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Structural characterization of titanium-doped Bioglass using isotopic substitution neutron diffraction

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Structural characterization of titanium-doped Bioglass using isotopic substitution neutron diffraction. / Martin, Richard A.; Moss, Robert M.; Lakhkar, Nilay J. et al.
In: Physical Chemistry Chemical Physics, Vol. 14, No. 45, 31.10.2012, p. 15807-15815.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Martin, RA, Moss, RM, Lakhkar, NJ, Knowles, JC, Cuello, GJ, Smith, ME, Hanna, JV & Newport, RJ 2012, 'Structural characterization of titanium-doped Bioglass using isotopic substitution neutron diffraction', Physical Chemistry Chemical Physics, vol. 14, no. 45, pp. 15807-15815. https://doi.org/10.1039/C2CP43032K

APA

Martin, R. A., Moss, R. M., Lakhkar, N. J., Knowles, J. C., Cuello, G. J., Smith, M. E., Hanna, J. V., & Newport, R. J. (2012). Structural characterization of titanium-doped Bioglass using isotopic substitution neutron diffraction. Physical Chemistry Chemical Physics, 14(45), 15807-15815. https://doi.org/10.1039/C2CP43032K

Vancouver

Martin RA, Moss RM, Lakhkar NJ, Knowles JC, Cuello GJ, Smith ME et al. Structural characterization of titanium-doped Bioglass using isotopic substitution neutron diffraction. Physical Chemistry Chemical Physics. 2012 Oct 31;14(45):15807-15815. Epub 2012 Oct 8. doi: 10.1039/C2CP43032K

Author

Martin, Richard A. ; Moss, Robert M. ; Lakhkar, Nilay J. et al. / Structural characterization of titanium-doped Bioglass using isotopic substitution neutron diffraction. In: Physical Chemistry Chemical Physics. 2012 ; Vol. 14, No. 45. pp. 15807-15815.

Bibtex

@article{27b44ecfb5614e04bf267e3a288b3ca6,
title = "Structural characterization of titanium-doped Bioglass using isotopic substitution neutron diffraction",
abstract = "Melt quenched silicate glasses containing calcium, phosphorus and alkali metals have the ability to promote bone regeneration and to fuse to living bone. Of these glasses 45S5 Bioglass{\textregistered} is the most widely used being sold in over 35 countries as a bone graft product for medical and dental applications; particulate 45S5 is also incorporated into toothpastes to help remineralize the surface of teeth. Recently it has been suggested that adding titanium dioxide can increase the bioactivity of these materials. This work investigates the structural consequences of incorporating 4 mol% TiO2 into Bioglass{\textregistered} using isotopic substitution (of the Ti) applied to neutron diffraction and X-ray Absorption Near Edge Structure (XANES). We present the first isotopic substitution data applied to melt quench derived Bioglass or its derivatives. Results show that titanium is on average surrounded by 5.2(1) nearest neighbor oxygen atoms. This implies an upper limit of 40% four-fold coordinated titanium and shows that the network connectivity is reduced from 2.11 to 1.97 for small quantities of titanium. Titanium XANES micro-fluorescence confirms the titanium environment is homogenous on the micron length scale within these glasses. Solid state magic angle spinning (MAS) NMR confirms the network connectivity model proposed. Furthermore, the results show the intermediate range order containing Na–O, Ca–O, O–P–O and O–Si–O correlations are unaffected by the addition of small quantities of TiO2 into these systems.",
author = "Martin, {Richard A.} and Moss, {Robert M.} and Lakhkar, {Nilay J.} and Knowles, {Jonathan C.} and Cuello, {Gabriel J.} and Smith, {Mark E.} and Hanna, {John V.} and Newport, {Robert J.}",
year = "2012",
month = oct,
day = "31",
doi = "10.1039/C2CP43032K",
language = "English",
volume = "14",
pages = "15807--15815",
journal = "Physical Chemistry Chemical Physics",
issn = "1463-9076",
publisher = "Royal Society of Chemistry",
number = "45",

}

RIS

TY - JOUR

T1 - Structural characterization of titanium-doped Bioglass using isotopic substitution neutron diffraction

AU - Martin, Richard A.

AU - Moss, Robert M.

AU - Lakhkar, Nilay J.

AU - Knowles, Jonathan C.

AU - Cuello, Gabriel J.

AU - Smith, Mark E.

AU - Hanna, John V.

AU - Newport, Robert J.

PY - 2012/10/31

Y1 - 2012/10/31

N2 - Melt quenched silicate glasses containing calcium, phosphorus and alkali metals have the ability to promote bone regeneration and to fuse to living bone. Of these glasses 45S5 Bioglass® is the most widely used being sold in over 35 countries as a bone graft product for medical and dental applications; particulate 45S5 is also incorporated into toothpastes to help remineralize the surface of teeth. Recently it has been suggested that adding titanium dioxide can increase the bioactivity of these materials. This work investigates the structural consequences of incorporating 4 mol% TiO2 into Bioglass® using isotopic substitution (of the Ti) applied to neutron diffraction and X-ray Absorption Near Edge Structure (XANES). We present the first isotopic substitution data applied to melt quench derived Bioglass or its derivatives. Results show that titanium is on average surrounded by 5.2(1) nearest neighbor oxygen atoms. This implies an upper limit of 40% four-fold coordinated titanium and shows that the network connectivity is reduced from 2.11 to 1.97 for small quantities of titanium. Titanium XANES micro-fluorescence confirms the titanium environment is homogenous on the micron length scale within these glasses. Solid state magic angle spinning (MAS) NMR confirms the network connectivity model proposed. Furthermore, the results show the intermediate range order containing Na–O, Ca–O, O–P–O and O–Si–O correlations are unaffected by the addition of small quantities of TiO2 into these systems.

AB - Melt quenched silicate glasses containing calcium, phosphorus and alkali metals have the ability to promote bone regeneration and to fuse to living bone. Of these glasses 45S5 Bioglass® is the most widely used being sold in over 35 countries as a bone graft product for medical and dental applications; particulate 45S5 is also incorporated into toothpastes to help remineralize the surface of teeth. Recently it has been suggested that adding titanium dioxide can increase the bioactivity of these materials. This work investigates the structural consequences of incorporating 4 mol% TiO2 into Bioglass® using isotopic substitution (of the Ti) applied to neutron diffraction and X-ray Absorption Near Edge Structure (XANES). We present the first isotopic substitution data applied to melt quench derived Bioglass or its derivatives. Results show that titanium is on average surrounded by 5.2(1) nearest neighbor oxygen atoms. This implies an upper limit of 40% four-fold coordinated titanium and shows that the network connectivity is reduced from 2.11 to 1.97 for small quantities of titanium. Titanium XANES micro-fluorescence confirms the titanium environment is homogenous on the micron length scale within these glasses. Solid state magic angle spinning (MAS) NMR confirms the network connectivity model proposed. Furthermore, the results show the intermediate range order containing Na–O, Ca–O, O–P–O and O–Si–O correlations are unaffected by the addition of small quantities of TiO2 into these systems.

U2 - 10.1039/C2CP43032K

DO - 10.1039/C2CP43032K

M3 - Journal article

VL - 14

SP - 15807

EP - 15815

JO - Physical Chemistry Chemical Physics

JF - Physical Chemistry Chemical Physics

SN - 1463-9076

IS - 45

ER -