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Collaborative Research: Implementing Topologically Protected Gigahertz Acoustic Circuits

Collaborative Research: Implementing Topologically Protected Gigahertz Acoustic Circuits
合作研究:实现拓扑保护的千兆赫声电路
批准号:
2221822
负责人:
Keji Lai
金额:
$30.16万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-09-15 至 2025-08-31

项目摘要

项目成果

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中文摘要
翻译
微波声器件广泛应用于无线通信技术和量子信息科学。这个NSF项目旨在实现比传统工程电路具有更低传播损耗的声学器件。该项目将为千兆赫频段低损耗声学系统的设计和特性带来革命性的变化。这将通过实现拓扑电子态的声学类似物并使用网络分析和微波显微镜对其进行表征来实现。该项目的智力优势包括(1)设计具有非平凡拓扑的声学器件,(2)模拟复杂结构中的声传输,(3)制造先进的微波电路,以及(4)压电膜上波传播的纳米级可视化。该项目的更广泛影响包括:(1)实施无线通信应用的实用设备,(2)在两所机构中进行综合研究和教育计划,以获得最佳培训和学习经验,(3)向当地高中生和教师推广,重点关注代表性不足/少数群体,以及(4)促进当地K-12学生夏令营的有效性。在超高频和超高频条件下,传统的声学器件存在带宽窄、传播损耗大的问题。从凝聚态物理中汲取灵感,可以设计拓扑上的非平凡声子系统,其中声波可以传播而不被反向散射。然而,由于制造上的挑战和缺乏适当的表征工具,声学拓扑超材料大多在千赫兹到兆赫兹的工作频率下被证明。本项目旨在通过理论分析、数值模拟、器件制造和纳米级可视化相结合,实现具有拓扑保护声子传输的千兆赫声学集成电路。特别是,纳米尺度声场的直接信息对于新型微波电路的检测和改进至关重要。这样的设计验证回路将加快基于量子谷霍尔、量子自旋霍尔或类量子霍尔效应的波导、延迟线、分频/合成器、谐振器、频分复用器和滤波器等声学元件的原型设计。两所机构将建立综合研究和教育计划,以便培养学生掌握现代纳米制造技术,最先进的微波声学系统和扫描探针显微镜。研究小组将通过实验室体验、周六研讨会、夏令营等方式向当地高中学生和教师进行宣传。积极参与前沿研究将影响他们走向STEM领域的职业道路。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Microwave acoustic devices are widely used in wireless communication technology and quantum information science. This NSF project aims to realize acoustic devices with lower propagation loss than traditionally engineered circuits. The project will bring transformative change to the design and characterization of low-loss acoustic systems operating in the gigahertz regime. This will be achieved by implementing the acoustic analogues of topological electronic states and characterizing them with network analysis and microwave microscopy. The intellectual merits of the project include (1) design of acoustic devices with nontrivial topology, (2) simulation of acoustic transport in complex structures, (3) fabrication of advanced microwave circuits, and (4) nanoscale visualization of wave propagation on piezoelectric membranes. The broader impacts of the project include (1) implementation of practical devices for wireless communication applications, (2) integrated research and education programs in both institutions for optimal training and learning experience, (3) outreach to local high-school students and teachers with a strong focus on underrepresented/minority groups, and (4) promoting the effectiveness of local summer camps for K-12 students.In the Ultra High Frequency and Super High Frequency regime, conventional acoustic devices suffer from narrow bandwidth and high propagation loss. Drawing inspiration from condensed matter physics, it is possible to design topologically nontrivial phononic systems, where acoustic waves can propagate without being backscattered. Due to the challenge in fabrication and the lack of appropriate characterization tools, however, acoustic topological metamaterials are mostly demonstrated with kilohertz to megahertz operating frequencies. This NSF project aims to implement gigahertz acoustic integrated circuits with topologically protected phononic transport by combining theoretical analysis, numerical simulation, device fabrication, and nanoscale visualization. In particular, the direct information on nanoscale acoustic fields is expected be crucial for the inspection and refinement of novel microwave circuitry. Such a design-validation loop will expedite the prototyping of acoustic elements such as waveguides, delay lines, dividers/combiners, resonators, frequency division multiplexer, and filters based on quantum valley Hall, quantum spin Hall, or quantum-Hall-like effects. Integrated research and education programs at both institutions will be established so that students are trained to master modern nanofabrication techniques, state-of-the-art microwave acoustic systems, and scanning probe microscopy. The research teams will outreach to local high school students and teachers through lab experience, Saturday workshop, and summer camps. The active involvement in frontier research will influence their career path towards STEM fields.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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  • 负责人:
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  • 依托单位:
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