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Brittle fracture to recoverable plasticity: polytypism-dependent nanomechanics in todorokite-like nanobelts

Atomic force microscopy (AFM) based nanomechanics experiments involving polytypic todorokite-like manganese dioxide nanobelts reveal varied nanomechanical performance regimes such as brittle fracture, near-brittle fracture, and plastic recovery within the same material system. These nanobelts are sy...

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Autores principales: Amin Shikder, Md Ruhul, Maksud, Mahjabin, Vasudevamurthy, Gokul, Byles, Bryan W., Cullen, David A., More, Karren L., Pomerantseva, Ekaterina, Subramanian, Arunkumar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9473215/
https://www.ncbi.nlm.nih.gov/pubmed/36132478
http://dx.doi.org/10.1039/c8na00079d
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author Amin Shikder, Md Ruhul
Maksud, Mahjabin
Vasudevamurthy, Gokul
Byles, Bryan W.
Cullen, David A.
More, Karren L.
Pomerantseva, Ekaterina
Subramanian, Arunkumar
author_facet Amin Shikder, Md Ruhul
Maksud, Mahjabin
Vasudevamurthy, Gokul
Byles, Bryan W.
Cullen, David A.
More, Karren L.
Pomerantseva, Ekaterina
Subramanian, Arunkumar
author_sort Amin Shikder, Md Ruhul
collection PubMed
description Atomic force microscopy (AFM) based nanomechanics experiments involving polytypic todorokite-like manganese dioxide nanobelts reveal varied nanomechanical performance regimes such as brittle fracture, near-brittle fracture, and plastic recovery within the same material system. These nanobelts are synthesized through a layer-to-tunnel material transformation pathway and contain one-dimensional tunnels, which run along their longitudinal axis and are enveloped by m × 3 MnO(6) octahedral units along their walls. Depending on the extent of material transformation towards a tunneled microstructure, the nanobelts exhibit stacking disorders or polytypism where the value for m ranges from 3 to up to ∼20 within different cross-sectional regions of the same nanobelt. The observation of multiple nanomechanical performance regimes within a single material system is attributed to a combination of two factors: (a) the extent of stacking disorder or polytypism within the nanobelts, and (b) the loading (or strain) rate of the AFM nanomechanics experiment. Controllable engineering of recoverable plasticity is a particularly beneficial attribute for advancing the mechanical stability of these ceramic materials, which hold promise for insertion in multiple next-generation technological applications that range from electrical energy storage solutions to catalysis.
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spelling pubmed-94732152022-09-20 Brittle fracture to recoverable plasticity: polytypism-dependent nanomechanics in todorokite-like nanobelts Amin Shikder, Md Ruhul Maksud, Mahjabin Vasudevamurthy, Gokul Byles, Bryan W. Cullen, David A. More, Karren L. Pomerantseva, Ekaterina Subramanian, Arunkumar Nanoscale Adv Chemistry Atomic force microscopy (AFM) based nanomechanics experiments involving polytypic todorokite-like manganese dioxide nanobelts reveal varied nanomechanical performance regimes such as brittle fracture, near-brittle fracture, and plastic recovery within the same material system. These nanobelts are synthesized through a layer-to-tunnel material transformation pathway and contain one-dimensional tunnels, which run along their longitudinal axis and are enveloped by m × 3 MnO(6) octahedral units along their walls. Depending on the extent of material transformation towards a tunneled microstructure, the nanobelts exhibit stacking disorders or polytypism where the value for m ranges from 3 to up to ∼20 within different cross-sectional regions of the same nanobelt. The observation of multiple nanomechanical performance regimes within a single material system is attributed to a combination of two factors: (a) the extent of stacking disorder or polytypism within the nanobelts, and (b) the loading (or strain) rate of the AFM nanomechanics experiment. Controllable engineering of recoverable plasticity is a particularly beneficial attribute for advancing the mechanical stability of these ceramic materials, which hold promise for insertion in multiple next-generation technological applications that range from electrical energy storage solutions to catalysis. RSC 2018-09-14 /pmc/articles/PMC9473215/ /pubmed/36132478 http://dx.doi.org/10.1039/c8na00079d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Amin Shikder, Md Ruhul
Maksud, Mahjabin
Vasudevamurthy, Gokul
Byles, Bryan W.
Cullen, David A.
More, Karren L.
Pomerantseva, Ekaterina
Subramanian, Arunkumar
Brittle fracture to recoverable plasticity: polytypism-dependent nanomechanics in todorokite-like nanobelts
title Brittle fracture to recoverable plasticity: polytypism-dependent nanomechanics in todorokite-like nanobelts
title_full Brittle fracture to recoverable plasticity: polytypism-dependent nanomechanics in todorokite-like nanobelts
title_fullStr Brittle fracture to recoverable plasticity: polytypism-dependent nanomechanics in todorokite-like nanobelts
title_full_unstemmed Brittle fracture to recoverable plasticity: polytypism-dependent nanomechanics in todorokite-like nanobelts
title_short Brittle fracture to recoverable plasticity: polytypism-dependent nanomechanics in todorokite-like nanobelts
title_sort brittle fracture to recoverable plasticity: polytypism-dependent nanomechanics in todorokite-like nanobelts
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9473215/
https://www.ncbi.nlm.nih.gov/pubmed/36132478
http://dx.doi.org/10.1039/c8na00079d
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