Nanostructured Magnetic Network
Nanostructured Magnetic Network
批准号:
9615026
负责人:
John Barnard
金额:
$4.82万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
1996
资助国家:
美国
项目状态:
已结题
起止时间:
1996-08-01 至 1997-10-31
中文摘要
小行星9615026 一种简单的方法已经开发用于制造新的纳米结构的磁性“网络”,表现出独特的和有用的磁性能。 网络是非常不寻常的,因为它们的维度可以在纳米尺度上连续控制,允许探索从零维“点”到一维多孔网络到二维膜(以及具有中间尺寸的拓扑结构)的受限几何形状,这取决于基底纳米结构和网络厚度。 在对铁网络的初步研究中,已经观察到铁的介电性的显著增强(比等效薄膜值高两个数量级),这是将铁限制在具有数十纳米范围内的临界尺寸的网络拓扑结构的直接结果。 在这项研究计划中,网络材料和基底的纳米结构的作用将被评估。 将对具有不同饱和磁化强度的铁磁体进行比较研究,以确定网络的强形状各向异性是否是磁性能增强的主要机制。 将使用具有比商业上可用的更小的孔径和更可变的孔隙率的多孔衬底研究纳米结构衬底的拓扑结构对沉积网络的磁性质的影响。 这部分工作将通过阳极氧化单晶硅晶片来进行。 电化学工艺参数将用于独立控制孔径和排列以及孔隙率。 磁性表征旨在了解磁化(和磁化反转)过程沿着与磁畴结构将进行使用温度和时间相关的磁滞研究和磁力显微镜。网络的精确尺寸和它们的晶体学可以通过透射电子显微镜来确定. 在下一代记录介质的开发过程中,非常薄的磁性“硬”材料的简单制造非常重要。 所研究的独特网络拓扑具有重要的技术意义。 例如,特别困难的挑战是当使记录头非常接近存储介质飞行时遇到的限制问题。 传统的薄膜介质通常通过机械或化学手段粗糙化以最小化该问题。 网络的独特的表面形貌应在不进一步处理的情况下产生低的静摩擦值,这将使得能够实现更低的飞行高度和更高的记录密度。 ***
英文摘要
9615026 Barnard A simple method has been developed for fabrication of novel nanostructured magnetic 'networks' which exhibit unique and useful magnetic properties. The networks are highly unusual in that their dimensionality can be controlled continuously at the nanometer scale allowing for exploration of confined geometries ranging from zero dimensional 'dots' to one dimensional porous networks to two dimensional films (as well as topologies with intermediate dimensions) depending on substrate nanostructure and network thickness. In preliminary studies on iron networks, dramatic enhancements in coercivity have been observed (two orders of magnitude higher than the equivalent thin film value) which are a direct result of the confinement of the iron to a network topology with critical dimensions in the range of tens of nanometers. In this research program the role of both the network material and the nanostructure of the substrate will be assessed. Comparative studies of ferromagnets with differing saturation magnetizations will be carried out to determine whether the strong shape anisotropy of the network is the primary mechanism of coercivity enhancement. The effect of the topology of the nanostructured substrate on magnetic properties of the deposited network will be studied using porous substrates with smaller pore diameters and more variable porosity than is available commercially. This part of the work will be carried out by anodically oxidizing single crystal silicon wafers. Electrochemical process parameters will be used to independently control pore diameter and arrangement as well as porosity. Magnetic characterization aimed at understanding the magnetization (and magnetization reversal) process along with the magnetic domain structure will be carried out using temperature and time dependent hysteresis studies and magnetic force microscopy. Precise dimensions of the networks and their crystallography be determined by transmission electron mic roscopy. %%% The simple fabrication of very thin, magnetically 'hard' materials is important in the context of the development of the next generation recording media. The unique network topology under study has important technological implications. For example, a particularly difficult challenge is the striction problem encountered when flying a recording head very close to the storage media. Conventional thin film media are typically roughened by mechanical or chemical means to minimize this problem. The unique surface topography of the networks should give rise to low values of stiction without further processing which will enable lower flying heights and higher recording densities. ***
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Nanostructured Magnetic Networks
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批准号:9713497
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项目类别:Continuing Grant
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资助金额:$35.1万
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财政年份:1997
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负责人:John Barnard
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依托单位:
Giant Magnetoresistance in Multilayers and Single Layer Phase Separating Alloy Films
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批准号:9301648
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项目类别:Continuing Grant
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资助金额:$21.99万
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财政年份:1993
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负责人:John Barnard
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依托单位:
Upgrade an Existing 4-Target Sputtering System
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批准号:9212957
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项目类别:Standard Grant
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资助金额:$4.0万
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财政年份:1992
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负责人:John Barnard
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依托单位:
Presidential Young Investigator Award
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批准号:9157402
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项目类别:Continuing Grant
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资助金额:$25.21万
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财政年份:1991
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负责人:John Barnard
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依托单位:
Thermal Evolution of Interphase Interfaces in Multilayer Ferromagnetic Thin Films -- The Interplay of Magnetic Properties and Microstructure
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批准号:8918403
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项目类别:Continuing Grant
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资助金额:$21.63万
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财政年份:1990
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负责人:John Barnard
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依托单位:
US-UK Cooperative Research: Interdependence of Micro- structure and Magnetic Properties in Iron-Based Thin Films
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批准号:8921831
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项目类别:Standard Grant
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资助金额:$1.14万
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财政年份:1990
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负责人:John Barnard
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依托单位:
海外基金