[1]
James Quinn, Ryan McFadden, Chi-Wai Chan, and Louise Carson. Titanium for Orthopedic Applications: An Overview of Surface Modification to Improve Biocompatibility and Prevent Bacterial Biofilm Formation. iScience 23, November 20, (2020).
DOI: 10.1016/j.isci.2020.101745
Google Scholar
[2]
Ilyin A.A., Mamonov A.M., Karpov V.N., Balberkin A.V., Babin S.V., Egorov E.N. Porous laminated composite materials based on titanium in hip arthroplasty. Light alloy technology No. 3. 2008. pp.73-78.
Google Scholar
[3]
Kollerov M.Yu., Runova Yu.E., Shlyapin S.D., Shalin A.V., Ruchina N.V. Thermal hydrogen treatment of fibrous porous coatings from titanium alloys. Light alloy technology No. 4. 2015. pp.50-55.
Google Scholar
[4]
Svetlana Skvortsova, Galina Gurtovaya, Maria Afonina, Natalya Ruchina and Gulnara Zaynetdinova. Development of heat treatment modes for a two-phase titanium alloy to form regulated structure and properties complex. MATEC Web of Conferences 298, 2019, p.6.
DOI: 10.1051/matecconf/201929800049
Google Scholar
[5]
Ilyin AA, Babin SV, Egorov EN, Polyakova OA Influence of conditions of plasma spraying and heat treatment on the structure and adhesive strength of titanium coating of implants. Scientific works of MATI, vol. 13 (85). 2007, pp.291-295.
Google Scholar
[6]
Aaron Vance, Klaudio Bari, Arun Arjunan. Compressive performance of an arbitrary stiffness matched anatomical Ti64 implant manufactured using Direct Metal Laser Sintering. Materials and Design 160 (2018). P. 1281–1294.
DOI: 10.1016/j.matdes.2018.11.005
Google Scholar
[7]
Patcharapit Promoppatum, Recep Onler, Shi-Chune Yao. Numerical and experimental investigations of micro and macrocharacteristics of direct metal laser sintered Ti-6Al-4V products. Journal of Materials Processing Technology 240 (2017). P. 262–273. Geetha, A. Singh, R. Asokamani, and A. Gogia, Ti based biomaterials, the ultimate choice for orthopaedic implants–A review,, Progress in Materials Science, vol. 54, pp.397-425, (2009).
DOI: 10.1016/j.jmatprotec.2016.10.005
Google Scholar
[8]
Spece, H., Basgul, C., Andrews, C. E., MacDonald, D. W., Taheri, M. L., Kurtz, S. M. A systematic review of preclinical in vivo testing of 3D printed porous Ti6Al4V for orthopedic applications, part I: Animal models and bone ingrowth outcome measures. J Biomed Mater Res. (2021). P. 1–19.
DOI: 10.1002/jbm.b.34803
Google Scholar
[9]
Rajendra Kasinath, Craig Ernsberger, Stephanie Vass, Steven N. Ginn, Haibo Qu, Weidong Tong. US10537661B2. Pat: Orthopedic implant having a crystalline calcium phosphate coating and methods for making the same, pub. 2020-01-21.
Google Scholar