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Atomic insights into thickness-dependent deformation mechanism and mechanical properties of Ag/PMMA ultra-thin nanofilms

In this work, the nanoindentations on bilayer composite nanofilms composed of metal Ag and polymer PMMA were simulated using molecular dynamics. The effects of the thickness of Ag and PMMA on the elastic moduli of the composite films were analyzed from Hertz contact theory, dislocation evolution and...

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Autores principales: Lin, Gaojian, Gao, Wenpeng, Chen, Pengwan, Sun, Weifu, Chizhik, Sergei A., Makhaniok, Alexander A., Melnikova, Galina B., Kuznetsova, Tatiana A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10496913/
https://www.ncbi.nlm.nih.gov/pubmed/37705765
http://dx.doi.org/10.1039/d3na00295k
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author Lin, Gaojian
Gao, Wenpeng
Chen, Pengwan
Sun, Weifu
Chizhik, Sergei A.
Makhaniok, Alexander A.
Melnikova, Galina B.
Kuznetsova, Tatiana A.
author_facet Lin, Gaojian
Gao, Wenpeng
Chen, Pengwan
Sun, Weifu
Chizhik, Sergei A.
Makhaniok, Alexander A.
Melnikova, Galina B.
Kuznetsova, Tatiana A.
author_sort Lin, Gaojian
collection PubMed
description In this work, the nanoindentations on bilayer composite nanofilms composed of metal Ag and polymer PMMA were simulated using molecular dynamics. The effects of the thickness of Ag and PMMA on the elastic moduli of the composite films were analyzed from Hertz contact theory, dislocation evolution and atomic migration. The results show that the maximum penetration depth that the Hertz model could well describe is about 6 Å, and this limiting value is almost independent on the film thickness. The deformation mode of the Ag films gradually changes from bending mode to indentation mode with an increase in Ag thickness, which improves the elastic modulus of the composite films. The rule of mixtures could give a theoretical prediction about the elastic modulus of the composite film close to the nanoindentation, and Hertz theory could also be used as long as the thickness of Ag films exceeded a certain value. The introduction of a PMMA layer impedes the development of dislocation in the Ag layer and improves the elastic limit of the composite films. This work provides an important basis for experimentally measuring the overall elastic modulus of metal/polymer composite film based on nanoindentation or extracting the elastic modulus of metal film from the overall indentation response of the composite film.
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spelling pubmed-104969132023-09-13 Atomic insights into thickness-dependent deformation mechanism and mechanical properties of Ag/PMMA ultra-thin nanofilms Lin, Gaojian Gao, Wenpeng Chen, Pengwan Sun, Weifu Chizhik, Sergei A. Makhaniok, Alexander A. Melnikova, Galina B. Kuznetsova, Tatiana A. Nanoscale Adv Chemistry In this work, the nanoindentations on bilayer composite nanofilms composed of metal Ag and polymer PMMA were simulated using molecular dynamics. The effects of the thickness of Ag and PMMA on the elastic moduli of the composite films were analyzed from Hertz contact theory, dislocation evolution and atomic migration. The results show that the maximum penetration depth that the Hertz model could well describe is about 6 Å, and this limiting value is almost independent on the film thickness. The deformation mode of the Ag films gradually changes from bending mode to indentation mode with an increase in Ag thickness, which improves the elastic modulus of the composite films. The rule of mixtures could give a theoretical prediction about the elastic modulus of the composite film close to the nanoindentation, and Hertz theory could also be used as long as the thickness of Ag films exceeded a certain value. The introduction of a PMMA layer impedes the development of dislocation in the Ag layer and improves the elastic limit of the composite films. This work provides an important basis for experimentally measuring the overall elastic modulus of metal/polymer composite film based on nanoindentation or extracting the elastic modulus of metal film from the overall indentation response of the composite film. RSC 2023-08-11 /pmc/articles/PMC10496913/ /pubmed/37705765 http://dx.doi.org/10.1039/d3na00295k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Lin, Gaojian
Gao, Wenpeng
Chen, Pengwan
Sun, Weifu
Chizhik, Sergei A.
Makhaniok, Alexander A.
Melnikova, Galina B.
Kuznetsova, Tatiana A.
Atomic insights into thickness-dependent deformation mechanism and mechanical properties of Ag/PMMA ultra-thin nanofilms
title Atomic insights into thickness-dependent deformation mechanism and mechanical properties of Ag/PMMA ultra-thin nanofilms
title_full Atomic insights into thickness-dependent deformation mechanism and mechanical properties of Ag/PMMA ultra-thin nanofilms
title_fullStr Atomic insights into thickness-dependent deformation mechanism and mechanical properties of Ag/PMMA ultra-thin nanofilms
title_full_unstemmed Atomic insights into thickness-dependent deformation mechanism and mechanical properties of Ag/PMMA ultra-thin nanofilms
title_short Atomic insights into thickness-dependent deformation mechanism and mechanical properties of Ag/PMMA ultra-thin nanofilms
title_sort atomic insights into thickness-dependent deformation mechanism and mechanical properties of ag/pmma ultra-thin nanofilms
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10496913/
https://www.ncbi.nlm.nih.gov/pubmed/37705765
http://dx.doi.org/10.1039/d3na00295k
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