EAGER: Quantum Manufacturing: Scalable Manufacturing of Molecular Qubit Arrays Using Self-assembled DNA
EAGER: Quantum Manufacturing: Scalable Manufacturing of Molecular Qubit Arrays Using Self-assembled DNA
批准号:
2240309
负责人:
Mark Bathe
金额:
$30.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2023
资助国家:
美国
项目状态:
未结题
起止时间:
2023-05-01 至 2025-04-30
中文摘要
与通常用于传统计算和传感设备的硅基材料不同,需要新材料来同样实现低成本、无处不在的量子传感和计算系统的制造和部署,以用于健康和诊断、自主和机器人以及其他重大社会需求的技术领域的各种应用。为此,这一早期概念探索研究(AGUGER)量子制造奖支持纳米技术研究,以控制分子“量子比特”的2D空间位置和取向,以制造多量子比特系统和设备。这些量子比特网络的新型设备读数将被制造和表征,具有集成到传统和实用的光子电路体系结构中的潜力。一个由化学、生物工程和电气工程的研究人员组成的跨学科团队将被召集起来,以追求这种向可扩展量子设备制造的变革性方法,这将改变量子比特制造的规模实现方式。这项研究将提高美国在这个日益增长的全球科技领域的竞争力。与这项研究相关的创新课程开发将在本科生和研究生层面进行,包括指导高中生、女性和代表性不足的少数民族。光学可寻址量子比特为量子信息科学提供了一个可推广的平台。然而,缺乏精确的空间分布的纳米变色中心到量子网络,阻碍了它们向可扩展的低成本器件制造的转变。化学可定制的有机金属自旋量子比特系统的最新进展显示出作为一种替代方案的前景,化学合成提供了自下而上的量子比特设计和跨不同环境的便携性。然而,这些有机金属量子比特需要在宿主矩阵共晶体中稀释以实现固态实施,从而在整个矩阵上产生分布的色心环境和密度,从而阻止可控的、可扩展的量子比特联网。作为另一种选择,使用DNA折纸原理编程的高度可编程DNA组件的单分子寻址能力将与化学上可定制的金属有机量子位结合在一起,实现空间控制量子位的可扩展制造平台。使用这些基于DNA的支架的不同的有机金属色心将使量子比特集成到更高阶的空间网络中,以制造多量子比特系统和设备。2D DNA结构将使用DNA结构与光刻图案半导体层的可编程形状匹配,在设备表面上以纳米级的位置和方向进行图案化。生物分析物的量子传感可寻址接近DNA平台上的量子比特,这将是原型。这一奖项反映了NSF的法定使命,并已被认为值得支持,通过使用基金会的智力优势和更广泛的影响审查标准进行评估。
英文摘要
In contrast to silicon-based materials commonly used for conventional computing and sensing devices, new materials are needed to similarly enable the low-cost, ubiquitous manufacturing and deployment of quantum sensing and computing systems for a variety of applications in health and diagnostics, autonomy and robotics, and other technological areas of major societal need. Toward this end, this EArly-concept Grant for Exploratory Research (EAGER) Quantum Manufacturing award supports nanotechnology research to control the 2D spatial positions and orientation of molecular “qubits” to fabricate multi-qubit systems and devices. Novel device readouts of these qubit networks will be manufactured and characterized with potential for integration into conventional and practical photonic circuit architectures. An interdisciplinary team of investigators from chemistry, biological engineering, and electrical engineering will be assembled to pursue this transformative approach towards scalable quantum device fabrication, which will shift how qubit manufacturing can be implemented at scale. The research will enhance US competitiveness in this growing global technology field. Innovative curriculum development related to this research will be pursued at the undergraduate and graduate levels, including mentoring high school students, women, and underrepresented minorities.Optically-addressable qubits provide a generalizable platform for quantum information science. However, the lack of precise spatial distribution of nanovacancy color-centers into qubit-networks has hindered their translation towards scalable, low-cost device fabrication. Recent progress in chemically-tailorable organometallic spin qubit systems show promise as an alternative, whereby chemical synthesis affords bottom-up qubit design and portability across different environments. However, these organometallic qubits require dilution in a host-matrix co-crystal for solid state implementation, yielding distributed color-center environments and density across a matrix that prevents controlled, scalable qubit-networking. As an alternative, single-molecule addressability of highly programmable DNA assemblies programmed using the principle of DNA origami will be leveraged together with chemically-tailorable organometallic qubits to realize a scalable manufacturing platform for spatially controlled qubits. Distinct organometallic color-centers using these DNA-based scaffolds will enable the integration of qubits into higher-order spatial networks to fabricate multi-qubit systems and devices. 2D DNA architectures will be patterned with nanoscale position and orientation onto device surfaces using programmable shape matching of the DNA structure to lithographically-patterned semiconductor layers. Quantum sensing of biological analytes with addressable proximity to the qubits on a DNA platform will be prototyped.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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会议论文
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批准号:1956054
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国内基金
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