_fullStr Long-range ordering of two-dimensional wide bandgap tantalum oxide nanosheets in printed films
title_full_unstemmed Long-range ordering of two-dimensional wide bandgap tantalum oxide nanosheets in printed films
title_short Long-range ordering of two-dimensional wide bandgap tantalum oxide nanosheets in printed films
title_sort long-range ordering of two-dimensional wide bandgap tantalum oxide nanosheets in printed films
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8101408/
https://www.ncbi.nlm.nih.gov/pubmed/33996097
http://dx.doi.org/10.1039/d1tc00801c
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