选择性激光熔化法制备螺旋共晶增强可生物降解Zn-Mg-Ag合金

Chengde Gao , Chuanzhi Li , Shuping Peng , Cijun Shuai
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引用次数: 5

摘要

锌具有中等降解率和良好的生物相容性,是一种很有前途的生物降解金属。但纯锌的机械强度和塑性不足,限制了其在骨种植体中的应用。在本研究中,通过选择性激光熔化法制备的Zn-Mg-Ag合金形成螺旋共晶结构,以改善其力学性能。结果表明:制备的Zn - mg - ag合金由初生Zn基体和α-Zn与金属间化合物MgZn2交替组成的共晶相组成;共晶相呈螺旋状,随合金中Ag含量的增加而增加。共晶钉住效应阻碍位错,从而导致位错积累。同时,螺旋结构改变了裂纹的扩展方向,使裂纹的扩展能量逐层耗散。结果表明,Zn-3Mg-1Ag合金的抗压强度可达309±15 MPa,应变提高27%。此外,Zn-Mg-Ag合金与MG-63细胞具有良好的生物相容性和抑菌活性。这些发现表明螺旋共晶结构在提高生物可降解锌合金的机械强度和塑性方面具有潜力。
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Spiral-eutectic-reinforced Biodegradable Zn–Mg–Ag Alloy Prepared via Selective Laser Melting

Zn is a promising biodegradable metal owing to its moderate degradation rate and acceptable biocompatibility. However, the insufficient mechanical strength and plasticity of pure Zn limits its application in bone implants. In this study, a spiral eutectic structure is constructed in Zn–Mg–Ag alloys prepared via selective laser melting to improve their mechanical properties. Results show that the prepared Zn–Mg–Ag alloys are composed of a primary Zn matrix and a eutectic phase, which is composed of alternating α-Zn and an intermetallic compound, MgZn2. Moreover, the eutectic phase resembles a spiral and increases with Ag content in the alloys. The eutectic pinning effect hinders dislocation and hence results in dislocation accumulation. Meanwhile, the spiral structure alters the propagation direction and dissipates the propagation energy of cracks layer by layer. Consequently, a compressive strength of up to 309 ± 15 MPa and an improved strain of 27% are exhibited in Zn–3Mg–1Ag alloy. Moreover, the Zn–Mg–Ag alloys show high biocompatibility with MG-63 cells and antibacterial activity against Escherichia coli. These findings indicate the potential of spiral eutectic structures for enhancing both the mechanical strength and plasticity of biodegradable Zn alloys.

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