EAGER: A Novel Class of Magnetic Materials with Anisotropic Curie Temperature
EAGER: A Novel Class of Magnetic Materials with Anisotropic Curie Temperature
批准号:
0964830
负责人:
Harsh Chopra
金额:
$18.08万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-08-01 至 2014-07-31
中文摘要
所有已知的磁性材料晶体都具有磁性,无论测量的晶体方向如何。此外,当晶体被加热到一定的温度,也就是居里温度以上时,磁性就会消失。这个迫切的项目试图确定一种令人兴奋的全新磁性材料的存在,这种材料在给定的晶体方向上是磁性的,而在其他方向上是非磁性的。虽然自19世纪末和20世纪现代磁学理论开始发展以来,人们就一直在猜测这种材料的存在,但它们存在的证据仍然难以捉摸。实验证明需要非常规和超灵敏的仪器,使用纳米材料装置来同时测量如此少量的热交换和样品的电学性质。虽然这是一个高风险的项目,但从它获得的积极成果将是变革性的,并在刺激发现类似材料的努力和扩大目前对磁性物理的理论理解方面产生高额回报。由于居里温度是一种基本的材料特性,所有依赖于居里温度的效应也会表现出不寻常的行为,这可能会导致一系列新的磁性传感器和执行器的出现。该项目将为一名博士后研究员提供工作机会,并指导两名本科生进行与微制造、磁学、量热学和电学特性有关的实验,这些实验与学术界和工业具有广泛的相关性。技术这个急切的项目试图证明一类全新的具有各向异性居里温度的磁性材料的存在。这种材料将具有独特的性质,在特定的温度下,沿着给定的晶体方向是亚铁磁性,而在其他方向是顺磁性的。虽然它们的存在长期以来一直被猜测和理论化,但该项目确定了这种不寻常的磁性行为表现所必需的关键材料特征。一组新的实验是专门设计的,目的是证明这种效应在一种材料中表现出明显的磁化率与晶体取向的关系。这一高风险项目的成功结果将是变革性的,从基本和技术角度都会产生很高的回报,促使实验努力发现类似的材料,并使目前的磁性物理理论框架得以扩展。由于材料的居里温度是一种内在属性,所有依赖于居里温度的效应也会表现出不寻常的方向性行为,导致一系列新的磁性传感器和执行器的出现。该项目将为一名博士后研究员提供追求终身教职的机会,并指导两名本科生,从事与微制造、磁性、PJ量热和电子传输相关的实验,这些实验与学术界和工业界具有广泛的相关性。
英文摘要
NON-TECHNICALAll known crystals of magnetic materials possess magnetism regardless of the crystal direction in which measurements are made. Moreover, the magnetic properties disappear when the crystal is heated above a certain temperature, called the Curie temperature. This EAGER project seeks to establish the existence of an exciting and entirely new class of magnetic materials that are magnetic in a given crystal direction while being non-magnetic along other directions. While the existence of such materials has been conjectured ever since the beginnings of the development of the modern theory of magnetism in the late 19th and the 20th centuries, the proof of their existence has remained elusive. Experimental proof requires unconventional and ultra-sensitive instrumentation, employing a nanofabricated device to measure such small quantities of heat exchange simultaneously with electrical properties of the sample. While a high-risk project, positive results obtained from it would be transformative and yield high payoff in spurring efforts to discover similar materials and expanding current theoretical understanding of the physics of magnetism. Since the Curie temperature is a fundamental material property, all effects dependent on it would also exhibit unusual behavior, potentially leading to a gamut of new magnetic sensors and actuators. The project would provide opportunities for a post-doctoral fellow to work, and mentor two undergraduate students, on experiments related to microfabrication, magnetism, calorimetry, and electrical properties, which have broad relevance to academia and industry. TECHNICALThis EAGER project seeks to establish the existence of an entirely new class of magnetic materials that have anisotropic Curie temperature. Such materials would have the unique property, at a specific temperature, of being ferrimagnetic along a given crystal direction while being paramagnetic along other directions. While their existence has long been conjectured and theorized, the project identifies key materials characteristics necessary for the manifestation of such unusual magnetic behavior. A novel set of experiments was specifically designed to demonstrate the effect in a material that exhibits a distinct dependence of its magnetic susceptibility on crystal orientation. The successful outcome of this high-risk project would be transformative and yield a high payoff from both fundamental as well as technological viewpoints, spurring experimental efforts to discover similar materials as well as enabling the expansion of the current theoretical framework of the physics of magnetism. Since the Curie temperature of a material is an intrinsic property, all effects dependent on it would also exhibit unusual directional behavior, leading to a gamut of new magnetic sensors and actuators. The project will provide opportunities for a post-doctoral fellow to pursue a tenure track faculty position and to mentor two undergraduate students, working on experiments related to microfabrication, magnetism, pJ calorimetry, and electron transport, which have broad relevance for academia and industry.
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Evolution of magnetoelasticity from a single-atom bridge to bulk
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批准号:1541236
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项目类别:Continuing Grant
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资助金额:$39.8万
-
财政年份:2014
-
负责人:Harsh Chopra
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依托单位:
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Evolution of magnetoelasticity from a single-atom bridge to bulk
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批准号:1309712
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