Role of heterogenous microstructure and deformation behavior in achieving superior strength-ductility synergy in zinc fabricated via laser powder bed fusion

IF 18.2 1区 材料科学 Q1 CHEMISTRY, PHYSICAL ACS Energy Letters Pub Date : 2024-03-29 DOI:10.1088/2631-7990/ad3929
Zhi Dong, Changjun Han, Yanzhe Zhao, Jinmiao Huang, Chenrong Ling, Gaoling Hu, Yunhui Wang, Di Wang, Changhui Song, Yongqiang Yang
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Abstract

Zinc (Zn) is considered a promising biodegradable metal for implant applications due to its appropriate degradability and favorable osteogenesis properties. In this work, laser powder bed fusion (LPBF) additive manufacturing was employed to fabricate pure Zn with a heterogenous microstructure and exceptional strength-ductility synergy. An optimized processing window of LPBF was established for printing Zn samples with relative densities greater than 99% using a laser power range of 80–90 W and a scanning speed of 900 mm/s. The Zn sample printed with a power of 80 W at a speed of 900 mm/s exhibited a hierarchical heterogenous microstructure consisting of millimeter-scale molten pool boundaries, micrometer-scale bimodal grains, and nanometer-scale pre-existing dislocations, due to rapid cooling rates and significant thermal gradients formed in the molten pools. The printed sample exhibited the highest ductility of ~12.1% among all reported LPBF-printed pure Zn to date with appreciable ultimate tensile strength (~128.7 MPa). Such superior strength-ductility synergy can be attributed to the presence of multiple deformation mechanisms that are primarily governed by heterogeneous deformation-induced hardening resulting from the alternatively arrangement of bimodal Zn grains with pre-existing dislocations. Additionally, continuous strain hardening was facilitated through the interactions between deformation twins, grains and dislocations as strain accumulated, further contributing to the superior strength-ductility synergy. These findings provide valuable insights into the deformation behavior and mechanisms underlying exceptional mechanical properties of LPBF-printed Zn and its alloys for implant applications.
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异质微观结构和变形行为在通过激光粉末床熔融技术制造的锌中实现优异强度-电导率协同效应中的作用
锌(Zn)具有适当的可降解性和良好的成骨特性,因此被认为是一种很有前景的生物可降解植入金属。本研究采用激光粉末床熔融(LPBF)快速成型技术制造具有异质微观结构和优异强度-电导率协同作用的纯锌。在激光功率为 80-90 W、扫描速度为 900 mm/s 的条件下,建立了 LPBF 的优化加工窗口,可打印出相对密度大于 99% 的 Zn 样品。功率为 80 W、扫描速度为 900 mm/s 的 Zn 样品呈现出分层异质微观结构,包括毫米级熔池边界、微米级双峰晶粒和纳米级预存在位错,这是由于熔池中形成了快速冷却速率和显著的热梯度。在迄今报道的所有 LPBF 印刷纯 Zn 样品中,该印刷样品的延展性最高(约为 12.1%),并具有可观的极限拉伸强度(约为 128.7 兆帕)。这种卓越的强度-延展性协同作用可归因于多种变形机制的存在,而这些机制主要是由具有预存在位错的双峰锌晶粒的交替排列所产生的异质变形诱导硬化所支配的。此外,随着应变的累积,变形孪晶、晶粒和位错之间的相互作用促进了持续的应变硬化,从而进一步促成了卓越的强度-电导率协同作用。这些发现为我们深入了解用于植入应用的 LPBF 印刷锌及其合金的变形行为和特殊机械性能的内在机制提供了宝贵的见解。
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来源期刊
ACS Energy Letters
ACS Energy Letters Energy-Renewable Energy, Sustainability and the Environment
CiteScore
31.20
自引率
5.00%
发文量
469
审稿时长
1 months
期刊介绍: ACS Energy Letters is a monthly journal that publishes papers reporting new scientific advances in energy research. The journal focuses on topics that are of interest to scientists working in the fundamental and applied sciences. Rapid publication is a central criterion for acceptance, and the journal is known for its quick publication times, with an average of 4-6 weeks from submission to web publication in As Soon As Publishable format. ACS Energy Letters is ranked as the number one journal in the Web of Science Electrochemistry category. It also ranks within the top 10 journals for Physical Chemistry, Energy & Fuels, and Nanoscience & Nanotechnology. The journal offers several types of articles, including Letters, Energy Express, Perspectives, Reviews, Editorials, Viewpoints and Energy Focus. Additionally, authors have the option to submit videos that summarize or support the information presented in a Perspective or Review article, which can be highlighted on the journal's website. ACS Energy Letters is abstracted and indexed in Chemical Abstracts Service/SciFinder, EBSCO-summon, PubMed, Web of Science, Scopus and Portico.
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