Physicochemical and cytotoxicity studies of a novel hydrogel nanoclay EPD coating on titanium made of chitosan/gelatin/halloysite for biomedical applications

This recent study proposes a novel three-dimensional hydrogel nanoclay coating, referred to as microbeads-nanotubes (MNTs size: bead, Ø 1–15 μm; tube, Ø 30–70 nm) deposited on commercially pure titanium (cpTi). The proposed MNTs particles were electrophoretically co-deposited (EPD: 10 V, 5 min, 25 m...

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Main Authors: Alipal, Janifal, Saidin, Syafiqah, Abdullah, Hasan Zuhudi, Idris, Maizlinda Izwana, Lee, T. C.
Format: Article
Published: Elsevier B. V. 2022
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Online Access:http://eprints.utm.my/103007/
http://dx.doi.org/10.1016/j.matchemphys.2022.126543
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spelling my.utm.1030072023-10-12T08:46:09Z http://eprints.utm.my/103007/ Physicochemical and cytotoxicity studies of a novel hydrogel nanoclay EPD coating on titanium made of chitosan/gelatin/halloysite for biomedical applications Alipal, Janifal Saidin, Syafiqah Abdullah, Hasan Zuhudi Idris, Maizlinda Izwana Lee, T. C. TK Electrical engineering. Electronics Nuclear engineering TP Chemical technology This recent study proposes a novel three-dimensional hydrogel nanoclay coating, referred to as microbeads-nanotubes (MNTs size: bead, Ø 1–15 μm; tube, Ø 30–70 nm) deposited on commercially pure titanium (cpTi). The proposed MNTs particles were electrophoretically co-deposited (EPD: 10 V, 5 min, 25 mA/cm2) on cpTi with the chitosan/gelatin hydrogel matrix. The resulting hydrogel nanoclay coating has a homogeneous web-like micronetwork morphology and is highly porous (Ø ca. 100–200 μm) in structure, intertwined with nanotube tunnelling (Ø 30–70 nm). The incorporation of MNTs particles within the web-like micro-network of dried hydrogel on cpTi reduces the coating's swelling in PBS and leads to a controlled degradation rate in Lysozyme solution. It also increased the hydrogel coating’ corrosion current resistance and induced osteoblast viability. The fabrication of the proposed nanoclay hydrogel from a mixture of chitosan/gelatin/halloysite as colloids and MNTs particles in this recent study is fast and straightforward. The nontoxic property of the MNT coating established in this report could broaden and diversify the hydrogel nanoclay material applications for implant coatings and medication nanocontainers in the near future. Elsevier B. V. 2022-10-15 Article PeerReviewed Alipal, Janifal and Saidin, Syafiqah and Abdullah, Hasan Zuhudi and Idris, Maizlinda Izwana and Lee, T. C. (2022) Physicochemical and cytotoxicity studies of a novel hydrogel nanoclay EPD coating on titanium made of chitosan/gelatin/halloysite for biomedical applications. Materials Chemistry and Physics, 290 (NA). pp. 1-13. ISSN 0254-0584 http://dx.doi.org/10.1016/j.matchemphys.2022.126543 DOI:10.1016/j.matchemphys.2022.126543
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TK Electrical engineering. Electronics Nuclear engineering
TP Chemical technology
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
TP Chemical technology
Alipal, Janifal
Saidin, Syafiqah
Abdullah, Hasan Zuhudi
Idris, Maizlinda Izwana
Lee, T. C.
Physicochemical and cytotoxicity studies of a novel hydrogel nanoclay EPD coating on titanium made of chitosan/gelatin/halloysite for biomedical applications
description This recent study proposes a novel three-dimensional hydrogel nanoclay coating, referred to as microbeads-nanotubes (MNTs size: bead, Ø 1–15 μm; tube, Ø 30–70 nm) deposited on commercially pure titanium (cpTi). The proposed MNTs particles were electrophoretically co-deposited (EPD: 10 V, 5 min, 25 mA/cm2) on cpTi with the chitosan/gelatin hydrogel matrix. The resulting hydrogel nanoclay coating has a homogeneous web-like micronetwork morphology and is highly porous (Ø ca. 100–200 μm) in structure, intertwined with nanotube tunnelling (Ø 30–70 nm). The incorporation of MNTs particles within the web-like micro-network of dried hydrogel on cpTi reduces the coating's swelling in PBS and leads to a controlled degradation rate in Lysozyme solution. It also increased the hydrogel coating’ corrosion current resistance and induced osteoblast viability. The fabrication of the proposed nanoclay hydrogel from a mixture of chitosan/gelatin/halloysite as colloids and MNTs particles in this recent study is fast and straightforward. The nontoxic property of the MNT coating established in this report could broaden and diversify the hydrogel nanoclay material applications for implant coatings and medication nanocontainers in the near future.
format Article
author Alipal, Janifal
Saidin, Syafiqah
Abdullah, Hasan Zuhudi
Idris, Maizlinda Izwana
Lee, T. C.
author_facet Alipal, Janifal
Saidin, Syafiqah
Abdullah, Hasan Zuhudi
Idris, Maizlinda Izwana
Lee, T. C.
author_sort Alipal, Janifal
title Physicochemical and cytotoxicity studies of a novel hydrogel nanoclay EPD coating on titanium made of chitosan/gelatin/halloysite for biomedical applications
title_short Physicochemical and cytotoxicity studies of a novel hydrogel nanoclay EPD coating on titanium made of chitosan/gelatin/halloysite for biomedical applications
title_full Physicochemical and cytotoxicity studies of a novel hydrogel nanoclay EPD coating on titanium made of chitosan/gelatin/halloysite for biomedical applications
title_fullStr Physicochemical and cytotoxicity studies of a novel hydrogel nanoclay EPD coating on titanium made of chitosan/gelatin/halloysite for biomedical applications
title_full_unstemmed Physicochemical and cytotoxicity studies of a novel hydrogel nanoclay EPD coating on titanium made of chitosan/gelatin/halloysite for biomedical applications
title_sort physicochemical and cytotoxicity studies of a novel hydrogel nanoclay epd coating on titanium made of chitosan/gelatin/halloysite for biomedical applications
publisher Elsevier B. V.
publishDate 2022
url http://eprints.utm.my/103007/
http://dx.doi.org/10.1016/j.matchemphys.2022.126543
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score 13.214268