Cargando…

Twin-Wire Networks for Zero Interconnect, High-Density 4-Wire Electrical Characterizations of Materials

Four-wire measurements have been introduced by Lord Kelvin in 1861 and have since become the standard technique for characterizing small resistances and impedances. However, high-density 4-wire measurements are generally complex, time-consuming, and inefficient because of constraints on interconnect...

Descripción completa

Detalles Bibliográficos
Autores principales: Montoya, Nerio Andrés, Criscuolo, Valeria, Lo Presti, Andrea, Vecchione, Raffaele, Falconi, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AAAS 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8771198/
https://www.ncbi.nlm.nih.gov/pubmed/35098140
http://dx.doi.org/10.34133/2022/9874249
_version_ 1784635547558346752
author Montoya, Nerio Andrés
Criscuolo, Valeria
Lo Presti, Andrea
Vecchione, Raffaele
Falconi, Christian
author_facet Montoya, Nerio Andrés
Criscuolo, Valeria
Lo Presti, Andrea
Vecchione, Raffaele
Falconi, Christian
author_sort Montoya, Nerio Andrés
collection PubMed
description Four-wire measurements have been introduced by Lord Kelvin in 1861 and have since become the standard technique for characterizing small resistances and impedances. However, high-density 4-wire measurements are generally complex, time-consuming, and inefficient because of constraints on interconnects, pads, external wires, and mechanical contacts, thus reducing reproducibility, statistical significance, and throughput. Here, we introduce, systematically design, analyze, and experimentally validate zero interconnect networks interfaced to external instrumentation by couples of twin wire. 3D-printed holders with magnets, interconnects, nonadhesive layers, and spacers can effortlessly establish excellent electrical connections with tunable or minimum contact forces and enable accurate measurements even for delicate devices, such as thin metals on soft polymers. As an example, we measured all the resistances of a twin-wire 29-resistor network made of silver-nanoparticle ink printed on polyimide, paper, or photo paper, including during sintering or temperature calibration, resulting in an unprecedentedly easy and accurate characterization of both resistivity and its temperature coefficient. The theoretical framework and experimental strategies reported here represent a breakthrough toward zero interconnect, simple, and efficient high-density 4-wire characterizations, can be generalized to other 4-wire measurements (impedances, sensors) and can open the way to more statistically meaningful and reproducible analyses of materials, high-throughput measurements, and minimally invasive characterizations of biomaterials.
format Online
Article
Text
id pubmed-8771198
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher AAAS
record_format MEDLINE/PubMed
spelling pubmed-87711982022-01-28 Twin-Wire Networks for Zero Interconnect, High-Density 4-Wire Electrical Characterizations of Materials Montoya, Nerio Andrés Criscuolo, Valeria Lo Presti, Andrea Vecchione, Raffaele Falconi, Christian Research (Wash D C) Research Article Four-wire measurements have been introduced by Lord Kelvin in 1861 and have since become the standard technique for characterizing small resistances and impedances. However, high-density 4-wire measurements are generally complex, time-consuming, and inefficient because of constraints on interconnects, pads, external wires, and mechanical contacts, thus reducing reproducibility, statistical significance, and throughput. Here, we introduce, systematically design, analyze, and experimentally validate zero interconnect networks interfaced to external instrumentation by couples of twin wire. 3D-printed holders with magnets, interconnects, nonadhesive layers, and spacers can effortlessly establish excellent electrical connections with tunable or minimum contact forces and enable accurate measurements even for delicate devices, such as thin metals on soft polymers. As an example, we measured all the resistances of a twin-wire 29-resistor network made of silver-nanoparticle ink printed on polyimide, paper, or photo paper, including during sintering or temperature calibration, resulting in an unprecedentedly easy and accurate characterization of both resistivity and its temperature coefficient. The theoretical framework and experimental strategies reported here represent a breakthrough toward zero interconnect, simple, and efficient high-density 4-wire characterizations, can be generalized to other 4-wire measurements (impedances, sensors) and can open the way to more statistically meaningful and reproducible analyses of materials, high-throughput measurements, and minimally invasive characterizations of biomaterials. AAAS 2022-01-11 /pmc/articles/PMC8771198/ /pubmed/35098140 http://dx.doi.org/10.34133/2022/9874249 Text en Copyright © 2022 Nerio Andrés Montoya et al. https://creativecommons.org/licenses/by/4.0/Exclusive Licensee Science and Technology Review Publishing House. Distributed under a Creative Commons Attribution License (CC BY 4.0).
spellingShingle Research Article
Montoya, Nerio Andrés
Criscuolo, Valeria
Lo Presti, Andrea
Vecchione, Raffaele
Falconi, Christian
Twin-Wire Networks for Zero Interconnect, High-Density 4-Wire Electrical Characterizations of Materials
title Twin-Wire Networks for Zero Interconnect, High-Density 4-Wire Electrical Characterizations of Materials
title_full Twin-Wire Networks for Zero Interconnect, High-Density 4-Wire Electrical Characterizations of Materials
title_fullStr Twin-Wire Networks for Zero Interconnect, High-Density 4-Wire Electrical Characterizations of Materials
title_full_unstemmed Twin-Wire Networks for Zero Interconnect, High-Density 4-Wire Electrical Characterizations of Materials
title_short Twin-Wire Networks for Zero Interconnect, High-Density 4-Wire Electrical Characterizations of Materials
title_sort twin-wire networks for zero interconnect, high-density 4-wire electrical characterizations of materials
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8771198/
https://www.ncbi.nlm.nih.gov/pubmed/35098140
http://dx.doi.org/10.34133/2022/9874249
work_keys_str_mv AT montoyanerioandres twinwirenetworksforzerointerconnecthighdensity4wireelectricalcharacterizationsofmaterials
AT criscuolovaleria twinwirenetworksforzerointerconnecthighdensity4wireelectricalcharacterizationsofmaterials
AT loprestiandrea twinwirenetworksforzerointerconnecthighdensity4wireelectricalcharacterizationsofmaterials
AT vecchioneraffaele twinwirenetworksforzerointerconnecthighdensity4wireelectricalcharacterizationsofmaterials
AT falconichristian twinwirenetworksforzerointerconnecthighdensity4wireelectricalcharacterizationsofmaterials