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Realization of One-Dimensional Dynamic Broadband Router

Realization of One-Dimensional Dynamic Broadband Router
一维动态宽带路由器的实现
批准号:
1809723
负责人:
Tony Low
金额:
$37.49万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-07-01 至 2021-06-30

项目摘要

项目成果

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中文摘要
翻译
这个项目旨在展示一种基于超材料的工程路由器,能够通过在红外光谱上施加外部偏置来连续调整反射角度。这种动态宽带光路由器如果实现,将实现光束的远场操控,实现新的光学系统功能,如信号多路复用和路由。今天,最接近所建议系统的最先进的解决方案是基于MEMS微镜和液晶空间光调制器的解决方案。与这些已知的系统相比,所提出的设备在切换速度、紧凑性和多功能可重构性方面将是革命性的,并且受益于没有移动部件。本项目中开发的物理和设计原理、大面积制造技术和软件将对拟议的动态消色差光路由器的未来开发证明是无价的。所有联合调查人员将监督本科生,包括属于科学和工程领域代表性不足群体的个人,以他们在这一重要领域的广泛记录为基础。合作项目将采用统一的行动计划,将纳米光子学纳入课程,包括纳米光子学的课程和可公开查阅的课堂讲稿。此外,联合PIS将为各自社区的K-12学生组织和建立暑期体验讲习班,例如在科学博物馆和科学博览会,这一活动将与该机构密切协调,并每年向国家科学基金会报告。他们还将组织暑期班,重点是少数族裔和代表性不足的学员。传统的亚表面设计方法依赖于亚波长、近共振、金属或介电散射体作为构建块。这种方法的主要缺点是波前的整形只能针对一个频率进行设计,因为每个谐振器的散射相位以高度非线性的方式依赖于频率。事实上,在广泛的频率范围内实现非色差功能的亚表面仍然是一个艰巨的挑战。同时,这种反常反射的电可调谐性将代表一种真正革命性的设备概念,它可能以颠覆性的方式应用于各种光学系统。在这里,共同投资经理提出了新的战略来做到这一点。实现这一调谐所需的反常反射是由基于ITO的纳米GaP结构中的GaP等离子体所介导的沿亚波长尺度的纳米结构亚表面的位相梯度引起的。电调谐是通过ITO材料实现的,它改变了带隙等离子体的相速度,并表现出真正的时间延迟,从而允许电光控制。本项目将设计上述一维动态消色差光路由器,制作该器件,评估其性能和基本极限,并进行散射测量,以验证理论。该装置将通过一种独特的高通量纳米制造方法-原子层光刻来实现,该方法使我们能够实现这项工作所需的超高纵横比金属沟槽。如果实现,建议的设备构成了一种电子可控的等离子体光路由器,可用于各种光学系统,特别是在逐个像素的光路非色差控制必不可少的情况下,否则无法以当前的最先进水平实现。该奖项反映了NSF的法定使命,并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,被认为值得支持。
英文摘要
This program seeks to demonstrate an engineered metamaterial-based router capable of continuously tuning the angle of reflection via an externally applied bias across the infrared spectrum. Such a dynamic broadband optical router, if realized, would enable the far-field steering of beams, enabling new optical system functionalities such as signal multiplexing and routing. Today, the closest state-of-the-art solutions to the proposed system are ones based on MEMS micro-mirrors and liquid crystal spatial light modulators. In comparison to these known systems, the proposed device would be revolutionary in terms of switching speed, compactness, and versatile reconfigurability with the benefit of no moving parts. The physical and design principles, large-area manufacturing technologies, and software developed in this program will prove invaluable for future developments of the proposed dynamic achromatic optical router. All co-investigators will supervise undergraduate students, including individuals belonging to under-represented groups in sciences and engineering, building on their extensive track record in this important area. Co-PIs will employ a unified plan of action to incorporate nanophotonics into curricula, including classes in nanophotonics and openly accessible lecture notes. Furthermore, co-PIs will organize and establish a summer experience workshop for K-12 students in their respective community e.g. in Science Museums and Science Fair, an activity that will be closely coordinated with the institution and reported to NSF annually. They will also organize summer school, with emphasis on minority and under-represented participants. Conventional approaches to the design of metasurfaces rely on subwavelength, near-resonance, metallic or dielectric scatterers as building blocks. The major drawback of such an approach is that the shaping of the wavefront can only be engineered for a frequency, since the scattered phase for each resonator depends on frequency in a highly nonlinear fashion. Indeed, the implementation of metasurfaces that function achromatically across a broad range of frequencies remains a formidable challenge. In conjunction, the electrical tunability of such anomalous reflection would represent a truly revolutionary device concept which can potentially employed in a variety of optical systems in a disruptive manner. Here, co-PIs propose novel strategies to do just that. The anomalous reflections required to achieve this tuning are induced by a phase gradient along a sub-wavelength-scale nanostructured metasurface mediated by gap plasmons within ITO based nanogap structures. Electrical tuning is achieved through ITO materials, which modifies the phase velocity of the gap plasmons and exhibits true time delay which allows for electro-optic control. This program will design the above-mentioned one-dimensional dynamic achromatic optical router, fabricate the device, evaluate its performance and fundamental limits, and perform scatterometry measurement to corroborate with theory. The device will be realized with a unique high-throughput nanomanufacturing method, atomic layer lithography that allows us to realize ultrahigh-aspect-ratio metal trenches needed for this work. If realized, the proposed device constitutes an electrically controllable plasmonic optical router that can be employed in a variety of optical systems, specifically where achromatic control of the light path on a pixel-by-pixel basis is essential, and cannot otherwise be achieved with current state-of-the-art.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.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1021/acsphotonics.0c00099
发表时间: 2020-04-15
期刊: ACS PHOTONICS
影响因子: 7
作者: [Ciraci, Cristian, Vidal-Codina, Ferran, Smith, David R.]
通讯作者: Smith, David R.
DOI: 10.1038/s41467-020-17424-w
发表时间: 2020-07-20
期刊: NATURE COMMUNICATIONS
影响因子: 16.6
作者: [Lee, In-Ho, He, Mingze, Oh, Sang-Hyun]
通讯作者: Oh, Sang-Hyun
DOI: 10.1038/s41565-019-0363-8
发表时间: 2019-04-01
期刊: NATURE NANOTECHNOLOGY
影响因子: 38.3
作者: [Lee, In-Ho, Yoo, Daehan, Oh, Sang-Hyun]
通讯作者: Oh, Sang-Hyun
DMREF: Collaborative Research: Machine learning exploration of atomic heterostructures towards perfect light absorber and giant piezoelectricity
  • 批准号:
    1921629
  • 项目类别:
    Standard Grant
  • 资助金额:
    $119.91万
  • 财政年份:
    2019
  • 负责人:
    Tony Low
  • 依托单位:
EFRI NewLAW: Mid-infrared topological plasmon-polaritons with 2D materials
国内基金
海外基金
Scalable Learning and Optimization: High-dimensional Models and Online Decision-Making Strategies for Big Data Analysis