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Bibliografie: and E. L. Rooy, Aluminum Alloy Castings: Properties, Processes, and Applications (ASM

The document is a bibliography listing 57 references related to biomaterials and their applications. Many of the references discuss titanium and titanium alloys as biomaterials and their use in medical implants and applications. Several references also discuss calcium phosphate ceramics and hydroxyapatite coatings for orthopedic and dental applications.

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Elena Ungureanu
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0% found this document useful (0 votes)
92 views4 pages

Bibliografie: and E. L. Rooy, Aluminum Alloy Castings: Properties, Processes, and Applications (ASM

The document is a bibliography listing 57 references related to biomaterials and their applications. Many of the references discuss titanium and titanium alloys as biomaterials and their use in medical implants and applications. Several references also discuss calcium phosphate ceramics and hydroxyapatite coatings for orthopedic and dental applications.

Uploaded by

Elena Ungureanu
Copyright
© © All Rights Reserved
We take content rights seriously. If you suspect this is your content, claim it here.
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Bibliografie

[1]. Chen, Fa-Ming, and Xiaohua Liu. "Advancing biomaterials of human origin for tissue
engineering." Progress in Polymer Science (2015).
[2]. Vranceanu, D. M., et al. "Osseointegration of sputtered SiC-added hydroxyapatite for
orthopaedic applications." Ceramics International 42.8 (2016): 10085-10093.
[3]. Bakin, B., et al. "Bioactivity and corrosion properties of magnesium-substituted CaP coatings
produced via electrochemical deposition." Surface and Coatings Technology (2015).
[4]. Balazic, Matej, et al. "Review: titanium and titanium alloy applications in
medicine." International Journal of Nano and Biomaterials 1.1 (2007): 3-34.
[5]. Oldani, Carlos, Alejandro Dominguez, and T. Eli. Titanium as a Biomaterial for Implants.
INTECH Open Access Publisher, 2012.
[6]. Hsu, C., Parker, G. and Puranik, R. (2012) Implantable devices and magnetic resonance
imaging, Heart, Lung and Circulation, 21, 358 – 63.
[7]. Addison, O., Davenport, A. J., Newport, R. J., Kalra, S., Monir, M. et al. (2012) Do ‘passive’
medical titanium surfaces deteriorate in service in the absence of wear? Journal of The Royal
Society Interface, 7, 3161 – 3164.
[8]. G.Lütjering and J. C. Williams, Titanium, Springer Verlag, Germany, 2007.; J. G. Kaufman
and E. L. Rooy, Aluminum alloy castings: properties, processes, and applications (ASM
International, 2004.
[9]. ASM, Thermal properties of metals,ASM Internation al Materials Park, Ohio, 2002.
[10]. M. Peters, J. Hemptenmacher, J. Kumpfert and C. Leyens,Titanium and TitaniumAlloys, ed.
by Christoph Leyens and Manfred Peters (Wiley-VCH, Germany, 2003), p. 1..
[11]. Ezugwu, E. O., and Z. M. Wang. "Titanium alloys and their machinability—a review."
Journal of materials processing technology 68.3 (1997): 262-274.
[12]. Baloyi, N. M., A. P. I. Popoola, and S. L. Pityana. "Microstructure, hardness and corrosion
properties of laser processed Ti6Al4V-based composites."Transactions of Nonferrous Metals
Society of China 25.9 (2015): 2912-2923.
[13]. Nouri, A., and C. Wen. "Introduction to surface coating and modification for metallic
biomaterials." Surface Coating and Modification of Metallic Biomaterials (2015): 1.
[14]. Chen, Qizhi, and George A. Thouas. "Metallic implant biomaterials." Materials Science and
Engineering: R: Reports 87 (2015): 1-57.
[15]. Auricchio, F., and E. Sacco. "A one-dimensional model for superelastic shape-memory alloys
with different elastic properties between austenite and martensite." International Journal of Non-
Linear Mechanics 32.6 (1997): 1101-1114.
[16]. Niinomi, Mitsuo. "Recent research and development in titanium alloys for biomedical
applications and healthcare goods." Science and technology of advanced Materials 4.5 (2003):
445.
[17]. T. Miyazaki, Y. Tani, Y. Tamaki, E. Suzuki, T. Miyaji, ”Casting of titanium with calcia
investment (Part 2). Improvement of mold treatment and finess on castings”, J. Jpn. Soc. Dent.
Mater. Dev. 6(1987) 633–638.
[18]. Hermawan, Hendra, Dadan Ramdan, and Joy RP Djuansjah. Metals for biomedical
applications. INTECH Open Access Publisher, 2011
[19]. Li, Yuhua, et al. "New developments of Ti-based alloys for biomedical
applications." Materials 7.3 (2014): 1709-1800.
[20]. Veiga, C., J. P. Davim, and A. J. R. Loureiro. "Properties and applications of titanium alloys:
a brief review." Rev. Adv. Mater. Sci 32.2 (2012): 133-148.
[21]. BANSIDDHI, A., and DC DUNAND. "Titanium and NiTi foams for bone replacement." Bone
Substitute Biomaterials (2014): 142.].
[22]. Elshahawy, Waleed. Biocompatibility. INTECH Open Access Publisher, 2011.
[23]. Heimann, Robert B. "Structure, properties, and biomedical performance of osteoconductive
bioceramic coatings." Surface and Coatings Technology 233 (2013): 27-38.
[24]. Lowmunkong, Rungnapa, et al. "Fabrication of freeform bone‐filling calcium phosphate ceramics by
gypsum 3D printing method." Journal of Biomedical Materials Research Part B: Applied Biomaterials 90.2
(2009): 531-539.
[25]. McEntire, B. J., et al. "Ceramics and ceramic coatings in orthopaedics."Journal of the
European Ceramic Society 35.16 (2015): 4327-4369.
[26]. Milne, Ian, Robert O. Ritchie, and Bhushan L. Karihaloo, eds. Comprehensive structural
integrity: cyclic loading and fatigue. Vol. 4. Elsevier, 2003.
[27]. Kokubo, Tadashi, ed. Bioceramics and their clinical applications. Elsevier, 2008.
[28]. Pop Gh. T., Chiriţă M., Rostami M., ”Materiale bioceramice”, Ed. Tehnopres, Iaşi, 2003.
[29]. Chetty, Avashnee, et al. "Synthesis, properties, and applications of hydroxyapatite." (2012).
[30]. Dorozhkin, Sergey V. "Calcium orthophosphate bioceramics." Ceramics International 41.10
(2015): 13913-13966.
[31]. Jarcho M., ”Calcium phosphate ceramics as hard tissue prosthetics”, Clin. Orthop., 157:259,
1981.
[32]. I. Poeată, ”Neurochirurgie şi elemente de bioinginerie neurochirurgicală”, Ed. Tehnică -
Info, Chişinău, 2000.
[33]. D. V. Dumitriu, Notițe de curs - Morfologie dentară, Universitatea de Medicină şi Farmacie
“Carol Davila”, Facultatea de Stomatologie, Bucureşti, 2003.
[34]. Fojt, Jaroslav. "Ti–6Al–4V alloy surface modification for medical applications."Applied
Surface Science 262 (2012): 163-167.
[35]. Khan, S. Nubesh, et al. "Osseointegration and more–A review of literature."Indian Journal
of Dentistry 3.2 (2012): 72-76.
[36]. Shah, Furqan A., et al. "Commercially pure titanium (cp-Ti) versus titanium alloy (Ti6Al4V)
materials as bone anchored implants–is one truly better than the other?–review." Materials Science
and Engineering: C (2016).
[37]. Alghamdi, Hamdan S., Jeroen JJP van den Beucken, and John A. Jansen. "Osteoporosis–
fracture healing and osseointegration." Drug Discovery Today: Disease Models 13 (2014): 3-9.
[38]. Azem, Funda Ak, et al. "The corrosion and bioactivity behavior of SiC doped hydroxyapatite
for dental applications." Ceramics International 40.10 (2014): 15881-15887.
[39]. Narayan, Roger, ed. Biomedical materials. Springer Science & Business Media, 2009.
[40]. Leyens, Christoph, and Manfred Peters. Titanium and titanium alloys. Wiley-VCH,
Weinheim, 2003.
[41]. Hashmi, Saleem. Comprehensive materials processing. Newnes, 2014.
[42]. Encyclopedia of Materials: Science and Technology (Second Edition) 2001, Pages 1595–
1598.
[43]. Grimm, Todd. User's guide to rapid prototyping. Society of Manufacturing Engineers, 2004.
[44]. Kruth, Jean-Pierre, et al. "Lasers and materials in selective laser sintering."Assembly
Automation 23.4 (2003): 357-371.
[45]. Campanelli, Sabina Luisa, et al. Capabilities and performances of the selective laser melting
process. INTECH Open Access Publisher, 2010.
[46]. Kruth, Jean-Pierre, et al. "Part and material properties in selective laser melting of
metals." Proceedings of the 16th international symposium on electromachining. 2010.
[47]. Heinl, Peter, et al. "Cellular Ti–6Al–4V structures with interconnected macro porosity for
bone implants fabricated by selective electron beam melting." Acta biomaterialia 4.5 (2008):
1536-1544.
[48]. Asri, R. I. M., et al. "A review of hydroxyapatite-based coating techniques: Sol–gel and
electrochemical depositions on biocompatible metals." Journal of the mechanical behavior of
biomedical materials 57 (2016): 95-108.
[49]. Pilliar, R. M. "Solegel surface modification of biomaterials." Surface Coating and
Modification of Metallic Biomaterials (2015): 185.
[50]. Corni, Ilaria, Mary P. Ryan, and Aldo R. Boccaccini. "Electrophoretic deposition: from
traditional ceramics to nanotechnology." Journal of the European Ceramic Society 28.7 (2008):
1353-1367.
[51]. Rad, Armin Tahmasbi, et al. "Improved bio-physical performance of hydroxyapatite coatings
obtained by electrophoretic deposition at dynamic voltage." Ceramics International 40.8 (2014):
12681-12691.
[52]. Cosmin Mihai Cotruț, Alina Vlădescu, Sorin Ciucă, Diana Maria Vrânceanu “Ingineria
suprafețelor – Îndrumar de laborator”, Editura Tehnopress Iași, 2015.
[53]. Florin Miculescu, Metode experimentale de analiză a biomaterialelor, Editura Printech,
București, 2007.
[54]. Cosmin COTRUȚ, Degradarea biomaterialelor – Notițe Curs 1.
[55]. Yuhua Li, Chao Yang, Haidong Zhao, Shengguan Qu, Xiaoqiang Li and Yuanyuan Li, New
Developments of Ti-Based Alloys for Biomedical Applications, 2014.
[56]. Daniel BUNEA, Anna NOCIVIN,Materiale biocompatibile, Ed. și Atelierele Tipografice
BREN, 1998.
[57]. Y. Su, L. Wang, L. Luo, X. Jiang, J. Guo and H. Fu, International Journal of Hydrogen
Energy34(2009) 8958.
[58]. Schmidt, Romy, et al. "Electrochemical deposition of hydroxyapatite on beta-Ti-40Nb." Surface and
Coatings Technology 294 (2016): 186-193.

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