Page 106 - IJB-8-1
P. 106
Laser Additive Manufacturing of Zinc
Rapid Solidification. J Appl Phys, 53:1158–68. Scaffolds for Bone Tissue Engineering. Mater Sci Eng R Rep,
98. Xu C, Liu Y, Liu Y, et al., 2020, New Inorganic Coating- 80:1–36.
Based Triboelectric Nanogenerators with Anti-Wear and Self- 110. Carluccio D, Xu C, Venezuela J, et al., 2020, Additively
Healing Properties for Efficient Wave Energy Harvesting. Manufactured Iron-Manganese for Biodegradable Porous
Appl Mater Today, 20:100645. Load-Bearing Bone Scaffold Applications. Acta Biomater,
99. Chen Y, Zhang K, Huang J, et al., 2016, Characterization of 103:346–60.
Heat Affected Zone Liquation Cracking in Laser Additive 111. Zhu S, Wu C, Li G, et al., 2020, Microstructure, Mechanical
Manufacturing of Inconel 718. Mater Des, 90:586–94. Properties and Creep Behaviour of Extruded Zn-xLi (x=0.1,
100. Ding WW, Zhao XY, Chen TL, et al., 2020, Effect of Rare 0.3 and 0.4) Alloys for Biodegradable Vascular stent
Earth Y and Al-Ti-B Master Alloy on the Microstructure and Applications. Mater Sci Eng A, 777:139082.
Mechanical Properties of 6063 Aluminum Alloy. J Alloys 112. Liu S, Kent D, Doan N, et al., 2019, Effects of Deformation
Compd, 830:154685. Twinning on the Mechanical Properties of Biodegradable Zn-
https://doi.org/10.1016/j.jallcom.2020.154685 Mg Alloys. Bioact Mater, 4:8–16.
101. Wei K, Wang Z, Zeng X, 2015, Influence of Element 113. Shi ZZ, Gao XX, Zhang HJ, et al., 2020, Design Biodegradable
Vaporization on Formability, Composition, Microstructure, Zn Alloys: Second Phases and their Significant Influences on
and Mechanical Performance of the Selective Laser Melted Alloy Properties. Bioact Mater, 5:210–8.
Mg-Zn-Zr Components. Mater Lett, 156:187–90. https://doi.org/10.1016/j.bioactmat.2020.02.010
102. Li J, Qin L, Yang K, et al., 2020, Materials Evolution of Bone 114. Odusote JK, Ajayi PA, 2016, Mechanical Properties and
Plates for Internal Fixation of Bone Fractures: A Review. Microstructure of Recycled Aluminum Cast with Zinc and
J Mater Sci Technol, 36:190–208. Copper Additions. Int J Metalcast, 10:483–90.
103. Tong X, Zhang D, Zhang X, et al., 2018, Microstructure, https://doi.org/10.1007/s40962-016-0060-4
Mechanical Properties, Biocompatibility, and In Vitro 115. Yang HT, Jia B, Zhang ZC, et al., 2020, Alloying design of
Corrosion and Degradation Behavior of a New Zn-5Ge Biodegradable Zinc as Promising Bone Implants for Load-
Alloy for Biodegradable Implant Materials. Acta Biomater, Bearing Applications. Nat Commun, 11:401.
82:197–204. https://doi.org/10.1038/s41467-019-14153-7
https://doi.org/10.1016/j.actbio.2018.10.015 116. Shuai C, Xue L, Gao C, et al., 2020, Rod-Like Eutectic
104. Wang P, Goh MH, Li Q, et al., 2020, Effect of Defects and Structure in Biodegradable Zn-Al-Sn Alloy Exhibiting
Specimen Size with Rectangular Cross-Section on the Tensile Enhanced Mechanical Strength. ACS Biomater Sci Eng,
Properties of Additively Manufactured Components. Virtual 6:3821–31.
Phys Prototyp, 15:251–64. 117. Zhao S, McNamara CT, Bowen PK, et al., 2017, Structural
105. Pougis A, Toth LS, Fundenberger JJ, et al., 2014, Extension Characteristics and In Vitro Biodegradation of a Novel Zn-Li
of the Derby Relation to Metals Severely Deformed to Their alloy Prepared by Induction Melting and Hot Rolling. Metall
Steady-State Ultrafine-Grain Size. Scr Mater, 72–73:59–62. Mater Trans A, 48:1204–15.
https://doi.org/10.1016/j.scriptamat.2013.10.020 118. Singh A, Osawa Y, Somekawa H, et al., 2011, Ultra-Fine Grain
106. Qin Y, Wen P, Voshage M, et al., 2019, Additive Manufacturing Size and Isotropic Very High Strength by Direct Extrusion of
of Biodegradable Zn-xWE43 porous Scaffolds: Formation Chill-Cast Mg-Zn-Y Alloys Containing Quasicrystal Phase.
Quality, Microstructure and Mechanical Properties. Mater Scr Mater, 64:661–4.
Des, 181:107937. 119. Zhang Q, Fan TW, Fu L, et al., 2012, Ab-Initio Study of the
https://doi.org/10.1016/j.matdes.2019.107937 Effect of Rare-Earth Elements on the Stacking Faults of Mg
107. Yang YW, Cheng Y, Peng SP, et al., 2021, Microstructure Solid Solutions. Intermetallics, 29:21–6.
Evolution and Texture Tailoring of Reduced Graphene Oxide https://doi.org/10.1016/j.intermet.2012.04.015
Reinforced Zn Scaffold. Bioact Mater, 6:1230–41. 120. Smola B, StuliKová I, Pelcová J, et al., 2004, Significance
https://doi.org/10.1016/j.bioactmat.2020.10.017 of Stable and Metastable Phases in High Temperature Creep
108. Fu Q, Saiz E, Tomsia AP, 2011, Direct Ink Writing of Highly Resistant Magnesium-Rare Earth Base Alloys. J Alloys
Porous and Strong Glass Scaffolds for Load-Bearing Bone Compd, 378:196–201.
Defects Repair and Regeneration. Acta Biomater, 7:3547–54. 121. Prasad CV, Reddy MS, Reddy VR, et al., 2018, Effect of
109. Wu S, Liu X, Yeung KW, et al., 2014, Biomimetic Porous Annealing on Chemical, Structural and Electrical Properties
92 International Journal of Bioprinting (2022)–Volume 8, Issue 1

