NIRT: Collaborative Research: Spin Transport and Dynamics in Nanoscale Hybrid-Structures
NIRT: Collaborative Research: Spin Transport and Dynamics in Nanoscale Hybrid-Structures
批准号:
0334231
负责人:
Jia Lu
金额:
$82.48万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-10-01 至 2007-09-30
中文摘要
这个纳米级跨学科研究团队将最先进的自旋隧道科学方面的专业知识与单电子晶体管的制造和表征方面的成功证明结合在一起。这里的目标是通过探测纳米岛上自旋的量子态和动力学来了解基于自旋的纳米制造结构中的科学,为新一代超高速和非易失性电子产品奠定基础。该计划首先基于已证实的单电子晶体管架构和工艺制造简单的纳米结构,并使用铁磁电极(S)注入极化自旋。这些新的纳米级混合结构将被用来测试各种理论预测的现象,如增强的磁阻、单电子充电效应、电导振荡和自旋扩散。这项工作的一个新特点是通过使用磁性半导体进行自旋过滤,将完全极化的自旋注入非磁性材料,如碳纳米管、非磁性金属和超导体。最终,受控自旋的单电子在高度敏感的纳米结构中的局域化将使基于自旋的新型器件变得更加通用,到目前为止,人们正在基于大量自旋极化电子的行为来追求这一点。这个项目为(所有级别的)参与纳米科学教育的学生提供了一个极好的机会;参与真正的团队努力,具有互补和集体目标。这些学生将在物理、材料科学和纳米器件等多学科领域工作,接受基于自旋的研究方面的培训和教育,为未来的技术奠定基础,这种技术在美国已经供不应求。%电子自旋被认为是一种类似于目前半导体中使用的电荷的二元变量,开辟了新的科学和技术领域,已经导致了商业设备,称为自旋电子学。这个跨学科团队将解决对纳米级自旋电子学(也称为自旋电子学)这一新兴领域至关重要的基础科学和工程研究问题。尽管最近取得了进展并具有潜在的应用前景,但自旋电子学领域才刚刚开始解体(在很大程度上仍未被探索),需要广泛的研究努力。这项拟议的研究(阐明自旋输运包括自旋隧穿和从铁磁体注入非磁性金属、超导体或半导体)为纳米科学和未来的信息技术带来了巨大的希望。这一目标得到了用于自旋输运的有前景的新材料组合的研究和对纳米结构中自旋动力学的强大的、创新的探测器的开发的支持。这个由物理学家、材料科学家和电气工程师组成的团队拥有互补的知识和专业知识,将有效地解决从概念层面到近设备阶段的所有问题。拟议的计划最终将导致满足低功耗、宽带和超高密度标准的新型自旋电子设备,包括极其强大的计算机。许多博士生,更重要的是本科生和高中生将在PIs和博士后研究员的指导下参加这个项目。培训将培养未来在纳米科学和自旋信息技术领域有很高需求的科学家和工程师,以保持国家未来的技术实力,这对国家安全至关重要。***
英文摘要
This Nanoscale Interdisciplinary Research Team brings together expertise in state-of-the-art spin-tunneling science with proven success in fabrication and characterization of single-electron transistors. The goal here is to understand science in spin-based nano-fabricated structures by probing the quantum states and dynamics of spins on nano-sized islands, laying the foundation for a new generation of ultra-fast and non-volatile electronics. This program begins with the fabrication of simple nanostructures based on proven single-electron transistor architecture and processing, with ferromagnetic electrode(s) to inject polarized spins. These new nanoscale hybrid structures will be used to test various theoretically predicted phenomena such as enhanced magnetoresistance, single-electron charging effects, conductance oscillations, and spin diffusion. One of the novel features of this effort is to inject fully polarized spins into nonmagnetic materials such as carbon nanotubes, nonmagnetic metals, and superconductors, by spin filtering through the use of a magnetic semiconductor. Ultimately, the localization of a single-electron of controlled spin in a highly sensitive nanostructure will enable novel and more versatile spin-based devices, which so far is being pursued based on the behavior of large numbers of spin-polarized electrons. This program represents an excellent opportunity for the students (of all levels) involved being educated in the nanoscience; participate in a true team effort with complementary and collective goals. The students will work in multidisciplinary areas - physics, materials science, and nano-devices, getting trained and educated in the spin-based research laying the foundation for future technology, which is already in short supply in the U.S. %%%The recognition of electron spin as a binary variable analogous to its charge as currently used in semiconductors, opened new fields of science and technology that have already led to commercial devices, called spin electronics. This interdisciplinary team will address the underlying fundamental science and engineering research issues that are critical to the emerging field of nanoscale spin electronics (also called as spintronics). In spite of the recent progress and potentially promising for applications, the field of spintronics just beginning to unravel, (remains largely unexplored) and requires extensive research efforts. The proposed research (elucidating spin transport including spin tunneling and injection from a ferromagnet into a nonmagnetic metal, superconductor or a semiconductor) holds great promise for nanoscale science and future information technology. This aim is supported by the investigation of promising new materials combinations for spin transport and the development of powerful, innovative probes of spin dynamics in nanostructures. This team, with complementary knowledge and expertise - of physicists, material scientists and electrical engineers, will efficiently address all the issues from the conceptual level to the near-device stage. The proposed program will ultimately lead to novel spin electronic devices that meet the criteria for low power, broadband, and ultra high density including extremely powerful computers. Many PhD students, and importantly undergraduates and high school students will take part in this program under the guidance of the PIs and postdoctoral fellows. The training will generate future scientists and engineers in high demands in the area of nano-science and spin-based information technology to maintain the future technological prowess of the country, critically necessary for the national security. ***
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会议论文
Collaborative Research: Spin Torque Oscillators Based on Electric and Thermal Spin Currents in Self Assembled Ferromagnetic Nanowire Arrays
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批准号:1309424
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项目类别:Standard Grant
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资助金额:$30.0万
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财政年份:2013
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负责人:Jia Lu
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依托单位:
NIRT: Collaborative Research: Spin Transport and Dynamics in Nanoscale Hybrid-Structures
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批准号:0742225
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项目类别:Continuing Grant
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资助金额:$6.53万
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财政年份:2006
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负责人:Jia Lu
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依托单位:
CAREER: Theoretical and Numerical Investigation of Stress-Regulated Growth and Remodeling of Soft Tissues
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批准号:0348194
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项目类别:Standard Grant
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资助金额:$39.93万
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财政年份:2004
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负责人:Jia Lu
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依托单位:
PECASE: Single Spin Transistors - Science, Application and Education
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批准号:0306735
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项目类别:Standard Grant
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资助金额:$36.25万
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财政年份:2002
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负责人:Jia Lu
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依托单位:
PECASE: Single Spin Transistors - Science, Application and Education
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批准号:0134297
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项目类别:Standard Grant
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资助金额:$37.47万
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财政年份:2002
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负责人:Jia Lu
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依托单位:
NIRT: Collaborative Research: Spin Transport and Dynamics in Nanoscale Hybrid-Structures
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批准号:0103302
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项目类别:Continuing Grant
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资助金额:$120.0万
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财政年份:2001
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负责人:Jia Lu
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依托单位:
海外基金