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Microscopic Deformation Modes and Impact of Network Anisotropy on the Mechanical and Electrical Performance of Five-fold Twinned Silver Nanowire Electrodes

[Image: see text] Silver nanowire (AgNW) networks show excellent optical, electrical, and mechanical properties, which make them ideal candidates for transparent electrodes in flexible and stretchable devices. Various coating strategies and testing setups have been developed to further improve their...

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Autores principales: Schrenker, Nadine J., Xie, Zhuocheng, Schweizer, Peter, Moninger, Marco, Werner, Felix, Karpstein, Nicolas, Mačković, Mirza, Spyropoulos, George D., Göbelt, Manuela, Christiansen, Silke, Brabec, Christoph J., Bitzek, Erik, Spiecker, Erdmann
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7844834/
https://www.ncbi.nlm.nih.gov/pubmed/33231422
http://dx.doi.org/10.1021/acsnano.0c06480
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author Schrenker, Nadine J.
Xie, Zhuocheng
Schweizer, Peter
Moninger, Marco
Werner, Felix
Karpstein, Nicolas
Mačković, Mirza
Spyropoulos, George D.
Göbelt, Manuela
Christiansen, Silke
Brabec, Christoph J.
Bitzek, Erik
Spiecker, Erdmann
author_facet Schrenker, Nadine J.
Xie, Zhuocheng
Schweizer, Peter
Moninger, Marco
Werner, Felix
Karpstein, Nicolas
Mačković, Mirza
Spyropoulos, George D.
Göbelt, Manuela
Christiansen, Silke
Brabec, Christoph J.
Bitzek, Erik
Spiecker, Erdmann
author_sort Schrenker, Nadine J.
collection PubMed
description [Image: see text] Silver nanowire (AgNW) networks show excellent optical, electrical, and mechanical properties, which make them ideal candidates for transparent electrodes in flexible and stretchable devices. Various coating strategies and testing setups have been developed to further improve their stretchability and to evaluate their performance. Still, a comprehensive microscopic understanding of the relationship between mechanical and electrical failure is missing. In this work, the fundamental deformation modes of five-fold twinned AgNWs in anisotropic networks are studied by large-scale SEM straining tests that are directly correlated with corresponding changes in the resistance. A pronounced effect of the network anisotropy on the electrical performance is observed, which manifests itself in a one order of magnitude lower increase in resistance for networks strained perpendicular to the preferred wire orientation. Using a scale-bridging microscopy approach spanning from NW networks to single NWs to atomic-scale defects, we were able to identify three fundamental deformation modes of NWs, which together can explain this behavior: (i) correlated tensile fracture of NWs, (ii) kink formation due to compression of NWs in transverse direction, and (iii) NW bending caused by the interaction of NWs in the strained network. A key observation is the extreme deformability of AgNWs in compression. Considering HRTEM and MD simulations, this behavior can be attributed to specific defect processes in the five-fold twinned NW structure leading to the formation of NW kinks with grain boundaries combined with V-shaped surface reconstructions, both counteracting NW fracture. The detailed insights from this microscopic study can further improve fabrication and design strategies for transparent NW network electrodes.
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spelling pubmed-78448342021-01-29 Microscopic Deformation Modes and Impact of Network Anisotropy on the Mechanical and Electrical Performance of Five-fold Twinned Silver Nanowire Electrodes Schrenker, Nadine J. Xie, Zhuocheng Schweizer, Peter Moninger, Marco Werner, Felix Karpstein, Nicolas Mačković, Mirza Spyropoulos, George D. Göbelt, Manuela Christiansen, Silke Brabec, Christoph J. Bitzek, Erik Spiecker, Erdmann ACS Nano [Image: see text] Silver nanowire (AgNW) networks show excellent optical, electrical, and mechanical properties, which make them ideal candidates for transparent electrodes in flexible and stretchable devices. Various coating strategies and testing setups have been developed to further improve their stretchability and to evaluate their performance. Still, a comprehensive microscopic understanding of the relationship between mechanical and electrical failure is missing. In this work, the fundamental deformation modes of five-fold twinned AgNWs in anisotropic networks are studied by large-scale SEM straining tests that are directly correlated with corresponding changes in the resistance. A pronounced effect of the network anisotropy on the electrical performance is observed, which manifests itself in a one order of magnitude lower increase in resistance for networks strained perpendicular to the preferred wire orientation. Using a scale-bridging microscopy approach spanning from NW networks to single NWs to atomic-scale defects, we were able to identify three fundamental deformation modes of NWs, which together can explain this behavior: (i) correlated tensile fracture of NWs, (ii) kink formation due to compression of NWs in transverse direction, and (iii) NW bending caused by the interaction of NWs in the strained network. A key observation is the extreme deformability of AgNWs in compression. Considering HRTEM and MD simulations, this behavior can be attributed to specific defect processes in the five-fold twinned NW structure leading to the formation of NW kinks with grain boundaries combined with V-shaped surface reconstructions, both counteracting NW fracture. The detailed insights from this microscopic study can further improve fabrication and design strategies for transparent NW network electrodes. American Chemical Society 2020-11-24 2021-01-26 /pmc/articles/PMC7844834/ /pubmed/33231422 http://dx.doi.org/10.1021/acsnano.0c06480 Text en © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Schrenker, Nadine J.
Xie, Zhuocheng
Schweizer, Peter
Moninger, Marco
Werner, Felix
Karpstein, Nicolas
Mačković, Mirza
Spyropoulos, George D.
Göbelt, Manuela
Christiansen, Silke
Brabec, Christoph J.
Bitzek, Erik
Spiecker, Erdmann
Microscopic Deformation Modes and Impact of Network Anisotropy on the Mechanical and Electrical Performance of Five-fold Twinned Silver Nanowire Electrodes
title Microscopic Deformation Modes and Impact of Network Anisotropy on the Mechanical and Electrical Performance of Five-fold Twinned Silver Nanowire Electrodes
title_full Microscopic Deformation Modes and Impact of Network Anisotropy on the Mechanical and Electrical Performance of Five-fold Twinned Silver Nanowire Electrodes
title_fullStr Microscopic Deformation Modes and Impact of Network Anisotropy on the Mechanical and Electrical Performance of Five-fold Twinned Silver Nanowire Electrodes
title_full_unstemmed Microscopic Deformation Modes and Impact of Network Anisotropy on the Mechanical and Electrical Performance of Five-fold Twinned Silver Nanowire Electrodes
title_short Microscopic Deformation Modes and Impact of Network Anisotropy on the Mechanical and Electrical Performance of Five-fold Twinned Silver Nanowire Electrodes
title_sort microscopic deformation modes and impact of network anisotropy on the mechanical and electrical performance of five-fold twinned silver nanowire electrodes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7844834/
https://www.ncbi.nlm.nih.gov/pubmed/33231422
http://dx.doi.org/10.1021/acsnano.0c06480
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