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RII Track-4: Designing Solution-Processed Hybrid Metamaterials via DNA Self-Assembly

RII Track-4: Designing Solution-Processed Hybrid Metamaterials via DNA Self-Assembly
RII Track-4:通过 DNA 自组装设计解决方案处理的混合超材料
批准号:
1832898
负责人:
Kannatassen Appavoo
金额:
$24.63万
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:
2018-10-01 至 2022-06-30

项目摘要

项目成果

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中文摘要
翻译
非技术性描述随着越来越多的人要求制造占地面积更小但运行速度更快的设备,开发具有前所未有特性的材料至关重要。这些性能要求与开发廉价且可扩展的纳米纤维技术紧密相关,以便将这些先进材料快速部署到新的能源,通信和医疗技术中。超材料是一类自然界中不存在的材料,它可以拥有由其周期性组织结构而不是其单个单元的固有材料特性决定的奇异特性。然而,制造超材料通常是昂贵和耗时的,因此需要复杂的工具来创建具有高精度的周期性纳米结构阵列。在这个项目中,主要研究者将与布鲁克海文国家实验室的专家合作,开发一种低成本的溶液工艺技术来制造三维超材料(BNL)。其目标是使用自组装,将复杂结构放在一起的自然过程,将不同纳米结构的子单元排列成三维超材料,提供对修改此过程的环境因素的实时见解。这个高度跨学科的项目提供了光子学,纳米纤维和高分辨率显微镜领域的教育和培训机会,并使来自亚拉巴马的研究生和本科生能够在BNL进行研究。如果成功,该项目将提供一种大规模制造超材料的策略,与材料基因组计划的愿景保持一致,即以一半的时间和一小部分的成本发现,制造和部署先进材料。技术说明超材料的发展为研究人员提供了一种前所未有的方法来实现对光-物质相互作用的控制,从而产生奇特的光学效应,如隐形,超透镜和增强的纠缠光子产生。将超材料集成到能量收集和传感技术中的关键一步是开发低成本且可用于大规模制造的纳米制造方法。本计画旨在发展一种以DNA为导向的溶液处理策略,以制造混合式三维异向材料。不同纳米结构的精确组装是通过选择性地用DNA涂覆它们的表面以引入定向键合来实现的,定向键合可以被编程为在所需的方向上自组装。这允许不同形状(球形、立方体或八面体)和材料(金属和金属)的高质量晶体纳米结构形成纳米结构的三维周期性排列。由于单个纳米结构或晶胞的固有性质可以控制,这提供了一个独特的平台来了解复杂的纳米结构组装如何引起新兴的光学现象,包括非线性效应。该项目的一个关键部分是在微流控反应器中进行的原位线性和非线性光学实验,该反应器可以控制纳米结构组装微环境。通过调整微环境,我们将研究各种电磁模式如何耦合以及如何调整这些不同的机制。此外,我们将使用全场三维时域有限差分电磁解算器来模拟这些混合超材料系统的光学特性。如果成功,该项目将提供一种使用溶液处理方法制造具有奇异线性和/或非线性特性的超材料的途径,该方法具有设计灵活性,高通量,以及集成到墨水状或卷到卷的可能性。该奖项反映了NSF的法定使命,并已被认为是值得通过评估使用基金会的智力价值和更广泛的支持影响审查标准。
英文摘要
Nontechnical DescriptionWith increasing demands to build devices that have a smaller footprint but operate at greater speeds, it is critical to develop materials with never-before-seen properties. These demands in performance are tied with developing nanofabrication techniques that are cheap and scalable in order to rapidly deploy these advanced materials into novel energy, communication and medical technologies. Metamaterial, a class of material that does not occur in nature, can possess exotic properties as determined by their periodic, organized structures rather than the intrinsic material properties of their individual units. However, fabricating metamaterials is often costly and time-consuming, thus requiring sophisticated tools to create periodic arrays of nanostructures with high precision. In this project, the Principal Investigator will partner with experts at Brookhaven National Laboratory to develop a low-cost solution-process technique to fabricate three-dimensional metamaterial (BNL). The goal is to use self-assembly, the natural process by which complex structures are put together, to arrange subunits of different nanostructures into a three-dimensional metamaterial, providing real-time insights on the environmental factors that modify this process. This highly interdisciplinary project provides education and training opportunities in the fields of photonics, nanofabrication and high-resolution microscopy, and enables graduate and undergraduate students from Alabama to conduct research at BNL. If successful, this project will offer a strategy to create metamaterial on a large scale, aligning with the Materials Genome Initiative's vision to discover, manufacture, and deploy advanced materials in half the time and at a fraction of the cost.Technical DescriptionThe development of metamaterials has provided researchers an unpreceded way to achieve control over light-matter interaction, leading to exotic optical effects such as cloaking, superlensing and enhanced entangled photon generation. A critical step towards integrating metamaterials into energy-harvesting and sensing technologies is to develop nanofabrication methods that are low-cost and can be adapted for large-scale manufacturing. This project aims to develop a DNA-guided solution-processed strategy to fabricate hybrid three-dimensional metamaterials. The precise assembly of dissimilar nanostructures is achieved by selectively coating their surfaces with DNA to introduce directional bonding that can be programmed to self-assemble in a desired orientation. This allows high-quality crystalline nanostructures of different shapes (spheres, cubes or octahedrons) and materials (metal and dielectrics) to form into three-dimensional periodic arrangements of nanostructures. Since the intrinsic properties of an individual nanostructure or unit cell can be controlled, this provides a unique platform to understand how complex nanostructure assembly give rise to emerging optical phenomena, including nonlinear effects. A key part of this project is in situ linear and nonlinear optical experiments performed in a microfluidic reactor that can control the nanostructure-assembly microenvironment. By tuning the microenvironment, we will study how various electromagnetic modes couple and how to tune these various mechanisms with respect to each other. Furthermore, we will use full-field three-dimensional finite-difference time-domain electromagnetic solvers to model the optical properties of these hybrid metamaterial systems. If successful, the project will provide a route to fabricating metamaterials with exotic linear and/or nonlinear properties using solution-processed methods, which offer several advantages such as design flexibility, high-throughput, and the potentials for integration into ink-like or roll-to-roll printing.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: 10.1103/physrevb.102.115148
发表时间: 2020-09
期刊: Physical Review B
影响因子: 3.7
作者: [K. Appavoo;J. Nag;Bin Wang;W. Luo;G. Duscher;E. A. Payzant;M. Sfeir;S. Pantelides;R. Haglund]
通讯作者: K. Appavoo;J. Nag;Bin Wang;W. Luo;G. Duscher;E. A. Payzant;M. Sfeir;S. Pantelides;R. Haglund
Plasmonic and Dielectric Nanostructures: Distinguishing Size, Material, and Dielectric Environment via Machine Learning
等离子体和介电纳米结构:通过机器学习区分尺寸、材料和介电环境
DOI: 10.1364/cleo_si.2021.sm1q.6
发表时间: 2021
期刊: CLEO: Science and Innovations
影响因子: --
作者: [Pant, Aniket, Appavoo, Kannatassen]
通讯作者: Appavoo, Kannatassen
Probing Ultrafast Transient Electric and Magnetic Fields in Silicon Metasurfaces
探测硅超表面中的超快瞬态电场和磁场
DOI: --
发表时间: 2021
期刊: OSA Nonlinear Optics 2021
影响因子: --
作者: [Tiwari, Uddhab, Appavoo, Kannatassen]
通讯作者: Appavoo, Kannatassen
海外基金