Collaborative Research: Molecular Spintronics with Single-Molecule Magnets
Collaborative Research: Molecular Spintronics with Single-Molecule Magnets
批准号:
1001755
负责人:
Enrique del Barco
金额:
$40.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-05-01 至 2014-07-31
中文摘要
该提案的主要目标是探索单个分子的局部高自旋态与传导电子之间的相互作用,以开发用于局部磁场传感,超高密度信息存储和量子信息处理的分子电子器件。单分子磁体的特征在于大的总自旋和强的内禀各向异性。它们呈现出一些独特的特性,如磁化强度的量子隧穿和Berry相位干涉。虽然在晶体形式中进行了广泛的研究,但它们的一些关键特性仍然难以捉摸。例如,目前还不清楚磁化的量子隧穿如何影响通过这些分子的电子传导。了解这种特性对于任何电子设备的开发都是至关重要的。拟议的研究计划通过将化学合成与实验和理论物理相结合来解决这些问题,以探测孤立单分子磁体的量子特性。这些分子将附着在纳米间隙的金属电极上,并通过电子门控形成单电子晶体管。器件制造将利用光刻和电迁移技术。分子?的电传导将被静态和动态研究,以揭示激发分子态,不同配体的影响,近藤效应,自旋极化输运,贝里相位封锁,量子振荡的磁化,和退相干,。拟议的研究强调探索这些现象走向实际设备。特别是:(i)利用Berry相的强磁场可调谐性来获得高灵敏度的局部磁场纳米传感器;(ii)开发高密度磁存储器中分子位的阅读和写入程序;以及(iii)演示分子量子位中的量子逻辑门操作。该团队在单分子磁体和量子电子传输方面拥有丰富的经验。初步结果显示,该小组?的能力,制造合适的设备,并测量在库仑阻塞制度孤立分子的IV特性。可用的设施允许在短的周转时间内高效地制造器件。该团队可利用的设备包括低温、任意方向的高磁场、连续波和脉冲高频微波激发以及超快脉冲电压门控。智力优势:分子电子学正在迅速成为应用科学和工程领域的一个独立研究领域。到目前为止,主要的努力是在碳基系统或含有小净自旋的各向同性分子上。这个建议的重点是分子,本质上是磁性的,由于其大自旋和强轴向各向异性。该研究包括化学,物理,设备制造和开发,以及低温和高磁场下的基础研究。这项研究将有助于我们更好地理解孤立单分子磁体的量子特性,以及如何将磁性与单电子晶体管中的电子输运结合起来。更广泛的影响:这项研究将促进我们对单分子电子器件的了解。这些器件在超高密度集成和量子信息处理方面具有巨大的潜力,这可能会导致新的革命性技术。一些研究生和本科生将在无机化学与基础物理和应用物理之间的界面中接受培训,该环境不断跨越这些学科的界限。
英文摘要
The broad goal of this proposal is to explore the interplay between localized high-spin states of an individual molecule and conduction electrons in order to develop molecular electronic devices for local magnetic field sensing, ultra-high-density information storage, and quantum information processing. Single-molecule magnets are characterized by a large total spin and a strong intrinsic anisotropy. They present some unique characteristics, such as quantum tunneling of the magnetization and Berry phase interference. Although extensively studied in crystalline form, some of their key properties remain elusive. For instance, it is unclear how quantum tunneling of the magnetization influences electronic conduction through these molecules. Understanding this property is crucial for any electronic device development. The proposed research program addresses these issues by combining chemical synthesis with experimental and theoretical physics to probe quantum properties of isolated single-molecule magnets. The molecules will be attached to nanometer-gapped metal electrodes and gated electrically to form a single-electron transistor. Device fabrication will make use of lithographic and electromigration techniques. The molecule?s electric conduction will be studied both statically and dynamically to reveal excited molecular states, the effect of different ligands, the Kondo effect, spin-polarized transport, the Berry-phase blockade, quantum oscillations of the magnetization, and decoherence,. The proposed study emphasizes exploring these phenomena toward practical devices. In particular: (i) to employ the intense magnetic field tunability of the Berry phase to obtain high-sensitivity local magnetic field nanosensors; (ii) to develop reading and writing procedures for molecular bits in high-density magnetic memories; and (iii) to demonstrate quantum logic gate operations in a molecular qubit. The team has extensive experience with single-molecule magnets and in quantum electronic transport. Preliminary results have demonstrated the team?s ability to fabricate suitable devices and to measure the IV characteristics of isolated molecules in the Coulomb blockade regime. Available facilities permit efficient device fabrication with a short turnover time. The facilities available to the team include low temperatures, high magnetic fields oriented in arbitrary directions, continuous-wave and pulsed high-frequency microwave excitations, and ultra-fast pulsed voltage gating.Intellectual Merit: Molecular electronics is rapidly becoming a separate research field within Applied Sciences and Engineering. The main effort so far has been on carbon-based systems or isotropic molecules containing a small net spin. This proposal focuses on molecules that are intrinsically magnetic due to their large spin and strong axial anisotropy. The research encompasses chemistry, physics, device fabrication and development, as well as fundamental studies at low temperatures and high magnetic fields. The proposed studies will lead to a better understanding of the quantum properties of isolated single-molecule magnets and how magnetism can be combined with electronic transport in a single-electron transistor setup.Broader Impact:The proposal will advance our knowledge of single molecule-based electronic devices. These devices have great potential for ultra-high density integration and quantum information processing, which may lead to new and revolutionary technologies. Several graduate and undergraduate students will be trained in the interface between inorganic chemistry and fundamental and applied physics within an environment that constantly crosses the boundaries of these disciplines.
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会议论文
Conference: 2023 Spin Dynamics in Nanostructures GRC and GRS
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批准号:2330529
-
项目类别:Standard Grant
-
资助金额:$2.8万
-
财政年份:2023
-
负责人:Enrique del Barco
-
依托单位:
EAGER: Quantum Dynamics of Spin in Single-Molecule Magnets
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批准号:2013662
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项目类别:Continuing Grant
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资助金额:$22.81万
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财政年份:2020
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负责人:Enrique del Barco
-
依托单位:
Designing Elemental Devices for Molecular Electronics - Molecular Diodes
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批准号:1916874
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项目类别:Standard Grant
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资助金额:$44.28万
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财政年份:2019
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负责人:Enrique del Barco
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依托单位:
Single-Molecule Magnets: Internal Degrees of Freedom and Quantum Dynamics
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批准号:1503627
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项目类别:Continuing Grant
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资助金额:$41.09万
-
财政年份:2015
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负责人:Enrique del Barco
-
依托单位:
Spin Injection and Manipulation in Graphene-based Spintronics Devices
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批准号:1402990
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项目类别:Standard Grant
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资助金额:$36.0万
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财政年份:2014
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负责人:Enrique del Barco
-
依托单位:
Dynamical Spin Pumping in Graphene-based Spintronics Devices
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批准号:1266049
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项目类别:Standard Grant
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资助金额:$7.77万
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财政年份:2013
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负责人:Enrique del Barco
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依托单位:
CAREER: Investigation of the Quantum Dynamics of High-Spin States of Single-Molecule Magnets: Decoherence and Spin Manipulation
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批准号:0747587
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项目类别:Continuing Grant
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资助金额:$48.0万
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财政年份:2008
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负责人:Enrique del Barco
-
依托单位:
SGER: Development of Single-Electron Transistors Based on Individual Single-Molecule Magnets
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批准号:0737802
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项目类别:Continuing Grant
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资助金额:$17.9万
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财政年份:2007
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负责人:Enrique del Barco
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依托单位:
国内基金
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