Ning Chengyun, Zhou Lei, Zhu Ye, Li Ying, Yu Peng, Wang Shuangying, He Tianrui, Li Weiping, Tan Guoxin, Wang Yingjun, Mao Chuanbin
School of Materials Science and Engineering, South China University of Technology , Guangzhou, 510641, China.
Department of Chemistry & Biochemistry, Stephenson Life Sciences Research Center, University of Oklahoma , 101 Stephenson Parkway, Norman, Oklahoma 73019, United States.
Langmuir. 2015 Dec 22;31(50):13561-70. doi: 10.1021/acs.langmuir.5b03699. Epub 2015 Dec 11.
The effect of cations in the surrounding solutions on the surface degradation of magnesium alloys, a well-recognized biodegradable biomaterial, has been neglected compared with the effect of anions in the past. To better simulate the compressive environment where magnesium alloys are implanted into the body as a cardiovascular stent, a device is designed and employed in the test so that a pressure, equivalent to the vascular pressure, can be directly applied to the magnesium alloy implants when the alloys are immersed in a medium containing one of the cations (K(+), Na(+), Ca(2+), and Mg(2+)) found in blood plasma. The surface degradation behaviors of the magnesium alloys in the immersion test are then investigated using hydrogen evolution, mass loss determination, electron microscopy, pH value, and potentiodynamic measurements. The cations are found to promote the surface degradation of the magnesium alloys with the degree decreased in the order of K(+) > Na(+) > Ca(2+) > Mg(2+). The possible mechanism of the effects of the cations on the surface degradation is also discussed. This study will allow us to predict the surface degradation of magnesium alloys in the physiological environment and to promote the further development of magnesium alloys as biodegradable biomaterials.
与阴离子的作用相比,周围溶液中的阳离子对镁合金(一种公认的可生物降解生物材料)表面降解的影响在过去一直被忽视。为了更好地模拟镁合金作为心血管支架植入体内的压缩环境,设计并使用了一种装置进行测试,以便当镁合金浸入含有血浆中发现的阳离子(K⁺、Na⁺、Ca²⁺和Mg²⁺)之一的介质中时,能够直接对镁合金植入物施加相当于血管压力的压力。然后,使用析氢、质量损失测定、电子显微镜、pH值和动电位测量等方法研究镁合金在浸泡试验中的表面降解行为。发现阳离子促进镁合金的表面降解,促进程度按K⁺>Na⁺>Ca²⁺>Mg²⁺的顺序降低。还讨论了阳离子对表面降解影响的可能机制。这项研究将使我们能够预测镁合金在生理环境中的表面降解,并促进镁合金作为可生物降解生物材料的进一步发展。