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Optical Studies of Spin Dynamics, Interfacial Magnetism, and Barrier Heights in MgO Heterostructures and Devices

Optical Studies of Spin Dynamics, Interfacial Magnetism, and Barrier Heights in MgO Heterostructures and Devices
MgO 异质结构和器件中自旋动力学、界面磁性和势垒高度的光学研究
批准号:
0706681
负责人:
Harry Tom
金额:
$0.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-07-01 至 2011-06-30

项目摘要

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中文摘要
翻译
技术:该项目使用光学技术研究MgO异质结构,这是一种重要的自旋电子材料。它的目的是解决几个重要的问题,关于巨隧穿磁电阻(TMR)在MgO基磁性隧道结:源的偏置依赖性的TMR,材料缺陷的作用对TMR,和有效的假设磁性微结构在横向和垂直方向的自旋力矩。该项目应用光学二次谐波产生(SHG)直接解决这些重要问题,这些问题是MgO基磁性隧道结和磁性随机存取存储器的核心。二次谐波产生将用于在分子束外延(MBE)生长过程中进行实时监测的界面。它将被用来表征界面磁性,并与体磁性进行比较。二次谐波产生也有能力直接测量MgO的势垒高度与自旋分辨率,甚至可以提供有关的有效质量的信息隧穿过程。实验研究还将通过用GHz交流电流共振驱动设备来研究自旋扭矩设备中的磁性微结构,并使用同步光脉冲来测量界面和体磁化动态之间可能的相移。此外,将开发一种无孔近场光学显微镜技术,与时间分辨二次谐波发生光谱学一起工作,以探测横向微观结构。非技术性:该项目涉及材料科学领域的基础研究问题,具有很高的技术相关性。磁性随机存取存储器(MRAM)具有将现有的主流存储器(用于现代生活的各个方面)联合收割机组合成通用存储器的潜力。然而,挑战与这一前所未有的机遇并存。解决一些挑战将大大有助于这项伟大技术的进步,因此对社会产生巨大影响。从事该项目的学生将获得材料合成和光谱学方面的独特培训,这将有助于他们在工业就业市场上发展职业生涯。由于加州大学滨江分校周围人口的多样性,有足够的机会来帮助提高技术劳动力的多样性。 PI致力于一些外展活动,包括本科和高中参与研究,本科和研究生课程的开发,以反映当前的研究活动,以及每周纳米物理期刊俱乐部的管理。
英文摘要
Technical: This project uses optical techniques to study MgO heterostructures, an important material for spin-based electronics. It aims to addressing several important questions regarding giant tunneling magnetoresistance (TMR) in MgO-based magnetic tunnel junctions: the source of the bias dependence of TMR, the role of materials imperfections on the TMR, and valid assumptions regarding magnetic microstructure in both the lateral and vertical directions for spin torque. The project applies optical second harmonic generation (SHG) to directly address these important issues which are central to MgO-based magnetic tunnel junctions and magnetic random access memory. Second harmonic generation will be utilized in situ to perform real-time monitoring of interfaces during molecular beam epitaxy (MBE) growth. It will be used to characterize interfacial magnetism and compare with the bulk magnetism. Second harmonic generation also has the ability to directly measure the barrier heights of MgO with spin resolution, and could even give information about the effective mass related to the tunneling process. The experimental research will also investigate magnetic microstructure in spin-torque devices by driving the devices resonantly with GHz ac currents, and used synchronized optical pulses to measure possible phase shifts between interface and bulk magnetization dynamics. In addition, an apertureless near-field optical microscopy technique will be developed to work in conjunction with the time-resolved second harmonic generation spectroscopy to probe the lateral microstructure.Non-technical: The project addresses basic research issues in a topical area of materials science with high technological relevance. Magnetic random access memory (MRAM) possesses the potential to combine the existing mainstream memories, used in every aspect of modern lives, into a universal memory. However, the challenges coexist with this unprecedented opportunity. Solving some of the challenges will significantly contribute to the advances of this great technology, therefore have a great impact to the society. Students working on this project will gain a unique training in materials synthesis and optical spectroscopy, which will help them develop careers in the industrial job market. Due to the diverse demographic surrounding University of California at Riverside, there is ample opportunity to help enhance diversity in the technological workforce. The PIs are committed to a number of outreach activities including undergraduate and high school participation in research, development of undergraduate and graduate coursework to reflect the current research activities, and the management of a weekly nanoscale physics journal club.
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  • 项目类别:
    Continuing Grant
  • 资助金额:
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  • 财政年份:
    2018
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海外基金