Synergistic effects of halloysite and carbon nanotubes (HNTs + CNTs) on the mechanical properties of epoxy nanocomposites

The synergistic effects of halloysite nanotubes (HNTs) and carbon nanotubes (CNTs) on the mechanical properties of epoxy nanocomposites were investigated. The addition of hybrid nanofillers (0.5 wt% HNTs–0.5 wt% CNTs) has significantly increased the storage modulus, flexural strength, tensile streng...

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Main Authors: Mohd Shahneel Saharudin, Rasheed Atif, Syafawati Hasbi, Muhammad Naguib Ahmad Nazri, Nur Ubaidah Saidin, Yusof Abdullah
Format: Article
Language:English
Published: AIMS Press 2019-01-01
Series:AIMS Materials Science
Subjects:
Online Access:https://www.aimspress.com/article/10.3934/matersci.2019.6.900/fulltext.html
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spelling doaj-b42b3543089a422f9a800f87773e34ee2020-11-25T01:30:42ZengAIMS PressAIMS Materials Science2372-04682372-04842019-01-016690091010.3934/matersci.2019.6.900Synergistic effects of halloysite and carbon nanotubes (HNTs + CNTs) on the mechanical properties of epoxy nanocompositesMohd Shahneel Saharudin0 Rasheed Atif1Syafawati Hasbi2Muhammad Naguib Ahmad Nazri3Nur Ubaidah Saidin4Yusof Abdullah51 Universiti Kuala Lumpur Malaysia Italy Design Institute (UniKL MIDI), 56100 Cheras, Kuala Lumpur, Malaysia2 Department of Mechanical and Construction Engineering, Northumbria University, Ellison Place, Newcastle upon Tyne NE1 8ST, United Kingdom3 Department of Mechanical Engineering, National Defense University of Malaysia, 57000, Kuala Lumpur, Malaysia1 Universiti Kuala Lumpur Malaysia Italy Design Institute (UniKL MIDI), 56100 Cheras, Kuala Lumpur, Malaysia4 Malaysian Nuclear Agency Bangi, 43000, Kajang, Selangor, Malaysia4 Malaysian Nuclear Agency Bangi, 43000, Kajang, Selangor, MalaysiaThe synergistic effects of halloysite nanotubes (HNTs) and carbon nanotubes (CNTs) on the mechanical properties of epoxy nanocomposites were investigated. The addition of hybrid nanofillers (0.5 wt% HNTs–0.5 wt% CNTs) has significantly increased the storage modulus, flexural strength, tensile strength, fracture toughness (<em>K</em><sub><em>1C</em></sub>), critical strain energy release rate (<em>G</em><sub><em>1C</em></sub>), and microhardness of the nanocomposites. The tensile strength and Young’s modulus increased up to approximately 45% and 49%, respectively. The flexural strength and modulus increased up to approximately 46% and 17%, respectively. <em>K</em><sub><em>1C</em></sub>, <em>G</em><sub><em>1C</em></sub>, and microhardness recorded improvements of up to approximately 125%, 134%, and 11%, respectively. The formation of a large number of microcracks (emanated radially) and the increase in fracture surface area (due to crack deflection) were the major toughening mechanisms in the hybrid nanocomposites. SEM images revealed that the hybrid nanofillers were uniformly dispersed in the epoxy matrix and the fracture surface was coarser than that of neat epoxy, suggesting a semi-ductile fracture. This study has shown that the synergistic effects of HNTs–CNTs hybrid nanocomposites at low content (0.5 wt% HNTs–0.5 wt% CNTs) have significantly enhanced the mechanical properties of epoxy nanocomposites.https://www.aimspress.com/article/10.3934/matersci.2019.6.900/fulltext.htmlhalloysite nanotubes (hnts)carbon nanotubes (cnts)epoxyhybrid nanofillersnanocompositesmechanical properties
collection DOAJ
language English
format Article
sources DOAJ
author Mohd Shahneel Saharudin
Rasheed Atif
Syafawati Hasbi
Muhammad Naguib Ahmad Nazri
Nur Ubaidah Saidin
Yusof Abdullah
spellingShingle Mohd Shahneel Saharudin
Rasheed Atif
Syafawati Hasbi
Muhammad Naguib Ahmad Nazri
Nur Ubaidah Saidin
Yusof Abdullah
Synergistic effects of halloysite and carbon nanotubes (HNTs + CNTs) on the mechanical properties of epoxy nanocomposites
AIMS Materials Science
halloysite nanotubes (hnts)
carbon nanotubes (cnts)
epoxy
hybrid nanofillers
nanocomposites
mechanical properties
author_facet Mohd Shahneel Saharudin
Rasheed Atif
Syafawati Hasbi
Muhammad Naguib Ahmad Nazri
Nur Ubaidah Saidin
Yusof Abdullah
author_sort Mohd Shahneel Saharudin
title Synergistic effects of halloysite and carbon nanotubes (HNTs + CNTs) on the mechanical properties of epoxy nanocomposites
title_short Synergistic effects of halloysite and carbon nanotubes (HNTs + CNTs) on the mechanical properties of epoxy nanocomposites
title_full Synergistic effects of halloysite and carbon nanotubes (HNTs + CNTs) on the mechanical properties of epoxy nanocomposites
title_fullStr Synergistic effects of halloysite and carbon nanotubes (HNTs + CNTs) on the mechanical properties of epoxy nanocomposites
title_full_unstemmed Synergistic effects of halloysite and carbon nanotubes (HNTs + CNTs) on the mechanical properties of epoxy nanocomposites
title_sort synergistic effects of halloysite and carbon nanotubes (hnts + cnts) on the mechanical properties of epoxy nanocomposites
publisher AIMS Press
series AIMS Materials Science
issn 2372-0468
2372-0484
publishDate 2019-01-01
description The synergistic effects of halloysite nanotubes (HNTs) and carbon nanotubes (CNTs) on the mechanical properties of epoxy nanocomposites were investigated. The addition of hybrid nanofillers (0.5 wt% HNTs–0.5 wt% CNTs) has significantly increased the storage modulus, flexural strength, tensile strength, fracture toughness (<em>K</em><sub><em>1C</em></sub>), critical strain energy release rate (<em>G</em><sub><em>1C</em></sub>), and microhardness of the nanocomposites. The tensile strength and Young’s modulus increased up to approximately 45% and 49%, respectively. The flexural strength and modulus increased up to approximately 46% and 17%, respectively. <em>K</em><sub><em>1C</em></sub>, <em>G</em><sub><em>1C</em></sub>, and microhardness recorded improvements of up to approximately 125%, 134%, and 11%, respectively. The formation of a large number of microcracks (emanated radially) and the increase in fracture surface area (due to crack deflection) were the major toughening mechanisms in the hybrid nanocomposites. SEM images revealed that the hybrid nanofillers were uniformly dispersed in the epoxy matrix and the fracture surface was coarser than that of neat epoxy, suggesting a semi-ductile fracture. This study has shown that the synergistic effects of HNTs–CNTs hybrid nanocomposites at low content (0.5 wt% HNTs–0.5 wt% CNTs) have significantly enhanced the mechanical properties of epoxy nanocomposites.
topic halloysite nanotubes (hnts)
carbon nanotubes (cnts)
epoxy
hybrid nanofillers
nanocomposites
mechanical properties
url https://www.aimspress.com/article/10.3934/matersci.2019.6.900/fulltext.html
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AT rasheedatif synergisticeffectsofhalloysiteandcarbonnanotubeshntscntsonthemechanicalpropertiesofepoxynanocomposites
AT syafawatihasbi synergisticeffectsofhalloysiteandcarbonnanotubeshntscntsonthemechanicalpropertiesofepoxynanocomposites
AT muhammadnaguibahmadnazri synergisticeffectsofhalloysiteandcarbonnanotubeshntscntsonthemechanicalpropertiesofepoxynanocomposites
AT nurubaidahsaidin synergisticeffectsofhalloysiteandcarbonnanotubeshntscntsonthemechanicalpropertiesofepoxynanocomposites
AT yusofabdullah synergisticeffectsofhalloysiteandcarbonnanotubeshntscntsonthemechanicalpropertiesofepoxynanocomposites
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