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一种可生物降解的 Mg-3Sc-3Y 合金的研究及自钝化对其体外降解的影响。

A study of a biodegradable Mg-3Sc-3Y alloy and the effect of self-passivation on the in vitro degradation.

机构信息

Department of Materials Science and Engineering, University of Florida, Gainesville, FL 32611, USA.

出版信息

Acta Biomater. 2013 Feb;9(2):5331-40. doi: 10.1016/j.actbio.2012.08.004. Epub 2012 Aug 17.

Abstract

Magnesium and its alloys have been investigated for their potential application as biodegradable implant materials. Although properties of magnesium such as biocompatibility and susceptibility to dissolution are desirable for biodegradable implant applications, its high degradation rate and low strength pose a significant challenge. A potential way to reduce the initial degradation rate is to form a self-passivating protective layer on the surface of the alloy. Oxides with a low enthalpy of formation result in a strong thermodynamic driving force to produce oxide surfaces that are more stable than the native oxide (MgO), and possibly reduce the initial degradation rate in these alloys. In the present study a ternary Mg-3wt.% Sc-3wt.% Y alloy was investigated and its oxidation behavior studied. The effect of surface passivation on the in vitro degradation rate was studied and the degradation products identified. The results show that the oxide provided an initial degradation barrier and 24h oxidation resulted in a negligible degradation rate for up to 23 days. Furthermore, the degradation products of the alloy showed no significant toxicity to osteoblastic cells, and cell proliferation studies confirmed cell attachment and proliferation on the surface of the oxidized alloy.

摘要

镁及其合金因其作为可生物降解植入材料的潜在应用而受到研究。尽管镁的一些特性,如生物相容性和易溶解性,对于可生物降解植入物的应用是理想的,但它的高降解率和低强度仍然是一个重大的挑战。一种降低初始降解率的潜在方法是在合金表面形成自钝化保护层。形成能较低的氧化物会产生较强的热力学驱动力,生成比原生氧化物(MgO)更稳定的氧化物表面,并可能降低这些合金的初始降解率。本研究对三元 Mg-3wt.%Sc-3wt.%Y 合金进行了研究,并研究了其氧化行为。研究了表面钝化对体外降解率的影响,并对降解产物进行了鉴定。结果表明,氧化层提供了初始降解屏障,24 小时的氧化导致在长达 23 天的时间内降解率可忽略不计。此外,合金的降解产物对成骨细胞没有明显的毒性,细胞增殖研究证实了细胞在氧化合金表面的附着和增殖。

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