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Resolving the Structure of a Well-Ordered Hydroxyl Overlayer on In(2)O(3)(111): Nanomanipulation and Theory
[Image: see text] Changes in chemical and physical properties resulting from water adsorption play an important role in the characterization and performance of device-relevant materials. Studies of model oxides with well-characterized surfaces can provide detailed information that is vital for a gen...
Autores principales: | , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American
Chemical Society
2017
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5707633/ https://www.ncbi.nlm.nih.gov/pubmed/29091395 http://dx.doi.org/10.1021/acsnano.7b06387 |
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author | Wagner, Margareta Lackner, Peter Seiler, Steffen Brunsch, Achim Bliem, Roland Gerhold, Stefan Wang, Zhiming Osiecki, Jacek Schulte, Karina Boatner, Lynn A. Schmid, Michael Meyer, Bernd Diebold, Ulrike |
author_facet | Wagner, Margareta Lackner, Peter Seiler, Steffen Brunsch, Achim Bliem, Roland Gerhold, Stefan Wang, Zhiming Osiecki, Jacek Schulte, Karina Boatner, Lynn A. Schmid, Michael Meyer, Bernd Diebold, Ulrike |
author_sort | Wagner, Margareta |
collection | PubMed |
description | [Image: see text] Changes in chemical and physical properties resulting from water adsorption play an important role in the characterization and performance of device-relevant materials. Studies of model oxides with well-characterized surfaces can provide detailed information that is vital for a general understanding of water–oxide interactions. In this work, we study single crystals of indium oxide, the prototypical transparent contact material that is heavily used in a wide range of applications and most prominently in optoelectronic technologies. Water adsorbs dissociatively already at temperatures as low as 100 K, as confirmed by scanning tunneling microscopy (STM), photoelectron spectroscopy, and density functional theory. This dissociation takes place on lattice sites of the defect-free surface. While the In(2)O(3)(111)-(1 × 1) surface offers four types of surface oxygen atoms (12 atoms per unit cell in total), water dissociation happens exclusively at one of them together with a neighboring pair of 5-fold coordinated In atoms. These O–In groups are symmetrically arranged around the 6-fold coordinated In atoms at the surface. At room temperature, the In(2)O(3)(111) surface thus saturates at three dissociated water molecules per unit cell, leading to a well-ordered hydroxylated surface with (1 × 1) symmetry, where the three water O(W)H groups plus the surface O(S)H groups are imaged together as one bright triangle in STM. Manipulations with the STM tip by means of voltage pulses preferentially remove the H atom of one surface O(S)H group per triangle. The change in contrast due to strong local band bending provides insights into the internal structure of these bright triangles. The experimental results are further confirmed by quantitative simulations of the STM image corrugation. |
format | Online Article Text |
id | pubmed-5707633 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2017 |
publisher | American
Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-57076332017-12-04 Resolving the Structure of a Well-Ordered Hydroxyl Overlayer on In(2)O(3)(111): Nanomanipulation and Theory Wagner, Margareta Lackner, Peter Seiler, Steffen Brunsch, Achim Bliem, Roland Gerhold, Stefan Wang, Zhiming Osiecki, Jacek Schulte, Karina Boatner, Lynn A. Schmid, Michael Meyer, Bernd Diebold, Ulrike ACS Nano [Image: see text] Changes in chemical and physical properties resulting from water adsorption play an important role in the characterization and performance of device-relevant materials. Studies of model oxides with well-characterized surfaces can provide detailed information that is vital for a general understanding of water–oxide interactions. In this work, we study single crystals of indium oxide, the prototypical transparent contact material that is heavily used in a wide range of applications and most prominently in optoelectronic technologies. Water adsorbs dissociatively already at temperatures as low as 100 K, as confirmed by scanning tunneling microscopy (STM), photoelectron spectroscopy, and density functional theory. This dissociation takes place on lattice sites of the defect-free surface. While the In(2)O(3)(111)-(1 × 1) surface offers four types of surface oxygen atoms (12 atoms per unit cell in total), water dissociation happens exclusively at one of them together with a neighboring pair of 5-fold coordinated In atoms. These O–In groups are symmetrically arranged around the 6-fold coordinated In atoms at the surface. At room temperature, the In(2)O(3)(111) surface thus saturates at three dissociated water molecules per unit cell, leading to a well-ordered hydroxylated surface with (1 × 1) symmetry, where the three water O(W)H groups plus the surface O(S)H groups are imaged together as one bright triangle in STM. Manipulations with the STM tip by means of voltage pulses preferentially remove the H atom of one surface O(S)H group per triangle. The change in contrast due to strong local band bending provides insights into the internal structure of these bright triangles. The experimental results are further confirmed by quantitative simulations of the STM image corrugation. American Chemical Society 2017-11-01 2017-11-28 /pmc/articles/PMC5707633/ /pubmed/29091395 http://dx.doi.org/10.1021/acsnano.7b06387 Text en Copyright © 2017 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited. |
spellingShingle | Wagner, Margareta Lackner, Peter Seiler, Steffen Brunsch, Achim Bliem, Roland Gerhold, Stefan Wang, Zhiming Osiecki, Jacek Schulte, Karina Boatner, Lynn A. Schmid, Michael Meyer, Bernd Diebold, Ulrike Resolving the Structure of a Well-Ordered Hydroxyl Overlayer on In(2)O(3)(111): Nanomanipulation and Theory |
title | Resolving
the Structure of a Well-Ordered Hydroxyl
Overlayer on In(2)O(3)(111): Nanomanipulation and
Theory |
title_full | Resolving
the Structure of a Well-Ordered Hydroxyl
Overlayer on In(2)O(3)(111): Nanomanipulation and
Theory |
title_fullStr | Resolving
the Structure of a Well-Ordered Hydroxyl
Overlayer on In(2)O(3)(111): Nanomanipulation and
Theory |
title_full_unstemmed | Resolving
the Structure of a Well-Ordered Hydroxyl
Overlayer on In(2)O(3)(111): Nanomanipulation and
Theory |
title_short | Resolving
the Structure of a Well-Ordered Hydroxyl
Overlayer on In(2)O(3)(111): Nanomanipulation and
Theory |
title_sort | resolving
the structure of a well-ordered hydroxyl
overlayer on in(2)o(3)(111): nanomanipulation and
theory |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5707633/ https://www.ncbi.nlm.nih.gov/pubmed/29091395 http://dx.doi.org/10.1021/acsnano.7b06387 |
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