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Low-cost, open-source XYZ nanopositioner for high-precision analytical applications

Nanoscale positioning has numerous applications in both academia and industry. A growing number of applications require devices with long working distances and nanoscale resolutions. Friction–inertia piezoelectric positioners, which are based on the stick–slip mechanism, achieve both nanometer resol...

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Autores principales: Liao, Hsien-Shun, Werner, Christian, Slipets, Roman, Emil Larsen, Peter, Hwang, Ing-Shouh, Chang, Tien-Jen, Ulrich Danzebrink, Hans, Huang, Kuang-Yuh, Hwu, En-Te
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9133644/
https://www.ncbi.nlm.nih.gov/pubmed/35647417
http://dx.doi.org/10.1016/j.ohx.2022.e00317
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author Liao, Hsien-Shun
Werner, Christian
Slipets, Roman
Emil Larsen, Peter
Hwang, Ing-Shouh
Chang, Tien-Jen
Ulrich Danzebrink, Hans
Huang, Kuang-Yuh
Hwu, En-Te
author_facet Liao, Hsien-Shun
Werner, Christian
Slipets, Roman
Emil Larsen, Peter
Hwang, Ing-Shouh
Chang, Tien-Jen
Ulrich Danzebrink, Hans
Huang, Kuang-Yuh
Hwu, En-Te
author_sort Liao, Hsien-Shun
collection PubMed
description Nanoscale positioning has numerous applications in both academia and industry. A growing number of applications require devices with long working distances and nanoscale resolutions. Friction–inertia piezoelectric positioners, which are based on the stick–slip mechanism, achieve both nanometer resolution and centimeter-scale travel. However, the requirements of complex preload mechanism, precision machining, and precise assembly increase the cost of conventional friction–inertia nanopositioners. Herein we present the design of an open-source XYZ-axis nanopositioning system. Utilizing a magnet-based stick–slip driving mechanism, the proposed XYZ nanopositioner provides several advantages, including sub-nanometer resolution, a payload capacity of up to 12 kg (horizontal), compact size, low cost, and easy assembly; furthermore, the system is adjustment-free. The performance tests validate the precision of the system in both scanning and stepping operation modes. Moreover, the resonant spectra affirm the rigidity and dynamic response of the mechanism. In addition, we demonstrate the practical applications of this nanopositioner in various measurement techniques, including scanning electron microscopy, vibrometry, and atomic force microscopy. Furthermore, we present 11 variations of the nanopositioner designs that are either compatible with ultra-high-vacuum systems and other existing systems, 3D printable, or hacking commercial linear slides.
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spelling pubmed-91336442022-05-27 Low-cost, open-source XYZ nanopositioner for high-precision analytical applications Liao, Hsien-Shun Werner, Christian Slipets, Roman Emil Larsen, Peter Hwang, Ing-Shouh Chang, Tien-Jen Ulrich Danzebrink, Hans Huang, Kuang-Yuh Hwu, En-Te HardwareX Hardware Article Nanoscale positioning has numerous applications in both academia and industry. A growing number of applications require devices with long working distances and nanoscale resolutions. Friction–inertia piezoelectric positioners, which are based on the stick–slip mechanism, achieve both nanometer resolution and centimeter-scale travel. However, the requirements of complex preload mechanism, precision machining, and precise assembly increase the cost of conventional friction–inertia nanopositioners. Herein we present the design of an open-source XYZ-axis nanopositioning system. Utilizing a magnet-based stick–slip driving mechanism, the proposed XYZ nanopositioner provides several advantages, including sub-nanometer resolution, a payload capacity of up to 12 kg (horizontal), compact size, low cost, and easy assembly; furthermore, the system is adjustment-free. The performance tests validate the precision of the system in both scanning and stepping operation modes. Moreover, the resonant spectra affirm the rigidity and dynamic response of the mechanism. In addition, we demonstrate the practical applications of this nanopositioner in various measurement techniques, including scanning electron microscopy, vibrometry, and atomic force microscopy. Furthermore, we present 11 variations of the nanopositioner designs that are either compatible with ultra-high-vacuum systems and other existing systems, 3D printable, or hacking commercial linear slides. Elsevier 2022-05-19 /pmc/articles/PMC9133644/ /pubmed/35647417 http://dx.doi.org/10.1016/j.ohx.2022.e00317 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Hardware Article
Liao, Hsien-Shun
Werner, Christian
Slipets, Roman
Emil Larsen, Peter
Hwang, Ing-Shouh
Chang, Tien-Jen
Ulrich Danzebrink, Hans
Huang, Kuang-Yuh
Hwu, En-Te
Low-cost, open-source XYZ nanopositioner for high-precision analytical applications
title Low-cost, open-source XYZ nanopositioner for high-precision analytical applications
title_full Low-cost, open-source XYZ nanopositioner for high-precision analytical applications
title_fullStr Low-cost, open-source XYZ nanopositioner for high-precision analytical applications
title_full_unstemmed Low-cost, open-source XYZ nanopositioner for high-precision analytical applications
title_short Low-cost, open-source XYZ nanopositioner for high-precision analytical applications
title_sort low-cost, open-source xyz nanopositioner for high-precision analytical applications
topic Hardware Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9133644/
https://www.ncbi.nlm.nih.gov/pubmed/35647417
http://dx.doi.org/10.1016/j.ohx.2022.e00317
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