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Deconvolution of the density of states of tip and sample through constant-current tunneling spectroscopy

We introduce a scheme to obtain the deconvolved density of states (DOS) of the tip and sample, from scanning tunneling spectra determined in the constant-current mode (z–V spectroscopy). The scheme is based on the validity of the Wentzel–Kramers–Brillouin (WKB) approximation and the trapezoidal appr...

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Autores principales: Pfeifer, Holger, Koslowski, Berndt, Ziemann, Paul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Beilstein-Institut 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3190630/
https://www.ncbi.nlm.nih.gov/pubmed/22003466
http://dx.doi.org/10.3762/bjnano.2.64
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author Pfeifer, Holger
Koslowski, Berndt
Ziemann, Paul
author_facet Pfeifer, Holger
Koslowski, Berndt
Ziemann, Paul
author_sort Pfeifer, Holger
collection PubMed
description We introduce a scheme to obtain the deconvolved density of states (DOS) of the tip and sample, from scanning tunneling spectra determined in the constant-current mode (z–V spectroscopy). The scheme is based on the validity of the Wentzel–Kramers–Brillouin (WKB) approximation and the trapezoidal approximation of the electron potential within the tunneling barrier. In a numerical treatment of z–V spectroscopy, we first analyze how the position and amplitude of characteristic DOS features change depending on parameters such as the energy position, width, barrier height, and the tip–sample separation. Then it is shown that the deconvolution scheme is capable of recovering the original DOS of tip and sample with an accuracy of better than 97% within the one-dimensional WKB approximation. Application of the deconvolution scheme to experimental data obtained on Nb(110) reveals a convergent behavior, providing separately the DOS of both sample and tip. In detail, however, there are systematic quantitative deviations between the DOS results based on z–V data and those based on I–V data. This points to an inconsistency between the assumed and the actual transmission probability function. Indeed, the experimentally determined differential barrier height still clearly deviates from that derived from the deconvolved DOS. Thus, the present progress in developing a reliable deconvolution scheme shifts the focus towards how to access the actual transmission probability function.
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spelling pubmed-31906302011-10-14 Deconvolution of the density of states of tip and sample through constant-current tunneling spectroscopy Pfeifer, Holger Koslowski, Berndt Ziemann, Paul Beilstein J Nanotechnol Full Research Paper We introduce a scheme to obtain the deconvolved density of states (DOS) of the tip and sample, from scanning tunneling spectra determined in the constant-current mode (z–V spectroscopy). The scheme is based on the validity of the Wentzel–Kramers–Brillouin (WKB) approximation and the trapezoidal approximation of the electron potential within the tunneling barrier. In a numerical treatment of z–V spectroscopy, we first analyze how the position and amplitude of characteristic DOS features change depending on parameters such as the energy position, width, barrier height, and the tip–sample separation. Then it is shown that the deconvolution scheme is capable of recovering the original DOS of tip and sample with an accuracy of better than 97% within the one-dimensional WKB approximation. Application of the deconvolution scheme to experimental data obtained on Nb(110) reveals a convergent behavior, providing separately the DOS of both sample and tip. In detail, however, there are systematic quantitative deviations between the DOS results based on z–V data and those based on I–V data. This points to an inconsistency between the assumed and the actual transmission probability function. Indeed, the experimentally determined differential barrier height still clearly deviates from that derived from the deconvolved DOS. Thus, the present progress in developing a reliable deconvolution scheme shifts the focus towards how to access the actual transmission probability function. Beilstein-Institut 2011-09-19 /pmc/articles/PMC3190630/ /pubmed/22003466 http://dx.doi.org/10.3762/bjnano.2.64 Text en Copyright © 2011, Pfeifer et al. https://creativecommons.org/licenses/by/2.0https://www.beilstein-journals.org/bjnano/termsThis is an Open Access article under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. The license is subject to the Beilstein Journal of Nanotechnology terms and conditions: (https://www.beilstein-journals.org/bjnano/terms)
spellingShingle Full Research Paper
Pfeifer, Holger
Koslowski, Berndt
Ziemann, Paul
Deconvolution of the density of states of tip and sample through constant-current tunneling spectroscopy
title Deconvolution of the density of states of tip and sample through constant-current tunneling spectroscopy
title_full Deconvolution of the density of states of tip and sample through constant-current tunneling spectroscopy
title_fullStr Deconvolution of the density of states of tip and sample through constant-current tunneling spectroscopy
title_full_unstemmed Deconvolution of the density of states of tip and sample through constant-current tunneling spectroscopy
title_short Deconvolution of the density of states of tip and sample through constant-current tunneling spectroscopy
title_sort deconvolution of the density of states of tip and sample through constant-current tunneling spectroscopy
topic Full Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3190630/
https://www.ncbi.nlm.nih.gov/pubmed/22003466
http://dx.doi.org/10.3762/bjnano.2.64
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