A new method for obtaining model-free viscoelastic material properties from atomic force microscopy experiments using discrete integral transform techniques
Viscoelastic characterization of materials at the micro- and the nanoscale is commonly performed with the aid of force–distance relationships acquired using atomic force microscopy (AFM). The general strategy for existing methods is to fit the observed material behavior to specific viscoelastic mode...
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doaj-d1e8edf66a2d43dcb873dfc348e337d22021-10-05T13:40:33ZengBeilstein-InstitutBeilstein Journal of Nanotechnology2190-42862021-09-011211063107710.3762/bjnano.12.792190-4286-12-79A new method for obtaining model-free viscoelastic material properties from atomic force microscopy experiments using discrete integral transform techniquesBerkin Uluutku0Enrique A. López-Guerra1Santiago D. Solares2Department of Mechanical and Aerospace Engineering, The George Washington University School of Engineering and Applied Science, Washington, District of Columbia, USADepartment of Mechanical and Aerospace Engineering, The George Washington University School of Engineering and Applied Science, Washington, District of Columbia, USADepartment of Mechanical and Aerospace Engineering, The George Washington University School of Engineering and Applied Science, Washington, District of Columbia, USAViscoelastic characterization of materials at the micro- and the nanoscale is commonly performed with the aid of force–distance relationships acquired using atomic force microscopy (AFM). The general strategy for existing methods is to fit the observed material behavior to specific viscoelastic models, such as generalized viscoelastic models or power-law rheology models, among others. Here we propose a new method to invert and obtain the viscoelastic properties of a material through the use of the Z-transform, without using a model. We present the rheological viscoelastic relations in their classical derivation and their z-domain correspondence. We illustrate the proposed technique on a model experiment involving a traditional ramp-shaped force–distance AFM curve, demonstrating good agreement between the viscoelastic characteristics extracted from the simulated experiment and the theoretical expectations. We also provide a path for calculating standard viscoelastic responses from the extracted material characteristics. The new technique based on the Z-transform is complementary to previous model-based viscoelastic analyses and can be advantageous with respect to Fourier techniques due to its generality. Additionally, it can handle the unbounded inputs traditionally used to acquire force–distance relationships in AFM, such as ramp functions, in which the cantilever position is displaced linearly with time for a finite period of time.https://doi.org/10.3762/bjnano.12.79atomic force microscopyforce spectroscopymaterial propertiesviscoelasticity |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Berkin Uluutku Enrique A. López-Guerra Santiago D. Solares |
spellingShingle |
Berkin Uluutku Enrique A. López-Guerra Santiago D. Solares A new method for obtaining model-free viscoelastic material properties from atomic force microscopy experiments using discrete integral transform techniques Beilstein Journal of Nanotechnology atomic force microscopy force spectroscopy material properties viscoelasticity |
author_facet |
Berkin Uluutku Enrique A. López-Guerra Santiago D. Solares |
author_sort |
Berkin Uluutku |
title |
A new method for obtaining model-free viscoelastic material properties from atomic force microscopy experiments using discrete integral transform techniques |
title_short |
A new method for obtaining model-free viscoelastic material properties from atomic force microscopy experiments using discrete integral transform techniques |
title_full |
A new method for obtaining model-free viscoelastic material properties from atomic force microscopy experiments using discrete integral transform techniques |
title_fullStr |
A new method for obtaining model-free viscoelastic material properties from atomic force microscopy experiments using discrete integral transform techniques |
title_full_unstemmed |
A new method for obtaining model-free viscoelastic material properties from atomic force microscopy experiments using discrete integral transform techniques |
title_sort |
new method for obtaining model-free viscoelastic material properties from atomic force microscopy experiments using discrete integral transform techniques |
publisher |
Beilstein-Institut |
series |
Beilstein Journal of Nanotechnology |
issn |
2190-4286 |
publishDate |
2021-09-01 |
description |
Viscoelastic characterization of materials at the micro- and the nanoscale is commonly performed with the aid of force–distance relationships acquired using atomic force microscopy (AFM). The general strategy for existing methods is to fit the observed material behavior to specific viscoelastic models, such as generalized viscoelastic models or power-law rheology models, among others. Here we propose a new method to invert and obtain the viscoelastic properties of a material through the use of the Z-transform, without using a model. We present the rheological viscoelastic relations in their classical derivation and their z-domain correspondence. We illustrate the proposed technique on a model experiment involving a traditional ramp-shaped force–distance AFM curve, demonstrating good agreement between the viscoelastic characteristics extracted from the simulated experiment and the theoretical expectations. We also provide a path for calculating standard viscoelastic responses from the extracted material characteristics. The new technique based on the Z-transform is complementary to previous model-based viscoelastic analyses and can be advantageous with respect to Fourier techniques due to its generality. Additionally, it can handle the unbounded inputs traditionally used to acquire force–distance relationships in AFM, such as ramp functions, in which the cantilever position is displaced linearly with time for a finite period of time. |
topic |
atomic force microscopy force spectroscopy material properties viscoelasticity |
url |
https://doi.org/10.3762/bjnano.12.79 |
work_keys_str_mv |
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