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CAREER:Toward ultra-low energy switching in spintronic devices

CAREER:Toward ultra-low energy switching in spintronic devices
职业:自旋电子器件中的超低能量开关
批准号:
1554011
负责人:
Weigang Wang
金额:
$50.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-02-01 至 2023-01-31

项目摘要

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中文摘要
翻译
自旋电子学明确地利用自旋,这是电子固有的量子力学属性,以实现新的功能。自旋电子器件的一个独特优势是它们的非易失性:即使在设备断电后,它们存储在Spin中的信息也会被保留和记住。非易失性对于新一代的数字设备尤其重要,在这种设备中,晶体管的尺寸将减少到只有几个纳米。在这种纳米尺度下,传统互补金属氧化物半导体(CMOS)晶体管的功耗将以漏电流为主;而对于自旋电子结构,这种能量浪费可以完全消除。自旋电子学的一个重要缺点是,在二进制计算机指令中,将电子自旋在上下状态之间翻转到1和0的最低记录开关能量仍然比cmos晶体管高两个数量级以上,这严重限制了自旋电子器件的当前应用。这个职业项目专注于探索新的电压效应,以极大地降低自旋器件的开关能量。通过成功展示超低能量开关,该项目广泛影响了各种自旋电子器件以及可穿戴计算机和物联网等新兴技术,对这些技术来说,待机状态下的零功耗是至关重要的,也是非常必要的。这项研究的多学科性质影响着从高中到研究生的多个层次的教育。这些教育活动建立在一项行之有效的计划的基础上,该计划旨在鼓励和激励当地高中中代表不足的少数族裔学生在大学攻读STEM专业。此外,PI还将利用这项职业研究继续他的外展工作,通过“物理开放参观”和“物理Phun Nite”等活动增进公众对自旋电子学的了解。这个职业奖项探索自旋电子结构中的节能开关机制。将研究三种不同但互补的方法:(1)基于压控层间交换耦合的开关;(2)基于电压感应有效场的开关;(3)基于电压辅助自旋转移扭矩的开关。这三种开关场景是在电压控制的各向异性和电压控制的磁性的背景下研究的。电压控制的各向异性是一种电子效应,其中磁各向异性场可以基本改变,但饱和磁化强度基本保持不变。电压控制磁性是一种离子效应,其中磁各向异性场和饱和磁化强度都可以由电压控制。这些效应对Rashba自旋-轨道耦合和Dzyaloshinskii-Moriya相互作用的依赖性将被研究。结合表征铁磁体中电压诱导电荷再分布的实验,将对不同的开关机制有一个完整的了解。此外,这些显著降低开关能量的新方法将直接在具有很强垂直磁各向异性的高质量磁隧道结上实现,这些结不仅可以用作独立的自旋电子存储器或逻辑单元,还可以作为许多其他自旋电子器件的基本部件,如横向自旋阀和自旋霍尔存储器。这个项目的结果将改变我们对超薄磁性薄膜中电子和离子如何介导磁电耦合的理解。该项目的成功为超低开关能量自旋电子器件铺平了一条道路,这种自旋电子器件可能与传统的CMOS器件互补,甚至更好。
英文摘要
Spintronics makes explicit use of spin, an inherent quantum-mechanical property of electrons, to achieve novel functionalities. A unique advantage of spintronic devices is their nonvolatility: the information they store in spin is retained and remembered even after power is removed from the devices. Nonvolatility is particularly important for the nascent generation of digital devices in which transistor dimensions will be reduced to only a few nanometers. At this nanoscale the power consumption of traditional complementary metal-oxide semiconductor (CMOS) transistors will be dominated by leakage current; whereas, for spintronic structures such energy waste can be completely eliminated. An important draw back for spintronics is the lowest recorded switching energy to flip electron spins between their up or down states to 1s and 0s in binary computer instructions, is still more than two orders of magnitude higher than a CMOS transistor, which severely limits the present applications of spintronic devices. This CAREER project is focused on exploring novel voltage effects to greatly reduce the switching energy of spin-based devices. By successfully demonstrating ultra-low energy switching, this project broadly impacts a wide range of spintronic devices as well as emergent technologies such as wearable computers and the Internet of Things, for which zero power consumption in the standby state is critical and highly desired. The multidisciplinary nature of the research impacts multiple levels of education, from high school to graduate students. The education activities build on a proven plan to encourage and inspire underrepresented minority students in local high schools to pursue STEM majors in college. Moreover, the PI will leverage this CAREER research to continue his outreach efforts to improve the general public's understanding of spintronics through activities such as 'Physics Open House' and 'Physics Phun Nite'.This CAREER award explores energy-efficient switching mechanisms in spintronic structures. Three different, but complementary approaches will be studied: (1) switching based on voltage-controlled interlayer exchange coupling; (2) switching based on voltage-induced effective field; and (3) switching based on voltage-assisted spin transfer torque. These three switching scenarios are studied under the context of voltage-controlled anisotropy and voltage-controlled magnetism. Voltage-controlled anisotropy is an electronic effect where the magnetic anisotropy field can be substantially modified, but the saturation magnetization remains largely the same. Voltage-controlled magnetism is an ionic effect where both the magnetic anisotropy field and the saturation magnetization can be controlled by voltage. The dependence of these effects on the Rashba spin-orbit coupling and Dzyaloshinskii-Moriya Interaction will investigated. Combined with the experiments that characterize the voltage-induced charge redistribution in ferromagnets, a complete understanding on different switching mechanisms will be achieved. Furthermore, these new approaches to dramatically decrease the switching energy will be directly implemented on high quality magnetic tunnel junctions with strong perpendicular magnetic anisotropy, which can not only perform as stand-alone spintronic memories or logic cells, but can serve also as the essential part of many other spintronic devices, such as lateral spin valves and spin-Hall memories. The results obtained in this project will transform our understanding of how magnetoelectric coupling is mediated by both electrons and ions in ultra-thin magnetic films. Success for this project paves a path to ultra-low switching energy spintronic devices that could be complementary, or even superior, to traditional CMOS devices.
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会议论文
Collaborative Research: Spintronics Enabled Stochastic Spiking Neural Networks with Temporal Information Encoding
  • 批准号:
    2333882
  • 项目类别:
    Standard Grant
  • 资助金额:
    $25.0万
  • 财政年份:
    2024
  • 负责人:
    Weigang Wang
  • 依托单位:
Energy efficient spin-torque devices
  • 批准号:
    2230124
  • 项目类别:
    Standard Grant
  • 资助金额:
    $45.0万
  • 财政年份:
    2022
  • 负责人:
    Weigang Wang
  • 依托单位:
Voltage controlled antiferromagnetism in magnetic tunnel junctions
  • 批准号:
    1905783
  • 项目类别:
    Standard Grant
  • 资助金额:
    $42.96万
  • 财政年份:
    2019
  • 负责人:
    Weigang Wang
  • 依托单位:
Voltage controlled spintronic devices
  • 批准号:
    1310338
  • 项目类别:
    Standard Grant
  • 资助金额:
    $34.5万
  • 财政年份:
    2013
  • 负责人:
    Weigang Wang
  • 依托单位:
国内基金
海外基金
Toward a general theory of intermittent aeolian and fluvial nonsuspended sediment transport
  • 批准号:
    --
  • 项目类别:
    --
  • 资助金额:
    55万元
  • 批准年份:
    2022
  • 负责人:
    Thomas Pahtz
  • 依托单位: