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Sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy

Quantifying the nanomechanical properties of soft-matter using multi-frequency atomic force microscopy (AFM) is crucial for studying the performance of polymers, ultra-thin coatings, and biological systems. Such characterization processes often make use of cantilever's spectral components to di...

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Autores principales: Chandrashekar, Abhilash, Givois, Arthur, Belardinelli, Pierpaolo, Penning, Casper L., Aragón, Alejandro M., Staufer, Urs, Alijani, Farbod
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9709660/
https://www.ncbi.nlm.nih.gov/pubmed/36349749
http://dx.doi.org/10.1039/d2sm00482h
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author Chandrashekar, Abhilash
Givois, Arthur
Belardinelli, Pierpaolo
Penning, Casper L.
Aragón, Alejandro M.
Staufer, Urs
Alijani, Farbod
author_facet Chandrashekar, Abhilash
Givois, Arthur
Belardinelli, Pierpaolo
Penning, Casper L.
Aragón, Alejandro M.
Staufer, Urs
Alijani, Farbod
author_sort Chandrashekar, Abhilash
collection PubMed
description Quantifying the nanomechanical properties of soft-matter using multi-frequency atomic force microscopy (AFM) is crucial for studying the performance of polymers, ultra-thin coatings, and biological systems. Such characterization processes often make use of cantilever's spectral components to discern nanomechanical properties within a multi-parameter optimization problem. This could inadvertently lead to an over-determined parameter estimation with no clear relation between the identified parameters and their influence on the experimental data. In this work, we explore the sensitivity of viscoelastic characterization in polymeric samples to the experimental observables of multi-frequency intermodulation AFM. By performing simulations and experiments we show that surface viscoelasticity has negligible effect on the experimental data and can lead to inconsistent and often non-physical identified parameters. Our analysis reveals that this lack of influence of the surface parameters relates to a vanishing gradient and non-convexity while minimizing the objective function. By removing the surface dependency from the model, we show that the characterization of bulk properties can be achieved with ease and without any ambiguity. Our work sheds light on the sensitivity issues that can be faced when optimizing for a large number of parameters and observables in AFM operation, and calls for the development of new viscoelastic models at the nanoscale and improved computational methodologies for nanoscale mapping of viscoelasticity using AFM.
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spelling pubmed-97096602022-12-20 Sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy Chandrashekar, Abhilash Givois, Arthur Belardinelli, Pierpaolo Penning, Casper L. Aragón, Alejandro M. Staufer, Urs Alijani, Farbod Soft Matter Chemistry Quantifying the nanomechanical properties of soft-matter using multi-frequency atomic force microscopy (AFM) is crucial for studying the performance of polymers, ultra-thin coatings, and biological systems. Such characterization processes often make use of cantilever's spectral components to discern nanomechanical properties within a multi-parameter optimization problem. This could inadvertently lead to an over-determined parameter estimation with no clear relation between the identified parameters and their influence on the experimental data. In this work, we explore the sensitivity of viscoelastic characterization in polymeric samples to the experimental observables of multi-frequency intermodulation AFM. By performing simulations and experiments we show that surface viscoelasticity has negligible effect on the experimental data and can lead to inconsistent and often non-physical identified parameters. Our analysis reveals that this lack of influence of the surface parameters relates to a vanishing gradient and non-convexity while minimizing the objective function. By removing the surface dependency from the model, we show that the characterization of bulk properties can be achieved with ease and without any ambiguity. Our work sheds light on the sensitivity issues that can be faced when optimizing for a large number of parameters and observables in AFM operation, and calls for the development of new viscoelastic models at the nanoscale and improved computational methodologies for nanoscale mapping of viscoelasticity using AFM. The Royal Society of Chemistry 2022-11-08 /pmc/articles/PMC9709660/ /pubmed/36349749 http://dx.doi.org/10.1039/d2sm00482h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Chandrashekar, Abhilash
Givois, Arthur
Belardinelli, Pierpaolo
Penning, Casper L.
Aragón, Alejandro M.
Staufer, Urs
Alijani, Farbod
Sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy
title Sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy
title_full Sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy
title_fullStr Sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy
title_full_unstemmed Sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy
title_short Sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy
title_sort sensitivity of viscoelastic characterization in multi-harmonic atomic force microscopy
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9709660/
https://www.ncbi.nlm.nih.gov/pubmed/36349749
http://dx.doi.org/10.1039/d2sm00482h
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