-
1
-
-
0037039862
-
Third-Generation Biomedical Materials
-
L. L. Hench and J. M. Polak, “Third-Generation Biomedical Materials,” Science, 295 [5557] 1014–7 (2002).
-
(2002)
Science
, vol.295
, Issue.5557
, pp. 1014-1017
-
-
Hench, L.L.1
Polak, J.M.2
-
2
-
-
84863319587
-
3 Glasses: An Optico-Analytical Approach
-
3 Glasses: An Optico-Analytical Approach,” Mater. Sci. Eng., C, 32 [7] 1941–7 (2012).
-
(2012)
Mater. Sci. Eng., C
, vol.32
, Issue.7
, pp. 1941-1947
-
-
Kaur, G.1
Sharma, P.2
Kumar, V.3
Singh, K.4
-
3
-
-
0025341544
-
In Vitro Observations of Iron-Doped Bioactive Glasses
-
M. Cannas, E. Indemini, A. Krajewski, A. Ravaglioli, and S. Contoli, “In Vitro Observations of Iron-Doped Bioactive Glasses,” Biomaterials, 11 [4] 281–5 (1990).
-
(1990)
Biomaterials
, vol.11
, Issue.4
, pp. 281-285
-
-
Cannas, M.1
Indemini, E.2
Krajewski, A.3
Ravaglioli, A.4
Contoli, S.5
-
4
-
-
79960094610
-
Apatite Forming Ability and Cytocompatibility of Pure and Zn-Doped Bioactive Glasses
-
H. Oudadesse, E. Dietrich, Y. L. Gal, P. Pellen, B. Bureau, et al., “Apatite Forming Ability and Cytocompatibility of Pure and Zn-Doped Bioactive Glasses,” Biomed. Mater., 6 [3] 1748–6041 (2011).
-
(2011)
Biomed. Mater.
, vol.6
, Issue.3
, pp. 1748-6041
-
-
Oudadesse, H.1
Dietrich, E.2
Gal, Y.L.3
Pellen, P.4
Bureau, B.5
-
5
-
-
1842629583
-
Preparation and In Vitro Bioactivity of Zinc Containing Sol–Gel-Derived Bioglass Materials
-
A. Oki, B. Parveen, S. Hossain, S. Adeniji, and H. Donahue, “Preparation and In Vitro Bioactivity of Zinc Containing Sol–Gel-Derived Bioglass Materials,” J. Biomed. Mater. Res. A, 69 [2] 216–21 (2004).
-
(2004)
J. Biomed. Mater. Res. A
, vol.69
, Issue.2
, pp. 216-221
-
-
Oki, A.1
Parveen, B.2
Hossain, S.3
Adeniji, S.4
Donahue, H.5
-
6
-
-
82155167674
-
Synthesis, Characterization and Microbiological Response of Silver Doped Bioactive Glass Nanoparticles
-
A. M. El-Kady, A. F. Ali, R. A. Rizk, and M. M. Ahmed, “Synthesis, Characterization and Microbiological Response of Silver Doped Bioactive Glass Nanoparticles,” Ceram. Int., 38 [1] 177–88 (2012).
-
(2012)
Ceram. Int.
, vol.38
, Issue.1
, pp. 177-188
-
-
El-Kady, A.M.1
Ali, A.F.2
Rizk, R.A.3
Ahmed, M.M.4
-
7
-
-
77954374723
-
Synthesis, Characterization, and In Vitro Bioactivity of Sol-Gel-Derived Zn, Mg, and Zn-Mg Co-Doped Bioactive Glasses
-
M. Erol, A. Özyuguran, and Ö. Çelebican, “Synthesis, Characterization, and In Vitro Bioactivity of Sol-Gel-Derived Zn, Mg, and Zn-Mg Co-Doped Bioactive Glasses,” Chem. Eng. Technol., 33 [7] 1066–74 (2010).
-
(2010)
Chem. Eng. Technol.
, vol.33
, Issue.7
, pp. 1066-1074
-
-
Erol, M.1
Özyuguran, A.2
Çelebican, Ö.3
-
8
-
-
84900509145
-
Drug Delivery Property, Bactericidal Property and Cytocompatibility of Magnetic Mesoporous Bioactive Glass
-
Y.-Z. Liu, Y. Li, X.-B. Yu, L.-N. Liu, Z.-A. Zhu, and Y.-P. Guo, “Drug Delivery Property, Bactericidal Property and Cytocompatibility of Magnetic Mesoporous Bioactive Glass,” Mater. Sci. Eng. C, 41, 196–205 (2014).
-
(2014)
Mater. Sci. Eng. C
, vol.41
, pp. 196-205
-
-
Liu, Y.-Z.1
Li, Y.2
Yu, X.-B.3
Liu, L.-N.4
Zhu, Z.-A.5
Guo, Y.-P.6
-
9
-
-
84959480192
-
Targeted and Controlled Anticancer Drug Delivery and Release With Magnetoelectric Nanoparticles
-
A. Rodzinski, R. Guduru, P. Liang, A. Hadjikhani, T. Stewart, et al., “Targeted and Controlled Anticancer Drug Delivery and Release With Magnetoelectric Nanoparticles,” Sci. Rep., 6, 20867–81 (2016).
-
(2016)
Sci. Rep.
, vol.6
, pp. 20867-20881
-
-
Rodzinski, A.1
Guduru, R.2
Liang, P.3
Hadjikhani, A.4
Stewart, T.5
-
10
-
-
84947618252
-
Silicon Oxide Based Materials for Controlled Release in Orthopedic Procedures
-
H. Qu, S. Bhattacharyya, and P. Ducheyne, “Silicon Oxide Based Materials for Controlled Release in Orthopedic Procedures,” Adv. Drug Deliv. Rev., 94, 96–115 (2015).
-
(2015)
Adv. Drug Deliv. Rev.
, vol.94
, pp. 96-115
-
-
Qu, H.1
Bhattacharyya, S.2
Ducheyne, P.3
-
11
-
-
75149147998
-
Targeted Delivery of low Molecular Drugs Using Chitosan and its Derivatives
-
J. H. Park, G. Saravanakumar, K. Kim, and I. C. Kwon, “Targeted Delivery of low Molecular Drugs Using Chitosan and its Derivatives,” Adv. Drug Deliv. Rev., 62 [1] 28–41 (2010).
-
(2010)
Adv. Drug Deliv. Rev.
, vol.62
, Issue.1
, pp. 28-41
-
-
Park, J.H.1
Saravanakumar, G.2
Kim, K.3
Kwon, I.C.4
-
12
-
-
84876536683
-
Structural Characterisation of Hypoxia-Mimicking Bioactive Glasses
-
J. M. Smith, R. A. Martin, G. J. Cuello, and R. J. Newport, “Structural Characterisation of Hypoxia-Mimicking Bioactive Glasses,” J. Mater. Chem. B, 1 [9] 1296–303 (2013).
-
(2013)
J. Mater. Chem. B
, vol.1
, Issue.9
, pp. 1296-1303
-
-
Smith, J.M.1
Martin, R.A.2
Cuello, G.J.3
Newport, R.J.4
-
13
-
-
36048997547
-
The Development of Magnetic Degradable DP-Bioglass for Hyperthermia Cancer Therapy
-
T. W. Wang, H. C. Wu, W. R. Wang, F. H. Lin, P. J. Lou, et al., “The Development of Magnetic Degradable DP-Bioglass for Hyperthermia Cancer Therapy,” J. Biomed. Mater. Res. A, 83 [3] 828–37 (2007).
-
(2007)
J. Biomed. Mater. Res. A
, vol.83
, Issue.3
, pp. 828-837
-
-
Wang, T.W.1
Wu, H.C.2
Wang, W.R.3
Lin, F.H.4
Lou, P.J.5
-
14
-
-
0028157773
-
Better Histology and Biochemistry for Osteoblasts Cultured on Titanium-Doped Bioactive Glass: Bioglass 45S5 Compared With Iron-, Titanium-, Fluorine- and Boron-Containing Bioactive Glasses
-
W. C. Vrouwenvelder, C. G. Groot, and K. de Groot, “Better Histology and Biochemistry for Osteoblasts Cultured on Titanium-Doped Bioactive Glass: Bioglass 45S5 Compared With Iron-, Titanium-, Fluorine- and Boron-Containing Bioactive Glasses,” Biomaterials, 15 [2] 97–106 (1994).
-
(1994)
Biomaterials
, vol.15
, Issue.2
, pp. 97-106
-
-
Vrouwenvelder, W.C.1
Groot, C.G.2
de Groot, K.3
-
15
-
-
0038203196
-
Nickel Uptake and Utilization by Microorganisms
-
S. B. Mulrooney and R. P. Hausinger, “Nickel Uptake and Utilization by Microorganisms,” FEMS Microbiol. Rev., 27 [2–3] 239–61 (2003).
-
(2003)
FEMS Microbiol. Rev.
, vol.27
, Issue.2-3
, pp. 239-261
-
-
Mulrooney, S.B.1
Hausinger, R.P.2
-
16
-
-
32144437418
-
How Useful is SBF in Predicting in Vivo Bone Bioactivity?
-
T. Kokubo and H. Takadama, “How Useful is SBF in Predicting in Vivo Bone Bioactivity?” Biomaterials, 27 [15] 2907–15 (2006).
-
(2006)
Biomaterials
, vol.27
, Issue.15
, pp. 2907-2915
-
-
Kokubo, T.1
Takadama, H.2
-
17
-
-
84947299606
-
5-ZnO Bioactive System for Bone Regeneration Applications
-
5-ZnO Bioactive System for Bone Regeneration Applications,” Ceram. Int., 42 [2] 3638–51 (2016).
-
(2016)
Ceram. Int.
, vol.42
, Issue.2
, pp. 3638-3651
-
-
Anand, V.1
Singh, K.J.2
Kaur, K.3
Kaur, H.4
Singh Arora, D.5
-
18
-
-
84885384287
-
Enhanced Osteoporotic Bone Regeneration by Strontium-Substituted Calcium Silicate Bioactive Ceramics
-
K. Lin, L. Xia, H. Li, X. Jiang, H. Pan, et al., “Enhanced Osteoporotic Bone Regeneration by Strontium-Substituted Calcium Silicate Bioactive Ceramics,” Biomaterials, 34 [38] 10028–42 (2013).
-
(2013)
Biomaterials
, vol.34
, Issue.38
, pp. 10028-10042
-
-
Lin, K.1
Xia, L.2
Li, H.3
Jiang, X.4
Pan, H.5
-
19
-
-
75149117203
-
6) Ceramic Microspheres for Drug Delivery
-
6) Ceramic Microspheres for Drug Delivery,” Acta Biomater., 6 [3] 820–9 (2010).
-
(2010)
Acta Biomater.
, vol.6
, Issue.3
, pp. 820-829
-
-
Wu, C.1
Zreiqat, H.2
-
20
-
-
33751544464
-
Controlling ion Release From Bioactive Glass Foam Scaffolds With Antibacterial Properties
-
J. R. Jones, L. M. Ehrenfried, P. Saravanapavan, and L. L. Hench, “Controlling ion Release From Bioactive Glass Foam Scaffolds With Antibacterial Properties,” J. Mater. Sci.: Mater. Med., 17 [11] 989–96 (2006).
-
(2006)
J. Mater. Sci.: Mater. Med.
, vol.17
, Issue.11
, pp. 989-996
-
-
Jones, J.R.1
Ehrenfried, L.M.2
Saravanapavan, P.3
Hench, L.L.4
-
21
-
-
0036118343
-
A Novel Bioactive and Magnetic Biphasic Material
-
D. Arcos, R. P. del Real, and M. Vallet-Regı́, “A Novel Bioactive and Magnetic Biphasic Material,” Biomaterials, 23 [10] 2151–8 (2002).
-
(2002)
Biomaterials
, vol.23
, Issue.10
, pp. 2151-2158
-
-
Arcos, D.1
del Real, R.P.2
Vallet-Regı́, M.3
-
22
-
-
34547764283
-
Sintering, Crystallisation and Biodegradation Behaviour of Bioglass-Derived Glass-Ceramics
-
A. R. Boccaccini, Q. Chen, L. Lefebvre, L. Gremillard, and J. Chevalier, “Sintering, Crystallisation and Biodegradation Behaviour of Bioglass-Derived Glass-Ceramics,” Faraday Discuss., 136, 27–44 (2007).
-
(2007)
Faraday Discuss.
, vol.136
, pp. 27-44
-
-
Boccaccini, A.R.1
Chen, Q.2
Lefebvre, L.3
Gremillard, L.4
Chevalier, J.5
-
24
-
-
84863851528
-
Magnetic and Degradable Polymer/Bioactive Glass Composite Nanoparticles for Biomedical Applications
-
A. C. Jayalekshmi, S. P. Victor, and C. P. Sharma, “Magnetic and Degradable Polymer/Bioactive Glass Composite Nanoparticles for Biomedical Applications,” Colloids Surf. B Biointerfaces, 101, 196–204 (2013).
-
(2013)
Colloids Surf. B Biointerfaces
, vol.101
, pp. 196-204
-
-
Jayalekshmi, A.C.1
Victor, S.P.2
Sharma, C.P.3
-
25
-
-
84908304836
-
Evaluation of Zinc and Magnesium Doped 45S5 Mesoporous Bioactive Glass System for the Growth of Hydroxyl Apatite Layer
-
V. Anand, K. J. Singh, and K. Kaur, “Evaluation of Zinc and Magnesium Doped 45S5 Mesoporous Bioactive Glass System for the Growth of Hydroxyl Apatite Layer,” J. Non-Cryst. Solids, 406 [0] 88–94 (2014).
-
(2014)
J. Non-Cryst. Solids
, vol.406
, pp. 88-94
-
-
Anand, V.1
Singh, K.J.2
Kaur, K.3
-
26
-
-
84984545071
-
2O Glass Composition for Bone Regeneration Applications
-
2O Glass Composition for Bone Regeneration Applications,” Smart Science, 2 [4] 191–5 (2014).
-
(2014)
Smart Science
, vol.2
, Issue.4
, pp. 191-195
-
-
Anand, V.1
Singh, K.J.2
Kaur, K.3
Arora, D.S.4
Kaur, H.5
-
27
-
-
80053113315
-
The Photoluminescence, Drug Delivery and Imaging Properties of Multifunctional Eu3 + /Gd3 + Dual-Doped Hydroxyapatite Nanorods
-
F. Chen, P. Huang, Y. J. Zhu, J. Wu, C. L. Zhang, and D. X. Cui, “The Photoluminescence, Drug Delivery and Imaging Properties of Multifunctional Eu3 + /Gd3 + Dual-Doped Hydroxyapatite Nanorods,” Biomaterials, 32 [34] 9031–9 (2011).
-
(2011)
Biomaterials
, vol.32
, Issue.34
, pp. 9031-9039
-
-
Chen, F.1
Huang, P.2
Zhu, Y.J.3
Wu, J.4
Zhang, C.L.5
Cui, D.X.6
|