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用于生物医学应用的 ZnCuTiMo 合金的开发和特性研究:高通量梯度连铸方法。

Development and characterization of ZnCuTiMo alloys for biomedical applications: A high-throughput gradient continuous casting approach.

机构信息

Beijing Advanced Innovation Center for Materials Genome Engineering, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China.

School of Materials Science and Engineering, Hubei University of Automotive Technology, Shiyan 442002, China.

出版信息

Acta Biomater. 2024 Jul 1;182:126-138. doi: 10.1016/j.actbio.2024.05.019. Epub 2024 May 10.

Abstract

The limited mechanical properties of pure Zn, such as its low strength and ductility, hinder its application as a material for biodegradable implants. Addressing this challenge, the current study focuses on the development of biodegradable Zn-based alloys, employing innovative alloy design and processing strategies. Here, alloys with compositions ranging from 0.02 to 0.10 weight percent (wt%) Cu, 1.22 to 1.80 wt% Ti, and 0.04 to 0.06 wt% Mo were produced utilizing a high-throughput gradient continuous casting process. This study highlights three specific alloys: ZnCuTiMo (HR8), ZnCuTiMo (HR7), and ZnCuTiMo (HR6), which were extensively evaluated for their microstructure, mechanical properties, electrochemical performance, potential as bioimplants, and cytotoxicity. These alloys were found to exhibit enhanced mechanical strength, optimal degradation rates, and superior biocompatibility, evidenced by in-vivo experiments with SD rats, positioning them as promising candidates for medical implants. This research not only introduces a significant advancement in biodegradable alloy development but also proposes an efficient method for their production, marking a pivotal step forward in biomedical engineering. STATEMENT OF SIGNIFICANCE: The limited mechanical properties of pure Zn have hindered its application in biodegradable implants. Our research primarily focuses on the alloy design and process strategies of biodegradable Zn-based alloys. We explore the ZnCuTiMo alloys. This study introduces a high-throughput experimental approach for efficient screening of multi-component alloy systems with optimal properties. The ZnCuTixMo alloys were designed and processed through gradient continuous casting, followed by homogenization and hot rolling. Our findings indicate that the ZnCuTiMo alloy demonstrates superior tensile, mechanical, and corrosion properties post hot rolling. The study suggests that ZnCuTiMo, ZnCuTiMo, and ZnCuTiMo alloys hold significant potential as biodegradable materials.

摘要

纯锌的机械性能有限,例如强度和延展性低,这阻碍了它作为可生物降解植入物材料的应用。针对这一挑战,本研究专注于开发可生物降解的锌基合金,采用创新的合金设计和加工策略。在这里,使用高通量梯度连铸工艺生产了组成范围为 0.02 至 0.10 重量%(wt%)Cu、1.22 至 1.80 wt%Ti 和 0.04 至 0.06 wt%Mo 的合金。本研究重点介绍了三种特定的合金:ZnCuTiMo(HR8)、ZnCuTiMo(HR7)和 ZnCuTiMo(HR6),对它们的微观结构、机械性能、电化学性能、作为生物植入物的潜力和细胞毒性进行了广泛评估。这些合金表现出增强的机械强度、最佳的降解速率和卓越的生物相容性,这通过 SD 大鼠的体内实验得到了证明,使它们成为有前途的医用植入物候选材料。这项研究不仅在可生物降解合金开发方面取得了重大进展,而且还提出了一种高效的生产方法,这标志着生物医学工程向前迈出了关键一步。 意义声明:纯锌的机械性能有限,限制了其在可生物降解植入物中的应用。我们的研究主要集中在可生物降解锌基合金的合金设计和工艺策略上。我们探索了 ZnCuTiMo 合金。本研究引入了一种高通量实验方法,用于有效筛选具有最佳性能的多组分合金系统。通过梯度连铸、均化和热轧对 ZnCuTixMo 合金进行设计和加工。我们的研究结果表明,热轧后 ZnCuTiMo 合金表现出优异的拉伸、力学和腐蚀性能。研究表明,ZnCuTiMo、ZnCuTiMo 和 ZnCuTiMo 合金作为可生物降解材料具有很大的潜力。

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