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Functional 2D nanoparticle/polymer array: Interfacial assembly, transfer, characterization, and coupling to photonic crystal cavities.

机译:功能性2D纳米粒子/聚合物阵列:界面组装,转移,表征以及与光子晶体腔的耦合。

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摘要

We developed a universal, facile and robust method to prepare free-standing, ordered and patternable nanoparticle/polymer monolayer arrays by evaporation-induced self-assembly at a fluid interface. The ultra-thin monolayer nanoparticle/polymer arrays are sufficiently robust that they can be transferred to arbitrary substrates, even with complex topographies. More importantly, the Poly (methyl methacrylate) (PMMA) in the system serves as a photoresist enabling two modes of electron beam (e-beam) nanoparticle patterning. These ultra-thin films of monolayer nanoparticle arrays are of fundamental interest as 2D artificial solids for electronic, magnetic and optical properties and are also of technological interest for a diverse range of applications in micro- and macro-scale devices including photovoltaics, sensors, catalysis, and magnetic storage. By co-assembly with block co-polymers, the nanoparticles were selectively positioned in one specific phase, representing a high throughput route for creating nanoparticle patterns. The self-assembly process was investigated by combined in-situ grazing incidence small angle x-ray scattering (GISAXS) and numerical simulation. By e-beam irradiation of free-standing 2D NP/polymer arrays, anisotropic nanowire arrays have been fabricated. Additionally, preliminary investigation on assembly of binary nanoparticle arrays has also been introduced, serving as promising future directions of interfacial assembly.;Controlling the rate of spontaneous emission and thus promoting the photon generation efficiency is a key step toward fabrication of Quantum dot based single-photon sources, and harnessing of light energy from emitters with a broad emitting spectrum. Coupling of photo emitters to photonic cavities without perturbing the optical performance of cavities remains as a challenge in study of Purcell effect based on quantum electrodynamics.;Taking advantage of interfacial assembly and transfer, we have achieved controlled deposition of quantum dots into high Q photonic microcavities and studied the modification of their optical properties. Anomalous enhanced spontaneous emission and Fabry-Perot resonance have been observed.
机译:我们开发了一种通用,便捷且可靠的方法,通过在流体界面处的蒸发诱导自组装来制备独立的,有序的和可图案化的纳米颗粒/聚合物单层阵列。超薄单层纳米颗粒/聚合物阵列足够坚固,即使在复杂的形貌下也可以转移到任意基材上。更重要的是,系统中的聚(甲基丙烯酸甲酯)(PMMA)用作光致抗蚀剂,可实现两种模式的电子束(电子束)纳米粒子图案化。这些单层纳米颗粒阵列的超薄薄膜作为2D人造固体具有电子,磁性和光学性质,并且在包括光电,传感器,催化在内的微尺度和宏观尺度设备的各种应用中也具有技术重要性和磁存储。通过与嵌段共聚物共组装,将纳米颗粒选择性地定位在一个特定的相中,这代表了用于产生纳米颗粒图案的高通量途径。通过结合原位掠入射小角度X射线散射(GISAXS)和数值模拟研究了自组装过程。通过对独立式2D NP /聚合物阵列进行电子束照射,已经制造出各向异性的纳米线阵列。此外,还引入了对二元纳米粒子阵列组装的初步研究,作为有前景的界面组装方向。;控制自发发射速率,从而提高光子产生效率,是制造基于量子点的单纳米技术的关键一步。光子源,并利用具有宽发射光谱的发射器的光能。在基于量子电动力学的赛尔效应研究中,将光发射器与光子腔耦合而又不影响腔的光学性能仍然是一个挑战。利用界面组装和转移的优势,我们已经实现了量子点到高Q光子微腔中的可控沉积。并研究了其光学性质的改变。已经观察到异常增强的自发发射和法布里-珀罗共振。

著录项

  • 作者

    Xiong, Shisheng.;

  • 作者单位

    The University of New Mexico.;

  • 授予单位 The University of New Mexico.;
  • 学科 Engineering Chemical.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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