Skip to main content

2017 | OriginalPaper | Buchkapitel

8. Influence of Preparation Techniques on the Properties of Bioactive Glasses

verfasst von : Gurbinder Kaur

Erschienen in: Bioactive Glasses

Verlag: Springer International Publishing

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

Usually two techniques are followed for the glass fabrication, i.e., sol-gel and melt-quenching. Melt-quenching provides glasses with high mechanical properties such as enhanced hardness, flexural strength, and fracture toughness. In contrast to this, the sol-gel method endows the glass with uniform pore size, homogeneity, high surface area, and enhanced bioactive formation.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literatur
Zurück zum Zitat Oudadesse H et al (2011) Apatite forming ability and cytocompatibility of pure and Zn-doped bioactive glasses. Biomed Mater 6:035006–035015 Oudadesse H et al (2011) Apatite forming ability and cytocompatibility of pure and Zn-doped bioactive glasses. Biomed Mater 6:035006–035015
Zurück zum Zitat Yang X et al (2012) Incorporation of B2O3 in CaO-SiO2-P2O5 bioactive glass system for improving strength of low-temperature co-fired porous glass ceramics. J Non-Cryst Solids 358:1171–1179 Yang X et al (2012) Incorporation of B2O3 in CaO-SiO2-P2O5 bioactive glass system for improving strength of low-temperature co-fired porous glass ceramics. J Non-Cryst Solids 358:1171–1179
Zurück zum Zitat Uo M et al (1998) Properties and cytotoxicity of water soluble Na2O-CaO-P2O5 glasses. Biomaterials 19:2277–2284 Uo M et al (1998) Properties and cytotoxicity of water soluble Na2O-CaO-P2O5 glasses. Biomaterials 19:2277–2284
Zurück zum Zitat Kaur G et al (2014) Synthesis, cytotoxicity, and hydroxypatite formation in 27-Tris-SBF for sol-gel based CaO-P2O5-SiO2-B2O3-ZnO bioactive glasses. Sci Rep. doi:10.1038/srep04392 Kaur G et al (2014) Synthesis, cytotoxicity, and hydroxypatite formation in 27-Tris-SBF for sol-gel based CaO-P2O5-SiO2-B2O3-ZnO bioactive glasses. Sci Rep. doi:10.​1038/​srep04392
Zurück zum Zitat Kaur G et al (2013) A review of bioactive glasses: their structure, properties, fabrication, and apatite formation. J Biomed Mater Res A 102:254–274 Kaur G et al (2013) A review of bioactive glasses: their structure, properties, fabrication, and apatite formation. J Biomed Mater Res A 102:254–274
Zurück zum Zitat Chevalier J, Gremillard L (2009) Ceramics for medical applications: a picture for the next 20 years. J Eur Ceram Soc 29:1245–1255 Chevalier J, Gremillard L (2009) Ceramics for medical applications: a picture for the next 20 years. J Eur Ceram Soc 29:1245–1255
Zurück zum Zitat Rahaman et al (2011) Bioactive glass in tissue engineering. Acta Biomater 7:2355–2373 Rahaman et al (2011) Bioactive glass in tissue engineering. Acta Biomater 7:2355–2373
Zurück zum Zitat Oki A, Parveen B, Hossain S, Adeniji S, Donahue H (2004) Preparation and in vitro bioactivity of zinc containing sol-gel–derived bioglass materials. J Biomed Mater Res A 69A(2):216–221. doi:10.1002/jbm.a.20070 Oki A, Parveen B, Hossain S, Adeniji S, Donahue H (2004) Preparation and in vitro bioactivity of zinc containing sol-gel–derived bioglass materials. J Biomed Mater Res A 69A(2):216–221. doi:10.​1002/​jbm.​a.​20070
Zurück zum Zitat O’Donnell MD, Watts SJ, Hill RG, Law RV (2009) The effect of phosphate content on the bioactivity of soda-lime-phosphosilicate glasses. J Mater Sci Mater Med 20:1611–1618 O’Donnell MD, Watts SJ, Hill RG, Law RV (2009) The effect of phosphate content on the bioactivity of soda-lime-phosphosilicate glasses. J Mater Sci Mater Med 20:1611–1618
Zurück zum Zitat Courtheoux L, Lao J, Nedelec JM, Jallot E (2008) Controlled bioactivity in zinc-doped sol-gel-derived binary bioactive glasses. J Phys Chem C 112:13663–13667 Courtheoux L, Lao J, Nedelec JM, Jallot E (2008) Controlled bioactivity in zinc-doped sol-gel-derived binary bioactive glasses. J Phys Chem C 112:13663–13667
Zurück zum Zitat Li HC, Wang DG, Hu JH, Chen CZ (2013) Crystallization, mechanical properties and in vitro bioactivity of sol–gel derived Na2O–CaO–SiO2–P2O5 glass–ceramics by partial substitution of CaF2 for CaO. J Sol-Gel Sci Technol. 67(1):56–65. doi:10.1007/s10971-013-3050-5. Li HC, Wang DG, Hu JH, Chen CZ (2013) Crystallization, mechanical properties and in vitro bioactivity of sol–gel derived Na2O–CaO–SiO2–P2O5 glass–ceramics by partial substitution of CaF2 for CaO. J Sol-Gel Sci Technol. 67(1):56–65. doi:10.​1007/​s10971-013-3050-5.
Zurück zum Zitat Du RL, Chang J, Ni SY, Zhai WY (2006) Characterization and in vitro bioactivity of zinc-containing bioactive glass and glass-ceramics. Biomater Appl 20:341 Du RL, Chang J, Ni SY, Zhai WY (2006) Characterization and in vitro bioactivity of zinc-containing bioactive glass and glass-ceramics. Biomater Appl 20:341
Zurück zum Zitat Doostmohammadi A et al (2011) Bioactive glass nanoparticles with negative zeta potential. Ceram Int 37:2311–2316 Doostmohammadi A et al (2011) Bioactive glass nanoparticles with negative zeta potential. Ceram Int 37:2311–2316
Zurück zum Zitat De Oliveira AAR et al (2011) Synthesis, characterization and cytocompatibility of spherical bioactive glass nanoparticles for potential hard tissue engineering applications. Biomed Mater 8:025011–025025 De Oliveira AAR et al (2011) Synthesis, characterization and cytocompatibility of spherical bioactive glass nanoparticles for potential hard tissue engineering applications. Biomed Mater 8:025011–025025
Zurück zum Zitat Agathopoulos S et al (2006) Formation of hydroxyapatite onto glasses of the CaO–MgO–SiO2 system with B2O3, Na2O, CaF2 and P2O5 additives. Biomaterials 27:1832–1840 Agathopoulos S et al (2006) Formation of hydroxyapatite onto glasses of the CaO–MgO–SiO2 system with B2O3, Na2O, CaF2 and P2O5 additives. Biomaterials 27:1832–1840
Zurück zum Zitat Jones JR, Ehrenfried LM, Hench LL (2006) Optimising bioactive glass scaffolds for bone tissue engineering. Biomaterials 27:964–973 Jones JR, Ehrenfried LM, Hench LL (2006) Optimising bioactive glass scaffolds for bone tissue engineering. Biomaterials 27:964–973
Zurück zum Zitat Pazo A, Saiz E, Tomsia AP (1998) Silicate glass coatings on Ti-based implants. Acta Mater 46:2551–2558 Pazo A, Saiz E, Tomsia AP (1998) Silicate glass coatings on Ti-based implants. Acta Mater 46:2551–2558
Zurück zum Zitat Saiz E, Goldman M, Gomez-Vega JM, Tomsia AP, Marshall GW, Marshall SJ (2002) In vitro behavior of silicate glass coatings on Ti6Al4 V. Biomaterials 23:3749–3756 Saiz E, Goldman M, Gomez-Vega JM, Tomsia AP, Marshall GW, Marshall SJ (2002) In vitro behavior of silicate glass coatings on Ti6Al4 V. Biomaterials 23:3749–3756
Zurück zum Zitat Boyd D, Towler MR (2005) The processing, mechanical properties and bioactivity of zinc based glass ionomer cements. J Mater Sci Mater Med 16:843– 850 Boyd D, Towler MR (2005) The processing, mechanical properties and bioactivity of zinc based glass ionomer cements. J Mater Sci Mater Med 16:843– 850
Zurück zum Zitat Liu X et al (2009) Bioactive borosilicate glass scaffolds: improvement on the strength of glass-based scaffolds for tissue engineering. J Mater Sci Mater Med 20:365–372 Liu X et al (2009) Bioactive borosilicate glass scaffolds: improvement on the strength of glass-based scaffolds for tissue engineering. J Mater Sci Mater Med 20:365–372
Zurück zum Zitat Aina V et al (2007) Cytotoxicity of zinc containing bioactive glasses in contact with human osteoblasts. Chemico-Bio Int 167:207–218 Aina V et al (2007) Cytotoxicity of zinc containing bioactive glasses in contact with human osteoblasts. Chemico-Bio Int 167:207–218
Zurück zum Zitat Aina V, Malavasi G, Pla AF, Munaron L, Morterra C (2009) Zinc-containing bioactive glasses: surface reactivity and behaviour towards endothelial cells. Acta Biomater 5:1211–1222 Aina V, Malavasi G, Pla AF, Munaron L, Morterra C (2009) Zinc-containing bioactive glasses: surface reactivity and behaviour towards endothelial cells. Acta Biomater 5:1211–1222
Zurück zum Zitat Goel A et al Alkali-free bioactive glasses for bone tissue engineering: a preliminary investigation Goel A et al Alkali-free bioactive glasses for bone tissue engineering: a preliminary investigation
Zurück zum Zitat Kaur G, Sharma P, Kumar V, Singh K (2012) Assesment of in-vitro bioactivity of SiO2-BaO-ZnO-B2O3-Al2O3 glasses: an optico-analytical approach. Mater Sci Eng C 32(7):1941–1947 Kaur G, Sharma P, Kumar V, Singh K (2012) Assesment of in-vitro bioactivity of SiO2-BaO-ZnO-B2O3-Al2O3 glasses: an optico-analytical approach. Mater Sci Eng C 32(7):1941–1947
Zurück zum Zitat Singh K, Bala I, Kumar V (2009) Structural optical and bioactive properties of calcium borosilicate glasses. Ceram Int 35:3401–3406 Singh K, Bala I, Kumar V (2009) Structural optical and bioactive properties of calcium borosilicate glasses. Ceram Int 35:3401–3406
Zurück zum Zitat Goel A et al Structural role of zinc in biodegradation of alkali-free bioactive glasses. J Mater Chem B 1:3073 Goel A et al Structural role of zinc in biodegradation of alkali-free bioactive glasses. J Mater Chem B 1:3073
Zurück zum Zitat Kapoor S et al (2014) Role of glass structure in defining the chemical dissolution behavior, bioactivity and antioxidant properties of zinc and strontium co-doped alkali-free phosphosilicate glasses. Acta Biomater 10:3264–3278 Kapoor S et al (2014) Role of glass structure in defining the chemical dissolution behavior, bioactivity and antioxidant properties of zinc and strontium co-doped alkali-free phosphosilicate glasses. Acta Biomater 10:3264–3278
Zurück zum Zitat Abou Neel EA et al (2009) Structure and properties of strontium-doped phosphate-based glasses. J R Soc Interf 6:435–446 Abou Neel EA et al (2009) Structure and properties of strontium-doped phosphate-based glasses. J R Soc Interf 6:435–446
Zurück zum Zitat Murphy S, Wren AW, Towler MR, Boyd D (2010) The effect of ionic dissolution products of Ca-Sr-Na-Zn-Si bioactive glass on in vitro cytocompatibilty. J Mater Sci Mater Med 21:2827–2834 Murphy S, Wren AW, Towler MR, Boyd D (2010) The effect of ionic dissolution products of Ca-Sr-Na-Zn-Si bioactive glass on in vitro cytocompatibilty. J Mater Sci Mater Med 21:2827–2834
Zurück zum Zitat Murphy S, Boyd D, Moane S, Bennett M (2009) The effect of composition on ion release from Ca–Sr–Na–Zn–Si glass bone grafts. J Mater Sci Mater Med 20:2028–2035 Murphy S, Boyd D, Moane S, Bennett M (2009) The effect of composition on ion release from Ca–Sr–Na–Zn–Si glass bone grafts. J Mater Sci Mater Med 20:2028–2035
Zurück zum Zitat Fredholm YC, Karpukhina N, Law RV, Hill RG (2010) Strontium containing bioactive glasses: glass structure and physical properties. J Non-Cryst Solids 356:2546–2551 Fredholm YC, Karpukhina N, Law RV, Hill RG (2010) Strontium containing bioactive glasses: glass structure and physical properties. J Non-Cryst Solids 356:2546–2551
Zurück zum Zitat Regi MV (2001) Ceramics for medical applications. J Chem Soc, Dalton Trans 2:97–108 Regi MV (2001) Ceramics for medical applications. J Chem Soc, Dalton Trans 2:97–108
Zurück zum Zitat Tilocca A, Cormack AN (2010) Surface signatures of bioactivity: MD simulations of 45S and 65S silicate glasses. Langmuir 26(1):545–551 Tilocca A, Cormack AN (2010) Surface signatures of bioactivity: MD simulations of 45S and 65S silicate glasses. Langmuir 26(1):545–551
Zurück zum Zitat Erol M, Ozyuguran A, Celebican O (2010) Synthesis, characterization, and in vitro bioactivity of sol-gel-derived Zn, Mg, and Zn-Mg co-doped bioactive glasses. Chem Eng Technol 33:1066–1074 Erol M, Ozyuguran A, Celebican O (2010) Synthesis, characterization, and in vitro bioactivity of sol-gel-derived Zn, Mg, and Zn-Mg co-doped bioactive glasses. Chem Eng Technol 33:1066–1074
Zurück zum Zitat Sing KSW, Everett DH, Haul RAW, Moscou L, Pierotti RA, Rouquerol J et al (1985) Reporting physisorption data for gas/solid systems. Pure Appl Chem 57:603–619 Sing KSW, Everett DH, Haul RAW, Moscou L, Pierotti RA, Rouquerol J et al (1985) Reporting physisorption data for gas/solid systems. Pure Appl Chem 57:603–619
Zurück zum Zitat Bretcanu O, Chen Q, Misra SK, Boccaccini AR, Verne E, Vitale- Brovarone C (2007) Biodegradable polymer coated 45S5 Bioglassderived glass-ceramic scaffolds for bone tissue engineering. Glass Tech Eur J Glass Sci Tech A 48:227–234 Bretcanu O, Chen Q, Misra SK, Boccaccini AR, Verne E, Vitale- Brovarone C (2007) Biodegradable polymer coated 45S5 Bioglassderived glass-ceramic scaffolds for bone tissue engineering. Glass Tech Eur J Glass Sci Tech A 48:227–234
Zurück zum Zitat Chen QZ, Thompson ID, Boccaccini AR (2006) 45S5 BioglassVR –derived glass-ceramic scaffolds for bone tissue engineering. Biomaterials 27:2414–2425 Chen QZ, Thompson ID, Boccaccini AR (2006) 45S5 BioglassVR –derived glass-ceramic scaffolds for bone tissue engineering. Biomaterials 27:2414–2425
Zurück zum Zitat Wu SC, Hsu HC, Hsiao SH, Ho WF (2009) Preparation of porous 45S5 BioglassVR -derived glass-ceramic scaffolds by using rice husk as a porogen additive. J Mater Sci Mater Med 20:1229–1236 Wu SC, Hsu HC, Hsiao SH, Ho WF (2009) Preparation of porous 45S5 BioglassVR -derived glass-ceramic scaffolds by using rice husk as a porogen additive. J Mater Sci Mater Med 20:1229–1236
Zurück zum Zitat Vitale-Brovarone C, Verne E, Robiglio L, Appendino P, Bassi F, Martinasso G, Muzio G, Canuto R (2007) Development of glass-ceramic scaffolds for bone tissue engineering: characterisation, proliferation of human osteoblasts and nodule formation. Acta Biomater 3:199–208 Vitale-Brovarone C, Verne E, Robiglio L, Appendino P, Bassi F, Martinasso G, Muzio G, Canuto R (2007) Development of glass-ceramic scaffolds for bone tissue engineering: characterisation, proliferation of human osteoblasts and nodule formation. Acta Biomater 3:199–208
Zurück zum Zitat Vitale-Brovarone C, Baino F, Verne E (2009) High strength bioactive glass-ceramic scaffolds for bone regeneration. J Mater Sci Mater Med 20:643–653 Vitale-Brovarone C, Baino F, Verne E (2009) High strength bioactive glass-ceramic scaffolds for bone regeneration. J Mater Sci Mater Med 20:643–653
Zurück zum Zitat Liu X, Huang W, Fu H, Yao A, Wang D, Pan H, Lu WW, Jiang X, Zhang X (2009) Bioactive borosilicate glass scaffolds: in vitro degradation and bioactivity behaviours. J Mater Sci Mater Med 20:1237–1243 Liu X, Huang W, Fu H, Yao A, Wang D, Pan H, Lu WW, Jiang X, Zhang X (2009) Bioactive borosilicate glass scaffolds: in vitro degradation and bioactivity behaviours. J Mater Sci Mater Med 20:1237–1243
Zurück zum Zitat Cannillo V, Sola A (2009) Potassium-based compositions for a bioactive glass. Ceram Int 35:3389–3393 Cannillo V, Sola A (2009) Potassium-based compositions for a bioactive glass. Ceram Int 35:3389–3393
Zurück zum Zitat Bellucci D, Cannillo V, Ciardelli G, Gentile P, Sola A (2010) Potassium based bioactive glass for bone tissue engineering Ceram Int 36:2449–2453 Bellucci D, Cannillo V, Ciardelli G, Gentile P, Sola A (2010) Potassium based bioactive glass for bone tissue engineering Ceram Int 36:2449–2453
Zurück zum Zitat Sullivan A, Hill RG (2000) J Mat Sci 35:1125 Sullivan A, Hill RG (2000) J Mat Sci 35:1125
Zurück zum Zitat Towler MR, France RR, Billington RW (19980 J Dent Res 77/B:Abs#3117 Towler MR, France RR, Billington RW (19980 J Dent Res 77/B:Abs#3117
Zurück zum Zitat International standard 9917:1991 (E). Dental water based cements. International organization for standardization. Case postale 56, CH-1211, Geneve, Switzerland International standard 9917:1991 (E). Dental water based cements. International organization for standardization. Case postale 56, CH-1211, Geneve, Switzerland
Zurück zum Zitat Nicholson JW, Brookman PJ, Lacy OM, Sayers GS, Wilson AD (1988) J Biomed Mat Res 22:623 Nicholson JW, Brookman PJ, Lacy OM, Sayers GS, Wilson AD (1988) J Biomed Mat Res 22:623
Zurück zum Zitat Bang HG, Kim SJ, Park SY (2008) Biocompatibility and the physical properties of bio-glass ceramics in the Na2O-CaO-SiO2-P2O5 system with CaF2 and MgF2 additives. J Ceram Proc Res 9(6):588–590 Bang HG, Kim SJ, Park SY (2008) Biocompatibility and the physical properties of bio-glass ceramics in the Na2O-CaO-SiO2-P2O5 system with CaF2 and MgF2 additives. J Ceram Proc Res 9(6):588–590
Zurück zum Zitat Implants for surgery–hydroxyapatite–Part 1: Ceramic hydroxyapatite. BS ISO 13779-1:2000 Implants for surgery–hydroxyapatite–Part 1: Ceramic hydroxyapatite. BS ISO 13779-1:2000
Zurück zum Zitat Carter DR, Hayes WC (1976) Bone compressive strength: the influence of density and strain rate. Science 194:1174–1176 Carter DR, Hayes WC (1976) Bone compressive strength: the influence of density and strain rate. Science 194:1174–1176
Zurück zum Zitat Webster TJ, Siegel RW Bizios R (1999) Osteoblast adhesion on nanophase ceramics. Biomaterials 20:1221–1227 Webster TJ, Siegel RW Bizios R (1999) Osteoblast adhesion on nanophase ceramics. Biomaterials 20:1221–1227
Zurück zum Zitat Schneider O D et al (2008) Cotton wool like nanocomposite biomaterials: in vitro bioactivity and osteogenic differentiation of human mesenchymal stem cells. J Biomed Mater Res B Appl Biometer 84 350–362 Schneider O D et al (2008) Cotton wool like nanocomposite biomaterials: in vitro bioactivity and osteogenic differentiation of human mesenchymal stem cells. J Biomed Mater Res B Appl Biometer 84 350–362
Zurück zum Zitat Gao T, Aro H T, YlaKnen H and Vuorio E (2001) Silica-based bioactive glasses modulate expression of bone morphogenetic protein-2 mRNA in Saos-2 osteoblasts in vitro. Biomaterials 22:1475–1483 Gao T, Aro H T, YlaKnen H and Vuorio E (2001) Silica-based bioactive glasses modulate expression of bone morphogenetic protein-2 mRNA in Saos-2 osteoblasts in vitro. Biomaterials 22:1475–1483
Zurück zum Zitat Verne E, Ferraris S, Vitale-Brovarone C, Spriano S, Bianchi CL, Naldoni A, Morra M Cassinelli C (2010) Alkaline phosphatase grafting on bioactive glasses and glass ceramics. Acta Biomater 6:229–240 Verne E, Ferraris S, Vitale-Brovarone C, Spriano S, Bianchi CL, Naldoni A, Morra M Cassinelli C (2010) Alkaline phosphatase grafting on bioactive glasses and glass ceramics. Acta Biomater 6:229–240
Zurück zum Zitat Reilly GC, Radin S, Chen AT Ducheyne P (2007) Differential alkaline phosphatase responses of rat and human bone marrow derived mesenchymal stem cells to 45S5 bioactive glass. Biomaterials 28:4091–4097 Reilly GC, Radin S, Chen AT Ducheyne P (2007) Differential alkaline phosphatase responses of rat and human bone marrow derived mesenchymal stem cells to 45S5 bioactive glass. Biomaterials 28:4091–4097
Zurück zum Zitat Varanasi VG, Saiz E, Loomer PM, Ancheta B, Uritani N, Hoa SP, Tomsia AP, Marshall SJ Marshall GW (2009) Enhanced osteocalcin expression by osteoblast-like cells (MC3T3-E1) exposed to bioactive coating glass (SiO2–CaO–P2O5–MgO–K2O–Na2O system) ions. Acta Biomater 5:3536–3547 Varanasi VG, Saiz E, Loomer PM, Ancheta B, Uritani N, Hoa SP, Tomsia AP, Marshall SJ Marshall GW (2009) Enhanced osteocalcin expression by osteoblast-like cells (MC3T3-E1) exposed to bioactive coating glass (SiO2–CaO–P2O5–MgO–K2O–Na2O system) ions. Acta Biomater 5:3536–3547
Zurück zum Zitat Valerio P, Pereira MM, Goes AM, Leite MF (2004) The effect of ionic products from bioactive glass dissolution on osteoblast proliferation and collagen production. Biomaterials 25:2941–2948 Valerio P, Pereira MM, Goes AM, Leite MF (2004) The effect of ionic products from bioactive glass dissolution on osteoblast proliferation and collagen production. Biomaterials 25:2941–2948
Zurück zum Zitat Doostmohammadi A et al (2011) Direct cytotoxicity evaluation of 63S bioactive glass and bone-derived hydroxyapatite particles using yeast model and human chondrocyte cells by microcalorimetry. J Mater Sci Mater Med 22:2293–2300 Doostmohammadi A et al (2011) Direct cytotoxicity evaluation of 63S bioactive glass and bone-derived hydroxyapatite particles using yeast model and human chondrocyte cells by microcalorimetry. J Mater Sci Mater Med 22:2293–2300
Zurück zum Zitat Zhang K, Washburn NR, Simon CG (2004) Cytotoxicity of threedimensionall ordered macroporous sol–gel bioactive glass (3DOM-BG). Biomaterials 26:4532–4539 Zhang K, Washburn NR, Simon CG (2004) Cytotoxicity of threedimensionall ordered macroporous sol–gel bioactive glass (3DOM-BG). Biomaterials 26:4532–4539
Zurück zum Zitat Li P, Kai Z, Clifford W (2005) Indirect cytotoxicity evaluation of silver doped bioglass Ag-S70C30 on human primary keratinocytes. Key Eng Mater 284:431–434 Li P, Kai Z, Clifford W (2005) Indirect cytotoxicity evaluation of silver doped bioglass Ag-S70C30 on human primary keratinocytes. Key Eng Mater 284:431–434
Zurück zum Zitat Cervinka M, Puza V, Hroch M, Cervinkova Z (1994) In vitro cytotoxicity testing of metal alloys used in medicine: comparison of different approaches. Toxicol Vitro 8:783–785 Cervinka M, Puza V, Hroch M, Cervinkova Z (1994) In vitro cytotoxicity testing of metal alloys used in medicine: comparison of different approaches. Toxicol Vitro 8:783–785
Zurück zum Zitat Fontana AJ, Hansen LD, Breidenbach RW, Criddle RS (1990) Microcalorimetric measurement of aerobic cell metabolism in unstirred cell cultures. Thermochim Acta 172:105–113 Fontana AJ, Hansen LD, Breidenbach RW, Criddle RS (1990) Microcalorimetric measurement of aerobic cell metabolism in unstirred cell cultures. Thermochim Acta 172:105–113
Zurück zum Zitat James AM (1987) Thermal and energetic studies of cellular biological systems. Bristol, Wright, pp 147–166 James AM (1987) Thermal and energetic studies of cellular biological systems. Bristol, Wright, pp 147–166
Zurück zum Zitat Beezer AE (1980) Biological microcalorimetry. Academic press, London Beezer AE (1980) Biological microcalorimetry. Academic press, London
Zurück zum Zitat Luz GM, Manoosteoblast JF (2011) Preparation and characterization of bioactive glass nanoparticles prepared by sol–gel for biomedical applications. Nanotechnology 22:494014 Luz GM, Manoosteoblast JF (2011) Preparation and characterization of bioactive glass nanoparticles prepared by sol–gel for biomedical applications. Nanotechnology 22:494014
Zurück zum Zitat Oh SA et al Effects on growth and osteogenic differentiation of mesenchymal stem cells by the zinc-added sol-gel bioactive glass granules. J Tissue Eng 2010:475260 Oh SA et al Effects on growth and osteogenic differentiation of mesenchymal stem cells by the zinc-added sol-gel bioactive glass granules. J Tissue Eng 2010:475260
Zurück zum Zitat Ponsonnet L, Reybier K, Jaffrezic N, Comte V, Lagneau C, Lissac M, Martelet C (2003) Relationship between surface properties (roughness, wettability) of titanium and titanium alloys and cell behaviour. Mater Sci Eng C 23:551–560. doi:10.1016/S0928-4931(03)00033-X Ponsonnet L, Reybier K, Jaffrezic N, Comte V, Lagneau C, Lissac M, Martelet C (2003) Relationship between surface properties (roughness, wettability) of titanium and titanium alloys and cell behaviour. Mater Sci Eng C 23:551–560. doi:10.​1016/​S0928-4931(03)00033-X
Zurück zum Zitat Wirth C, Comte V, Lagneau C, Exbrayat P, Lissac M, Jaffrezic-Renault N, Ponsonnet L (2005) Nitinol surface roughness modulates in vitro cell response: a comparison between fibroblasts and osteoblasts. Mater Sci Eng C 25:51–60. doi:10.1016/j.msec.2004.06.001 Wirth C, Comte V, Lagneau C, Exbrayat P, Lissac M, Jaffrezic-Renault N, Ponsonnet L (2005) Nitinol surface roughness modulates in vitro cell response: a comparison between fibroblasts and osteoblasts. Mater Sci Eng C 25:51–60. doi:10.​1016/​j.​msec.​2004.​06.​001
Zurück zum Zitat Schakenraad JM, Busscher HJ, Wildevuur RH, Arends J (1988) Thermodynamic aspects of cell spreading on solid substrata. J Cell Biophys 13:75–91 Schakenraad JM, Busscher HJ, Wildevuur RH, Arends J (1988) Thermodynamic aspects of cell spreading on solid substrata. J Cell Biophys 13:75–91
Zurück zum Zitat Hallab N, Bundy K, O’Connor K, Clark R, Moses R (1995) Cell adhesion to biomaterials: correlations between surface charge, surface roughness, adsorbed protein and cell morphology. J Long-Term Effects Med Implants 53:209–231 Hallab N, Bundy K, O’Connor K, Clark R, Moses R (1995) Cell adhesion to biomaterials: correlations between surface charge, surface roughness, adsorbed protein and cell morphology. J Long-Term Effects Med Implants 53:209–231
Zurück zum Zitat Li M, Zhao L, Liu J, Liu A-L, Zeng W-S, Luo S-Q, et al (2009) Hydrogen peroxide induces G2 cell cycle arrest and inhibits cell proliferation in osteoblasts. Anat Rec (Hoboken) 292:1107–1113 Li M, Zhao L, Liu J, Liu A-L, Zeng W-S, Luo S-Q, et al (2009) Hydrogen peroxide induces G2 cell cycle arrest and inhibits cell proliferation in osteoblasts. Anat Rec (Hoboken) 292:1107–1113
Zurück zum Zitat Liang W et al (2008) Bioactive borate glass scaffold for bone tissue engineering. J Non-Cryst Solids 354:1690–1696 Liang W et al (2008) Bioactive borate glass scaffold for bone tissue engineering. J Non-Cryst Solids 354:1690–1696
Zurück zum Zitat Lu HH, Pollack SR, Ducheyne P (2000) J Biomed Mater Res 51:80–87 Lu HH, Pollack SR, Ducheyne P (2000) J Biomed Mater Res 51:80–87
Zurück zum Zitat Benhayoune H, Charlier D, Jallot E, Laquerriere P, Balossier G and Bonhomme P (2001) J Phys D Appl Phys 34:141–147 Benhayoune H, Charlier D, Jallot E, Laquerriere P, Balossier G and Bonhomme P (2001) J Phys D Appl Phys 34:141–147
Zurück zum Zitat Hench LL (1998) J Am Ceram Soc 81:1705–1728 Hench LL (1998) J Am Ceram Soc 81:1705–1728
Zurück zum Zitat Li P, Ohtsuki C, Kokubo T, Nakanishi K, Soga N, de Groot K (1994) The role of hydrated silica, titania, and alumina in inducing apatite on implants. J Biomed Mater Res 28:7–15 Li P, Ohtsuki C, Kokubo T, Nakanishi K, Soga N, de Groot K (1994) The role of hydrated silica, titania, and alumina in inducing apatite on implants. J Biomed Mater Res 28:7–15
Zurück zum Zitat Kokubo T, Kushitani H, Ohtsuki C and Sakka S (1992) Chemical reaction of bioactive glass and glass–ceramics with a simulated body fluid. J Mater Sci Mater Med 3:79–83 Kokubo T, Kushitani H, Ohtsuki C and Sakka S (1992) Chemical reaction of bioactive glass and glass–ceramics with a simulated body fluid. J Mater Sci Mater Med 3:79–83
Zurück zum Zitat Kokubo T, Kim H-M, Kawashita M (2003) Novel bioactive materials with different mechanical properties Biomaterials 24:2161–2175 Kokubo T, Kim H-M, Kawashita M (2003) Novel bioactive materials with different mechanical properties Biomaterials 24:2161–2175
Zurück zum Zitat Kokubo T (2005) Design of bioactive bone substitutes based on biomineralization process Mater Sci Eng C 25:97–104 Kokubo T (2005) Design of bioactive bone substitutes based on biomineralization process Mater Sci Eng C 25:97–104
Zurück zum Zitat Vitale-Brovarone C, Baino F, Tallia F, Gervasio C and Verne E (2012) Bioactive glass-derived trabecular coating: a smart solution for enhancing osteointegration of prosthetic elements. J Mater Sci Mater Med 23:2369–2380 Vitale-Brovarone C, Baino F, Tallia F, Gervasio C and Verne E (2012) Bioactive glass-derived trabecular coating: a smart solution for enhancing osteointegration of prosthetic elements. J Mater Sci Mater Med 23:2369–2380
Zurück zum Zitat Li L, Clark AE, Hench LL (1991) An investigation of bioactive glass powders by sol-gel processing. J Appl Biomater 2:231–239 Li L, Clark AE, Hench LL (1991) An investigation of bioactive glass powders by sol-gel processing. J Appl Biomater 2:231–239
Zurück zum Zitat Sepulveda P, Jones JR, Hench LL (2002) Bioactive sol-gel foams for tissue repair. J Biomed Mater Res A 49:340–348 Sepulveda P, Jones JR, Hench LL (2002) Bioactive sol-gel foams for tissue repair. J Biomed Mater Res A 49:340–348
Zurück zum Zitat O’Donnell MD, Watts SJ, Law RV, Hill RG (2008) Effect of P2O5 content in two series of soda lime phosphosilicate glasses on structure and properties—part I: NMR. J Non-Cryst Solids 354:3554–3560. doi:10.1016/j.jnoncrysol.2008.03.034 O’Donnell MD, Watts SJ, Law RV, Hill RG (2008) Effect of P2O5 content in two series of soda lime phosphosilicate glasses on structure and properties—part I: NMR. J Non-Cryst Solids 354:3554–3560. doi:10.​1016/​j.​jnoncrysol.​2008.​03.​034
Zurück zum Zitat O’Donnell MD, Watts SJ, Law RV, Hill RG (2008) Effect of P2O5 content in two series of soda lime phosphosilicate glasses on structure and properties—part II: physical properties. J Non-Cryst Solids 354:3561–3566. doi:10.1016/j.jnoncrysol.2008.03.035 O’Donnell MD, Watts SJ, Law RV, Hill RG (2008) Effect of P2O5 content in two series of soda lime phosphosilicate glasses on structure and properties—part II: physical properties. J Non-Cryst Solids 354:3561–3566. doi:10.​1016/​j.​jnoncrysol.​2008.​03.​035
Zurück zum Zitat Balamurugan A, Balossier G, Kannan S, Michel J, Rebelo AHS, Ferreira JMF (2007) Acta Biomater 3:255 Balamurugan A, Balossier G, Kannan S, Michel J, Rebelo AHS, Ferreira JMF (2007) Acta Biomater 3:255
Zurück zum Zitat Peitl O, Zanotto ED, Hench LL (2001) Highly bioactive P2O5– Na2O–CaO–SiO2 glass–ceramics. J Non Cryst Solids 292:115–126 Peitl O, Zanotto ED, Hench LL (2001) Highly bioactive P2O5– Na2O–CaO–SiO2 glass–ceramics. J Non Cryst Solids 292:115–126
Zurück zum Zitat Mukherjee DP, Das SK (2013) SiO2–Al2O3–CaO glass–ceramics: effects of CaF2 on crystallization, microstructure and properties. Ceram Int 39:571–578 Mukherjee DP, Das SK (2013) SiO2–Al2O3–CaO glass–ceramics: effects of CaF2 on crystallization, microstructure and properties. Ceram Int 39:571–578
Zurück zum Zitat Delben JRJ et al (2009) Synthesis and thermal properties of nanoparticles of bioactive glasses containing silver. J Therm Anal Calorim 97:433–436 Delben JRJ et al (2009) Synthesis and thermal properties of nanoparticles of bioactive glasses containing silver. J Therm Anal Calorim 97:433–436
Zurück zum Zitat Liu H, Webster TJ (2007) Nanomedicine for implants: a review of studies and necessary experimental tools. Biomaterials 28:354–369 Liu H, Webster TJ (2007) Nanomedicine for implants: a review of studies and necessary experimental tools. Biomaterials 28:354–369
Zurück zum Zitat Kanzaki, N, Onuma K, Treboux G, Tsutsumi S, Ito A (2001) Effect of Impurity on two-dimensional nucleation kinetics: case studies of magnesium and zinc on hydroxyapatite (0001) face. J Phys Chem B 105(10):1991–1994 Kanzaki, N, Onuma K, Treboux G, Tsutsumi S, Ito A (2001) Effect of Impurity on two-dimensional nucleation kinetics: case studies of magnesium and zinc on hydroxyapatite (0001) face. J Phys Chem B 105(10):1991–1994
Zurück zum Zitat Noriko K, Onuma K, Treboux G, Tsutsumi S, Ito A (2000) Inhibitory effect of magnesium and zinc on crystallization kinetics of hydroxyapatite (0001) face. J Phys Chem B 104(17):4189–4194 Noriko K, Onuma K, Treboux G, Tsutsumi S, Ito A (2000) Inhibitory effect of magnesium and zinc on crystallization kinetics of hydroxyapatite (0001) face. J Phys Chem B 104(17):4189–4194
Zurück zum Zitat Filho OP, LaTorre GP Hench LL (1996) Effect of crystallization on apatite-layer formation of bioactive glass 45S5. J Biomed Mater Res 30(4):509–514 Filho OP, LaTorre GP Hench LL (1996) Effect of crystallization on apatite-layer formation of bioactive glass 45S5. J Biomed Mater Res 30(4):509–514
Zurück zum Zitat Ito A, Kawamura H, Otsuka M, Ikeuchi M, Ohgushi H, Ishikawa K, Onuma K, Kanzaki N, Sogo Y, Ichinose N (2002) Zinc-releasing calcium phosphate for stimulating bone formation. Mater Sci Eng C 22(1):21–25 Ito A, Kawamura H, Otsuka M, Ikeuchi M, Ohgushi H, Ishikawa K, Onuma K, Kanzaki N, Sogo Y, Ichinose N (2002) Zinc-releasing calcium phosphate for stimulating bone formation. Mater Sci Eng C 22(1):21–25
Zurück zum Zitat Fuierer TA, Lore M, Puckett SA Nancollas GH (1994) A mineralization adsorption and mobility study of hydroxyapatite surfaces in presence of zinc and magnesium ions. Langmuir 10(12):4721–4725 Fuierer TA, Lore M, Puckett SA Nancollas GH (1994) A mineralization adsorption and mobility study of hydroxyapatite surfaces in presence of zinc and magnesium ions. Langmuir 10(12):4721–4725
Zurück zum Zitat Salinas AJ et al (2000) In vitro bioactivity of glass and glass-ceramics of the 3CaO- P2O5. CaO-SiO2. CaO-MgO-2SiO2 system. Biomaterials 21:251–257 Salinas AJ et al (2000) In vitro bioactivity of glass and glass-ceramics of the 3CaO- P2O5. CaO-SiO2. CaO-MgO-2SiO2 system. Biomaterials 21:251–257
Zurück zum Zitat van Kemenade MJJM, de Bruyn PL (1987) A kinetic study of precipitation from supersaturated calcium phosphate solutions. J Colloid Interface Sci 118:564–585 van Kemenade MJJM, de Bruyn PL (1987) A kinetic study of precipitation from supersaturated calcium phosphate solutions. J Colloid Interface Sci 118:564–585
Zurück zum Zitat Kokubo T, Kim HM, Kawashita M, Nakamura T (2003) Novel ceramics for biomedical applications. J Aust Ceram Soc 36:37–46 Kokubo T, Kim HM, Kawashita M, Nakamura T (2003) Novel ceramics for biomedical applications. J Aust Ceram Soc 36:37–46
Zurück zum Zitat Ohtsuki C, Kokubo T, Yamamuro T (1992) Mechanism of apatite formation on CaO–SiO2–P2O5 glasses in a simulated body fluid. J Non-Cryst Solids 143:84–92 Ohtsuki C, Kokubo T, Yamamuro T (1992) Mechanism of apatite formation on CaO–SiO2–P2O5 glasses in a simulated body fluid. J Non-Cryst Solids 143:84–92
Zurück zum Zitat Pazo A, Santos C, Guitian F, Tomsia AP, Moya JS Scripta Metall (1996) 34:1729 Pazo A, Santos C, Guitian F, Tomsia AP, Moya JS Scripta Metall (1996) 34:1729
Zurück zum Zitat Ogino M, Hench LL (1980) Formation of calcium phosphate films on silicate glasses. J Non-Cryst Solids 38&39:673–678 Ogino M, Hench LL (1980) Formation of calcium phosphate films on silicate glasses. J Non-Cryst Solids 38&39:673–678
Zurück zum Zitat Ogino M, Ohuchi F, Hench LL (1980) Compositional dependence of the formation of calcium phosphate films on bioglass. J Biomed Mater Res 15:55–64 Ogino M, Ohuchi F, Hench LL (1980) Compositional dependence of the formation of calcium phosphate films on bioglass. J Biomed Mater Res 15:55–64
Zurück zum Zitat Hill R (1996) An alternative view of the degradation of bioglass. J Mater Sci Lett 15:1122–1125 Hill R (1996) An alternative view of the degradation of bioglass. J Mater Sci Lett 15:1122–1125
Zurück zum Zitat Brink M, Turunen T, Happonen RP, Yli-Urpo A (1997) Compositional dependence of bioactivity of glasses in the system Na2O–K2O– MgO–CaO–B2O3–P2O5–SiO2. J Biomed Mater Res 37:114–121 Brink M, Turunen T, Happonen RP, Yli-Urpo A (1997) Compositional dependence of bioactivity of glasses in the system Na2O–K2O– MgO–CaO–B2O3–P2O5–SiO2. J Biomed Mater Res 37:114–121
Zurück zum Zitat Kim CY, Clark AE, Hench LL (1989) Early stages of calcium phosphate layer formation in bioglasses. J Non-Cryst Solids 113:195–202 Kim CY, Clark AE, Hench LL (1989) Early stages of calcium phosphate layer formation in bioglasses. J Non-Cryst Solids 113:195–202
Zurück zum Zitat Kim CY, Clark AE, Hench LL (1992) Compositional dependence of calcium phosphate layer formation in fluoride bioglasses. J Biomed Mater Res 26:1147–1161 Kim CY, Clark AE, Hench LL (1992) Compositional dependence of calcium phosphate layer formation in fluoride bioglasses. J Biomed Mater Res 26:1147–1161
Zurück zum Zitat Ohura K, Nakamura T, Yamamuro T, Ebisawa Y, Kokubo T, Kotoura Y, Oka M (1992) Bioactivity of CaO SiO2 glasses added with various ions. J Mater Sci 3:95–100 Ohura K, Nakamura T, Yamamuro T, Ebisawa Y, Kokubo T, Kotoura Y, Oka M (1992) Bioactivity of CaO SiO2 glasses added with various ions. J Mater Sci 3:95–100
Zurück zum Zitat Andersson OH, Karlsson KH, Kangasniemi K (1988) Yli- Urpo A. Models for physical properties and bioactivity of phosphate opal glasses. Glastech Ber 61:300–315 Andersson OH, Karlsson KH, Kangasniemi K (1988) Yli- Urpo A. Models for physical properties and bioactivity of phosphate opal glasses. Glastech Ber 61:300–315
Zurück zum Zitat Gross U, Kinne R, Schmitz HJ, Strunz V (1988) The response of bone to surface active glass/glass–ceramics. In: Williams DF (ed) CRC critical reviews in biocompatibility. CRC press, Boca Raton, p 2 Gross U, Kinne R, Schmitz HJ, Strunz V (1988) The response of bone to surface active glass/glass–ceramics. In: Williams DF (ed) CRC critical reviews in biocompatibility. CRC press, Boca Raton, p 2
Zurück zum Zitat Branda F, Arcobello-Varlese F, Costantini A, Luciani G (2002) Effect of the substitution of M2O3 (M = La,Y,In, Ga,Al) for CaO on the bioactivity of 2.5CaO-2SiO2 glass. Biomaterials 23:711–716 Branda F, Arcobello-Varlese F, Costantini A, Luciani G (2002) Effect of the substitution of M2O3 (M = La,Y,In, Ga,Al) for CaO on the bioactivity of 2.5CaO-2SiO2 glass. Biomaterials 23:711–716
Zurück zum Zitat Hum J, Boccaccini AR (2012) Bioactive glasses as carriers for bioactive molecules and therapeutic drugs: a review. J Mater Sci Mater Med 23:2317–2333 Hum J, Boccaccini AR (2012) Bioactive glasses as carriers for bioactive molecules and therapeutic drugs: a review. J Mater Sci Mater Med 23:2317–2333
Zurück zum Zitat Wu C, Chang J (2012) Mesoporous bioactive glasses: structure characteristics, drug/growth factor delivery and bone regeneration application. Interface Focus 2:292–306 Wu C, Chang J (2012) Mesoporous bioactive glasses: structure characteristics, drug/growth factor delivery and bone regeneration application. Interface Focus 2:292–306
Zurück zum Zitat Garcia A, Cicuendez M, Izquierdo-Barba I, Arcos D, Vallet-Regi M (2009) Essential role of calcium phosphate heterogeneities in 2D-hexagonal and 3D-cubic SiO2– CaO–P2O5 mesoporous bioactive glasses. Chem Mater 21:5474–5484. doi:10.1021/cm9022776 Garcia A, Cicuendez M, Izquierdo-Barba I, Arcos D, Vallet-Regi M (2009) Essential role of calcium phosphate heterogeneities in 2D-hexagonal and 3D-cubic SiO2– CaO–P2O5 mesoporous bioactive glasses. Chem Mater 21:5474–5484. doi:10.​1021/​cm9022776
Zurück zum Zitat Leonova E et al (2008) Multinuclear solid-state NMR studies of ordered mesoporous bioactive glasses. J Phys Chem C 112:5552–5562. doi:10.1021/jp7107973 Leonova E et al (2008) Multinuclear solid-state NMR studies of ordered mesoporous bioactive glasses. J Phys Chem C 112:5552–5562. doi:10.​1021/​jp7107973
Zurück zum Zitat Zhu M, Zhang L, He Q, Zhao J, Limin G, Shi J (2011) Mesoporous bioactive glass-coated poly(L-lactic acid) scaffolds: a sustained antibiotic drug release system for bone repairing. J Mater Chem 21:1064–1072 Zhu M, Zhang L, He Q, Zhao J, Limin G, Shi J (2011) Mesoporous bioactive glass-coated poly(L-lactic acid) scaffolds: a sustained antibiotic drug release system for bone repairing. J Mater Chem 21:1064–1072
Zurück zum Zitat Ostomel TA, Shi Q, Tsung CK, Liang H, Stucky GD (2006) Spherical bioactive glass with enhanced rates of hydroxyapatite deposition and hemostatic activity. Small 2:1261–1265 Ostomel TA, Shi Q, Tsung CK, Liang H, Stucky GD (2006) Spherical bioactive glass with enhanced rates of hydroxyapatite deposition and hemostatic activity. Small 2:1261–1265
Zurück zum Zitat Vallet-Regi M, Izquierdo-Barba I, Colilla M (2012) Review: structure and functionalization of mesoporous bioceramics for bone tissue regeneration and local drug delivery. Phil Trans R Soc Lond A 370:1400–1421 Vallet-Regi M, Izquierdo-Barba I, Colilla M (2012) Review: structure and functionalization of mesoporous bioceramics for bone tissue regeneration and local drug delivery. Phil Trans R Soc Lond A 370:1400–1421
Zurück zum Zitat Kaur G, Sharma P, Kumar V, Singh K (2012) Assesment of in-vitro bioactivity of SiO2-BaO-ZnO-B2O3-Al2O3 glasses: an optico-analytical approach. Mater Sci Eng C 32(7):1941–1947 Kaur G, Sharma P, Kumar V, Singh K (2012) Assesment of in-vitro bioactivity of SiO2-BaO-ZnO-B2O3-Al2O3 glasses: an optico-analytical approach. Mater Sci Eng C 32(7):1941–1947
Zurück zum Zitat Kaur G, Pickrell G, Sriranganathan N, Kumar V, Homa D (2016) Review and the state of the art: sol-gel or melt quenched bioactive glasses for tissue engineering. J Biomed Mater Res B Appl Biomater 104(6):1248–1275. doi:10.1002/jbm.b.33443 Kaur G, Pickrell G, Sriranganathan N, Kumar V, Homa D (2016) Review and the state of the art: sol-gel or melt quenched bioactive glasses for tissue engineering. J Biomed Mater Res B Appl Biomater 104(6):1248–1275. doi:10.​1002/​jbm.​b.​33443
Zurück zum Zitat Kaur G, Pickrell G, Pandey OP, Singh K, Chudasama BN, Kumar V (2016) Combined and individual Doxorubicin/Vancomycin drug loading, release kinetics and apatite formation for the CaO-CuO-P2O5- SiO2- B2O3 mesoporous glasses. RSC Adv 6:51046–51056 Kaur G, Pickrell G, Pandey OP, Singh K, Chudasama BN, Kumar V (2016) Combined and individual Doxorubicin/Vancomycin drug loading, release kinetics and apatite formation for the CaO-CuO-P2O5- SiO2- B2O3 mesoporous glasses. RSC Adv 6:51046–51056
Metadaten
Titel
Influence of Preparation Techniques on the Properties of Bioactive GlassesBioactive Glasses
verfasst von
Gurbinder Kaur
Copyright-Jahr
2017
DOI
https://doi.org/10.1007/978-3-319-45716-1_8

Neuer Inhalt