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DMREF/Collaborative Research: Designing Mutable Metamaterials with Photo-Adaptive Meta-Atoms

DMREF/Collaborative Research: Designing Mutable Metamaterials with Photo-Adaptive Meta-Atoms
DMREF/合作研究:利用光自适应元原子设计可变超材料
批准号:
1921730
负责人:
Mark Brongersma
金额:
$40.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-09-01 至 2023-08-31

项目摘要

项目成果

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中文摘要
翻译
超材料是一种复杂的工程复合材料,具有传统材料无法达到的性能。它们不寻常的能力来自于它们的结构,而不是遗传自组成材料。光学超材料是一类允许以新方式操纵光的材料,包括对偏振和波长的内置选择性,这可以允许或禁止光的传播,并有效地掩盖材料。这些材料在许多领域都有潜在的应用,包括消费电子、国防、电信和生物成像,但由于缺乏合成、加工和组合物的基本知识,它们的发展受到限制,这些知识将导致最佳的结构和性能。该奖项旨在通过对加工-纳米结构-性能关系的基本理解,支持设计和开发活性纳米级超材料的研究。这种方法将使材料的设计能够使用可调的构建块来操纵光,称为元原子,可以与多个波长的光相互作用。该研究与一项推广计划紧密结合,该计划包括旨在提高代表性不足的少数民族参与STEM的教育活动,以及刺激从K-12到研究生水平的教育举措。本研究旨在解决为有源光学超材料提供动力的一个基本挑战,特别是在纳米尺度上,一个元原子一个元原子地耦合光化能和直接机械适应的能力。pi将测试这一假设,即优化驻留在光活性纳米结构聚合物上的等离子体结构的拓扑结构,可以将来自泵浦光束的光子耦合到嵌入有序大分子网络中的光致变色开关中。当谐振模式与光开关的吸收相一致时,大分子顺序的完全可逆变化可以在聚合物中产生大的应变(10%)。反过来,这种驱动反向耦合成驻留在聚合物上的元原子的结构适应。利用泵浦在结构上调制超材料的能力,然后成为操纵不同波长的探测光束的载体(与元原子是多共振的),具有散射振幅的接近一致的变化和相位控制。能够进行器件级光学操作的光自适应超材料成为可能。计划开展一系列外联工作,扩大这项工作的广泛影响。将加强通过出版物进行传播,重点是开放源码分发模拟软件和关于制造和加工的在线教程。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
Metamaterials are intricately engineered composites, with properties beyond what can be achieved with conventional materials. Their unusual abilities are derived from their structure, rather than being inherited from the constituent materials. Optical metamaterials are a class of materials that allow manipulation of light in new ways, including built-in selectivity to polarization and wavelength, which can permit or forbid propagation of light and effectively mask the material. These materials have potential application across a number of sectors, including consumer electronics, defense, telecommunication and bioimaging, but their development has been limited by a lack of fundamental knowledge of the synthesis, processing, and compositions that will lead to optimal structure and performance. This Designing Materials to Revolutionize and Engineer our Future (DMREF) award supports research to design and develop active nano-scale metamaterials through fundamental understanding of the processing-nanostructure-property relationships. The approach will enable the design of materials able to manipulate light using tunable building blocks, called meta-atoms, that interact with light at multiple wavelengths. The research is tightly integrated with an outreach plan that includes educational activities focused increasing the participation of underrepresented minorities in STEM, as well as stimulating education initiatives from K-12 to the graduate student level.This research seeks to solve a fundamental challenge in powering active optical metamaterials, in particular the ability to couple actinic energy and direct mechanical adaptation at the nano-scale, meta-atom by meta-atom. The PIs will test that hypothesis that optimizing the topology of plasmonic structures which reside on photoactive, nanostructured polymers can allow coupling of photons from a pump beam into photochromic switches embedded in an ordered macromolecular network. When a resonant mode coincides with the absorption of the photoswitches, fully reversible changes in the macromolecular order can generate large strains (10%) in the polymer. In turn, this actuation back-couples into a structural adaptation of the meta-atom resident on the polymer. The ability to utilize a pump to structurally modulate a metamaterial then becomes a vehicle to manipulate a probe beam of a different wavelength (with which the meta-atoms are multiresonant) with near-unity changes in the scattering amplitude and with phase control. Photo-adaptive metamaterials capable of device-level optical manipulation become possible. An array of outreach efforts is planned to magnify the broader impact of the work. Dissemination via publications will be augmented with a focus on open-source distribution of the simulation software and online tutorials on fabrication and processing.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(2)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1002/adpr.202300158
发表时间: 2023-10
期刊: Advanced Photonics Research
影响因子: --
作者: [Sulagna Sarkar;Anqi Ji;Zachary Jermain;R. Lipton;M. Brongersma;K. Dayal;Hae Young Noh]
通讯作者: Sulagna Sarkar;Anqi Ji;Zachary Jermain;R. Lipton;M. Brongersma;K. Dayal;Hae Young Noh
Collaborative Research: Quantum Dot Nucleation in Glass Microsphere Resonators
  • 批准号:
    0444731
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $26.8万
  • 财政年份:
    2004
  • 负责人:
    Mark Brongersma
  • 依托单位:
CAREER: Direct Imaging of the Flow of Light in Plasmonic Nanocircuits
  • 批准号:
    0348800
  • 项目类别:
    Standard Grant
  • 资助金额:
    $40.0万
  • 财政年份:
    2004
  • 负责人:
    Mark Brongersma
  • 依托单位:
海外基金