Collaborative Research: Investigation of Deformation Mechanisms Governing the Tensile Ductility of Twinned Metal Nanowires
Collaborative Research: Investigation of Deformation Mechanisms Governing the Tensile Ductility of Twinned Metal Nanowires
批准号:
1410475
负责人:
Yong Zhu
金额:
$21.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2014
资助国家:
美国
项目状态:
已结题
起止时间:
2014-09-01 至 2018-08-31
中文摘要
非技术概述纳米技术目前正在快速发展,因为正在制造微米到纳米级的小结构和器件。这些结构和装置的可靠设计需要了解材料在小长度尺度下的力学性能。像纳米线这样的金属纳米结构已经被证明具有超高的屈服强度,大约是其弹性模数的十分之一。然而,这些金属纳米结构通常具有有限的硬化,导致低拉伸应变到破坏。如此低的延展性会严重影响纳米机械设备和其他技术应用中组成纳米结构的机械完整性。目前迫切需要了解金属纳米结构中控制应变硬化和拉伸延性的基本变形机制。这项研究将原位纳米力学实验和计算模型有机地结合在一起,研究了金属纳米结构中几乎未知的应变硬化行为。这一结果将有助于我们从根本上理解金属纳米线拉伸塑性的变形机制,并为设计强韧的金属纳米结构提供力学基础。本科生将被招募参加这个项目的暑期研究。乔治亚理工学院和北卡罗来纳州立大学从事这一项目的研究生之间的合作研究将促进他们的科学交流,增加团队合作经验,并发展跨学科专业知识。技术概述由于纳米线等金属纳米结构的应变硬化能力有限,通常表现出超高强度,但拉伸延展性较低。这项提议的目的是阐明一种有趣的金属纳米结构-五重孪生银纳米线-的形变机制控制应变硬化和拉伸延性,在我们的初步实验测量中显示出显著的应变硬化。拟议的研究涉及三个方面:(I)进行原位纳米力学测试,以测量单个纳米线的拉伸应力-应变响应和力学性能;(Ii)对原始和变形的纳米线进行透射电子显微镜表征,以研究潜在的位错机制,特别是表面和孪晶界介导的缺陷的影响;(Iii)进行基于分子动力学和过渡态理论的原子模拟,以阐明控制应变速率和温度对应变硬化和拉伸延性影响的位错机制。本项目中研究的五重孪晶纳米线不同于单晶纳米线、块体纳米晶和纳米孪晶金属,因为自由表面和共格内部界面(即与纳米线轴平行的唯一取向的孪晶界面)的协同效应对于控制位错硬化机制和相关的力学性能至关重要。从这个项目中获得的力学见解将对开发在不严重损失小体积金属材料延展性的情况下提高强度的方法将是有价值的。
英文摘要
Non-technical summaryRapid progress in nanotechnology is currently under way in that small structures and devices are being fabricated at the micrometer to nanometer scales. The reliable design of these structures and devices calls for an understanding of the mechanical properties of materials at small length scales. Metallic nanostructures like nanowires have been shown to exhibit ultra-high yield strength, on the order of one tenth of their elastic moduli. However, these metallic nanostructures usually have limited hardening, causing low tensile strain to failure. Such low ductility can severely affect the mechanical integrity of the constituent nanostructures in nanomechanical devices and other technological applications. There is currently a critical need to understand the fundamental deformation mechanisms governing the strain hardening and tensile ductility in metallic nanostructures. The proposed research synergistically integrates the in situ nanomechanical experiment and computational modeling to investigate the nearly unexplored strain hardening behaviors in metallic nanostructures. The results are expected to advance our fundamental understanding of deformation mechanisms governing the tensile ductility in metal nanowires and provide a mechanistic basis for the design of strong and ductile metallic nanostructures. Undergraduates will be recruited for summer research on this project. Collaborative research between the graduate students working on this project in Georgia Institute of Technology and North Carolina State University will promote their scientific exchange, increase team-work experience, and develop interdisciplinary expertise.Technical summaryThe metallic nanostructures such as nanowires usually exhibit ultra-high strength, but low tensile ductility, owing to their limited strain hardening capability. The objective of this proposal is to elucidate the deformation mechanisms governing the strain hardening and tensile ductility of an interesting type of metallic nanostructures - five-fold twinned Ag nanowires - which exhibit significant strain hardening in our preliminary experimental measurements. The proposed research involves three thrusts: (i) to perform the in situ nanomechanical testing to measure the tensile stress-strain responses and mechanical properties of individual nanowires; (ii) to perform the transmission electron microscopy characterization of pristine and deformed nanowires for investigation of the underlying dislocation mechanisms and particularly the effects of surface and twin boundary mediated defects; (iii) to conduct the molecular dynamics and transition state theory based atomistic modeling to elucidate dislocation mechanisms that control the strain rate and temperature effects on strain hardening and tensile ductility. The five-fold twinned nanowires studied in this project are different from the single-crystal nanowires, bulk nanocrystalline and nanotwinned metals in that the synergetic effects of free surfaces and coherent internal interfaces (i.e., twin boundaries with unique orientation parallel to the nanowire axis) can be critically important for controlling the dislocation mechanisms of hardening and related mechanical properties. The mechanistic insights gained from this project will be valuable to develop means to enhance the strength without a severe loss of ductility in a range of small-volume metallic materials.
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