Talita A. Vida, Clarissa Cruz, A. Barros, N. Cheung, C. Brito, Amauri Garcia
{"title":"Biodegradable Zn−1wt.%Mg(−0.5wt.%Mn) Alloys: Influence of Solidification Microstructure on Their Corrosion Behavior","authors":"Talita A. Vida, Clarissa Cruz, A. Barros, N. Cheung, C. Brito, Amauri Garcia","doi":"10.3390/surfaces6030019","DOIUrl":null,"url":null,"abstract":"The development of biodegradable Zn-based alloys for implants that effectively mimic the functionality of native bone throughout the healing process is a multifaceted challenge; this is particularly evident in the task of achieving appropriate corrosion rates. This work explores the incorporation of 0.5wt.%Mn into a Zn−1wt.%Mg alloy, with focus on the relationship between corrosion behavior and microstructure. Electrochemical corrosion tests were carried out in a 0.06 M NaCl solution using as-solidified samples with two distinct microstructural length scales. Mn addition was found to induce significant electrochemical active behavior. Localized corrosion was predominant in interdendritic regions, with the ternary alloy exhibiting a higher susceptibility. For both alloys, the coarsening of the microstructure promoted a slight inclination to accelerate the corrosion rates in both biodegradable Zn alloys. The corrosion rate showed an increase of about nine-times with Mn addition for coarser eutectic spacings, while for finer ones, the increase was by about 22 times.","PeriodicalId":22129,"journal":{"name":"Surfaces","volume":"69 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2023-08-11","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Surfaces","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.3390/surfaces6030019","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
The development of biodegradable Zn-based alloys for implants that effectively mimic the functionality of native bone throughout the healing process is a multifaceted challenge; this is particularly evident in the task of achieving appropriate corrosion rates. This work explores the incorporation of 0.5wt.%Mn into a Zn−1wt.%Mg alloy, with focus on the relationship between corrosion behavior and microstructure. Electrochemical corrosion tests were carried out in a 0.06 M NaCl solution using as-solidified samples with two distinct microstructural length scales. Mn addition was found to induce significant electrochemical active behavior. Localized corrosion was predominant in interdendritic regions, with the ternary alloy exhibiting a higher susceptibility. For both alloys, the coarsening of the microstructure promoted a slight inclination to accelerate the corrosion rates in both biodegradable Zn alloys. The corrosion rate showed an increase of about nine-times with Mn addition for coarser eutectic spacings, while for finer ones, the increase was by about 22 times.
生物可降解的锌基合金种植体在整个愈合过程中有效地模仿天然骨的功能是一个多方面的挑战;这在实现适当腐蚀速率的任务中尤为明显。这项工作探讨了0.5wt的合并。%Mn变成Zn - 1wt。%镁合金,重点研究腐蚀行为与微观组织的关系。采用两种不同显微组织长度尺度的凝固试样,在0.06 M NaCl溶液中进行电化学腐蚀试验。发现Mn的加入诱导了显著的电化学活性行为。局部腐蚀主要发生在枝晶间,三元合金表现出较高的腐蚀敏感性。对于这两种合金,组织的粗化促进了腐蚀速率的轻微倾向。对于较粗的共晶间距,Mn的腐蚀速率提高了约9倍,而对于较细的共晶间距,Mn的腐蚀速率提高了约22倍。