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CAREER: Multi-chrome metasurfaces for dynamic structural color and naked eye diagnostics

CAREER: Multi-chrome metasurfaces for dynamic structural color and naked eye diagnostics
职业:用于动态结构颜色和肉眼诊断的多铬超表面
批准号:
2047015
负责人:
Judson Ryckman
金额:
$50.0万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2021
资助国家:
美国
项目状态:
未结题
起止时间:
2021-04-01 至 2026-03-31

项目摘要

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中文摘要
翻译
高灵敏度、快速和准确的传感器和医疗诊断对社会福祉、国家健康和辅助决策具有积极影响,并带来经济后果。然而,现代科学仪器和传感技术往往笨重、昂贵、运行缓慢和/或操作繁琐;在缺乏实验室级诊断方法的贫困、偏远或欠发达社区,可能无法获得这些技术。另一方面,色度传感器为这些问题提供了一个有希望的解决方案,因为它们可以通过数码相机或肉眼以高分辨率进行分析。然而,到目前为止,色度传感器的性能通常不如笨重/昂贵的替代方案,因为很难将小的传感器变化转换为大的颜色响应。本研究介绍并探讨了一种通过优化传感器设计,配合光源设计来解决和克服这一问题的方法。这项研究为新型高性能比色传感器打开了大门,这种传感器可能与笨重/昂贵的替代产品竞争,并且/或者提供比笨重/昂贵的替代产品更大的功能。结构着色面临着基本限制,目前这些限制阻碍了由于光谱特性的微小变化而实现强烈的动态颜色响应。因此,动态着色和色度传感设备目前严重依赖于利基物理/化学效应,这些效应必须放大光谱变化才能产生色度响应。基于这种方法构建的色度传感器不具有通用性,最终无法与实验室级台式设备的性能相媲美,后者通常体积庞大、速度慢、操作成本高/复杂。这项研究提出了一种变革性的和通用的颜色传递和传感技术,可以克服这些挑战。这项研究的最终目标是打破目前动态结构色设备的性能限制,并研究一种新的基于结构色的诊断方法,它可以与台式替代设备的性能相媲美,甚至超过台式设备的性能。本项目的目标包括:(1)为我们的高层次方法,‘超色结构色’(HSC)建立理论框架,同时绘制和研究动态颜色传递的极限,以及如何最大限度地响应目标刺激的感知颜色变化;(2)研究针对多色激光光源和定制的比色轨迹而优化的亚表面的设计;以及在解决集成和纳米制造挑战的同时,制造、表征和分析它们的性能;(3)实验表征新开发的多色亚表面的比色传感性能,并推进肉眼诊断领域;以及(4)实施一项教育计划,旨在解决在高中和本科阶段光学和光子学方面观察到的教育差距,以努力:(A)增加STEM对当地高中生的影响,(B)向代表不足的群体和少数群体促进STEM和研究生水平的教育机会,以及(C)弥合光学和光电子行业本科教育与工业机会之间的差距。使用多色激光光源对动态结构色的研究是引人注目的,因为它从根本上提供了获得最高色度灵敏度的途径,因此没有替代方法(即宽带或单色照明)能够主要地响应给定的光谱扰动而产生更强的颜色变化。我们专注于研究多色超表面和响应性纳米材料的集成,这将促进我们对以下方面的理解:多共振和莫尔光子系统、中低折射率超表面和生物传感器的设计和优化、如何从非传统介质中纳米制造可伸缩的芯片级光学材料,以及如何从阵列和像素化结构中定制光谱特性。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
High sensitivity, fast, and accurate sensors and medical diagnostics offer positive impacts on societal well-being, national health, and aid decision making with economic consequences. However, modern scientific instrumentation and sensing technologies are often bulky, expensive, slow, and/or cumbersome to operate; and may be unavailable in disadvantaged, remote, or under-developed communities where access to laboratory grade diagnostics is sparse. Colorimetric sensors on the other hand offer a promising solution to these problems, as they can be analyzed with high resolution by digital cameras or the naked eye. However, the performance of colorimetric sensors is so far typically inferior to the bulky/expensive alternatives as it can be difficult to convert small sensor variations into a large color response. This research introduces and investigates a means to address and overcome this problem through optimization of the sensor design, coordinated with the design of the light source. This research opens the door to new types of high-performance colorimetric sensors, which may be competitive with and/or offer greater functionality than the bulky/expensive alternatives.Structural coloration faces fundamental limits which presently prevent the realization of strong dynamic color responses arising from small variations in spectral properties. As such, dynamic coloration and colorimetric sensing devices currently rely heavily on niche physical/chemical effects which must amplify spectral changes to yield their colorimetric response. Colorimetric sensors built on such approaches are not generalizable and ultimately fail to rival the performance of laboratory grade benchtop equipment which is often bulky, slow, and costly/complex to operate. The proposed research presents a transformative and general technique for color transduction and sensing which can overcome these challenges. The ultimate goal of this research is to break the present performance limits of dynamic structural color devices and to investigate a new class of structural color based diagnostics, readable by the naked eye, which can rival or even exceed the performance of benchtop alternatives. Objectives of this project include: (1) Establish the theoretical framework for our high-level approach, ‘hyperchromatic structural color’ (HSC), while mapping out and investigating the limits of dynamic color transduction and how to maximize perceived color variations in response to targeted stimuli; (2) Study the design of metasurfaces optimized for multi-chrome laser illuminants and tailored colorimetric trajectories; and fabricate, characterize, and analyze their performance while addressing integration and nanomanufacturing challenges; (3) Experimentally characterize the colorimetric sensing performance of the newly developed multi-chrome metasurfaces and advance the field of naked eye diagnostics; and (4) Implement an educational plan aimed at addressing an observed educational gap in high-school and undergraduate level optics and photonics in an effort to: (a) increase STEM exposure to local high-schoolers, (b) promote both STEM and graduate level education opportunities to underrepresented groups and minorities, and (c) bridge the gap between undergraduate education and industrial opportunities in optics and opto-electronic industries. The investigation of dynamic structural color using multi-chrome laser illuminants is compelling because it fundamentally offers access to the highest colorimetric sensitivities, and hence no alternative approach (i.e. broadband or monochromatic illumination) can principally produce stronger color variations in response to a given spectral perturbation. Our focus on studying multi-chrome metasurfaces and the integration of responsive nanomaterials will advance our understanding of: multi-resonant and moiré photonic systems, the design and optimization of moderate to low index metasurfaces and biosensors, how to nano-manufacture scalably chip-scale optics derived from unconventional media, and how to tailor spectral properties from arrays and pixelated structures.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
Fabrication of Waveguides and Gradient Index Flat Optics by Nanoimprinting Refractive Index
通过纳米压印折射率制造波导和梯度折射率平面光学器件
DOI: 10.1364/cleo_si.2022.sth4p.6
发表时间: 2022
期刊: Technical Digest Series
影响因子: --
作者: [Hardison, Anna L., Talukdar, Tahmid H., Kravchenko, Ivan I., Ryckman, Judson D.]
通讯作者: Ryckman, Judson D.
Digital and Gradient Refractive Index Planar Optics by Nanoimprinting Mesoporous Silicon (Advanced Optical Materials 24/2022)
通过纳米压印介孔硅实现数字梯度折射率平面光学(先进光学材料 24/2022)
DOI: 10.1002/adom.202270095
发表时间: 2022
期刊: Advanced Optical Materials
影响因子: 9
作者: [Hardison, Anna L., Talukdar, Tahmid H., Kravchenko, Ivan I., Ryckman, Judson D.]
通讯作者: Ryckman, Judson D.
Effective medium metasurfaces using nanoimprinting of the refractive index: design, performance, and predictive tolerance analysis
使用折射率纳米压印的有效介质超表面:设计、性能和预测公差分析
DOI: 10.1364/ome.515617
发表时间: 2024
期刊: Optical Materials Express
影响因子: 2.8
作者: [Panipinto, Matthew, Ryckman, Judson D.]
通讯作者: Ryckman, Judson D.
Fabrication of High Performance Metasurfaces by Nanoimprinting of Refractive Index
  • 批准号:
    1825787
  • 项目类别:
    Standard Grant
  • 资助金额:
    $34.93万
  • 财政年份:
    2018
  • 负责人:
    Judson Ryckman
  • 依托单位:
国内基金
海外基金
基于Multi-Pass Cell的高功率皮秒激光脉冲非线性压缩关键技术研究
Multi-decadeurbansubsidencemonitoringwithmulti-temporaryPStechnique
  • 批准号:
    --
  • 项目类别:
    --
  • 资助金额:
    80万元
  • 批准年份:
    2022
  • 负责人:
    Timo Balz
  • 依托单位:
High-precision force-reflected bilateral teleoperation of multi-DOF hydraulic robotic manipulators
  • 批准号:
    52111530069
  • 项目类别:
    国际(地区)合作与交流项目
  • 资助金额:
    10万元
  • 批准年份:
    2021
  • 负责人:
    徐兵
  • 依托单位:
大地电磁强噪音压制的Multi-RRMC技术及其在青藏高原东南缘-印支块体地壳流追踪中的应用