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In Vitro Bioactivity Investigation of Alkali Treated Ti6al7nb Alloy Foams

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Date

2015

Journal Title

Journal ISSN

Volume Title

Publisher

Elsevier

Open Access Color

Green Open Access

Yes

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No
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Top 10%
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Top 10%
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Top 10%

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Abstract

Biocompatible Ti6Al7Nb alloy foams with 70% porosity manufactured by space holder method were activated via alkali treatment using 5 M NaOH solution at 60 degrees C. The interconnected pore structures enabled formation of homogenous sodium rich coating on the foam surfaces by allowing penetration of alkali solution throughout the pores which had average size of 200 mu m. The resulted coating layer having 500 nm thickness exhibited porous network morphology with 100 nm pore size. On the other hand, heat treatment conducted subsequent to alkali treatment at 600 degrees C in air transformed sodium rich coating into crystalline bioactive sodium titanate phases. Although the coatings obtained by additional heat treatment were mechanically stable and preserved their morphology, oxidation of the samples deteriorated the compressive strength significantly without affecting the elastic modulus. However, heat treated samples revealed better hydroxyapatite formation when soaked in simulated body fluid (SBF) compared to alkali treated foams. On the other hand, untreated surfaces containing bioactive TiO2 layer were observed to comprise of Ca and P rich precipitates only rather than hydroxyapatite within 15 days. The apatite formed on the treated porous surfaces was observed to have flower-like structure with Ca/P ratio around 1.5 close to that of natural bone. (C) 2014 Elsevier B.V. All rights reserved.

Description

Butev Ocal, Ezgi/0000-0002-7347-5125

Keywords

Porous Materials, Biomaterials, Alkali Treatment, Ti6Al7Nb Alloy Foams, Apatite, Simulated Body Fluid

Fields of Science

02 engineering and technology, 0210 nano-technology, 01 natural sciences, 0104 chemical sciences

Citation

Butev, Ezgi; Esen, Ziya; Bor, Sakir, "In Vitro Bioactivity Investigation of Alkali Treated Ti6al7nb Alloy Foams", Applied Surface Science, 327, pp. 437-443, (2015).

WoS Q

Q1

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Q1
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OpenCitations Citation Count
23

Source

Applied Surface Science

Volume

327

Issue

Start Page

437

End Page

443
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CrossRef : 19

Scopus : 25

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Mendeley Readers : 29

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26

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Web of Science™ Citations

23

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4

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