Collaborative Research: Magnetic Properties of Disordered Rare-Earth Nanostructures
Collaborative Research: Magnetic Properties of Disordered Rare-Earth Nanostructures
批准号:
0504177
负责人:
Paul Shand
金额:
$12.28万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-08-01 至 2009-07-31
中文摘要
****非技术摘要****纳米级无序是非常不同类别的技术重要材料的共同线索,例如用于永磁体和信息存储的材料。该合作项目使用模型稀土合金系统来了解磁性能对纳米级结构和化学紊乱的依赖。模型系统将通过不同的制造方法制备,并使用x射线衍射、电子显微镜和同步加速器技术进行结构表征。原子水平和宏观磁测量将与特定类型的无序相关联。这些结果将提高我们对更复杂材料中纳米级无序和磁性之间关系的理解,从而使我们能够为现有和未来的应用开发改进的材料。该合作项目涉及来自林肯内布拉斯加州大学和北爱荷华大学的研究人员,阿贡国家实验室的先进光子源和洛斯阿拉莫斯国家实验室。该项目为博士后、研究生和本科生提供国家急需领域的跨学科培训(包括使用国家实验室的设施)。与向上发展的数学和科学学生、初中和高中教师以及高中生一起举办的研讨会和暑期活动将有助于教育未来的劳动力纳米材料的重要性。****技术摘要****纳米尺度的非均匀性是巨磁阻(CMR)材料和高tc超导体等系统的许多基本特性的基础。这个合作项目使用纳米结构稀土(RE)系统来研究磁性和原子级无序之间的关系。特别是,无序稀土laves相材料将通过机械铣削,惰性气体冷凝和熔体纺丝制备。稀土laes相材料具有与CMR和高tc材料相似的磁性特性,但结构更简单。无序性(配位数、平均原子间距离和原子间距离的变化)将通过x射线衍射和x射线吸收精细结构光谱(XAFS)来确定。原子水平和宏观磁性测量,包括磁性XAFS, XMCD,交流和直流磁化,将与特定类型的无序相关。了解矫顽力等外在特性是如何依赖于无序的,将会改进用于永磁体和信息存储的材料。样品制作、直流磁测量和结构表征将在内布拉斯加大学林肯分校完成,而北爱荷华大学将负责交流磁化率的测量和分析。该奖项的广泛影响包括博士后、研究生和本科生的跨学科研究培训。初高中教师和高中生将通过讲习班和暑期课程受到影响,说明材料在社会中所起的作用。
英文摘要
****NON-TECHNICAL ABSTRACT****Nanoscale disorder is a common thread in very different classes of technologically important materials such as those used for permanent magnets and information storage. This collaborative project uses model rare-earth-alloy systems to understand the dependence of magnetic properties on nanometer-scale structural and chemical disorder. The model systems will be prepared by different fabrication methods and structurally characterized using x-ray diffraction, electron microscopy and synchrotron techniques. Atomic-level and macroscopic magnetic measurements will be correlated to specific types of disorder. These results will improve our understanding of the relationship between nanoscale disorder and magnetic properties in more complex materials, thus allowing us to develop improved materials for existing and future applications. This collaborative project involves researchers from the University of Nebraska at Lincoln and the University of Northern Iowa, the Advanced Photon Source at Argonne National Laboratory, and Los Alamos National Laboratory. The project provides postdoctoral fellows, graduate students and undergraduate students with interdisciplinary training (including the use of facilities at national laboratories) in an area of critical national need. Workshops and summer activities with Upward Bound math & science students, middle and high school teachers, and high-school students will help educate the future workforce about the importance of nanoscale materials.****TECHNICAL ABSTRACT****Nanoscale inhomogeneity underlies many of the fundamental properties of systems such as colossal magnetoresistance (CMR) materials and high-Tc superconductors. This collaborative project uses nanostructured rare-earth (RE) systems to investigate the relationship between magnetic properties and atomic-level disorder. In particular, disordered RE Laves-phase materials will be prepared by mechanical milling, inert-gas condensation, and melt spinning. RE Laves-phase materials have magnetic characteristics similar to CMR and high-Tc materials, but are structurally simpler. Disorder (coordination number, mean interatomic distances, and variations in the interatomic distances), will be determined by x-ray diffraction and X-Ray Absorption Fine-Structure Spectroscopy (XAFS). Atomic-level and macroscopic magnetic measurements, including magnetic XAFS, XMCD, and ac and dc magnetization, will be correlated to specific types of disorder. Understanding how extrinsic properties such as coercivity depend on disorder will improve materials such as those used for permanent magnets and information storage. Sample fabrication, DC magnetic measurements, and structural characterization will be done at the University of Nebraska-Lincoln, while the University of Northern Iowa will be responsible for ac susceptibility measurements and analysis. The broader impacts of this award include interdisciplinary research training for postdocs, graduate students and undergraduates. Middle and high school teachers and high-school students will be impacted through workshops and summer programs that illustrate the role materials play in society.
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会议论文
RUI: Magnetic Phase Transitions in Intercalated Dichalcogenides
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批准号:1206530
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项目类别:Continuing Grant
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资助金额:$27.0万
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财政年份:2012
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负责人:Paul Shand
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依托单位:
国内基金
海外基金
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