Resonant Leaky-Mode Photonic-Crystal Devices with Engineered Spectra
Resonant Leaky-Mode Photonic-Crystal Devices with Engineered Spectra
批准号:
0524383
负责人:
Robert Magnusson
金额:
$24.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2005
资助国家:
美国
项目状态:
已结题
起止时间:
2005-09-01 至 2009-08-31
中文摘要
本项目的目标是对与周期性折射率晶格(如光栅和光子晶体)相关的谐振漏模进行分析、数值和实验研究。许多模拟表明,具有二元轮廓的单层亚波长周期性漏模波导薄膜可以应用于时尚光学元件,提供各种定制的光谱特性。这些具有一维周期性的稀疏元件可以作为新型窄线带通滤波器、偏振宽带反射器、偏振无关元件和宽带抗反射器。该项目解决了基于这些结构的新设备概念的制造和表征,主要目标如下:1。建立具有弱调制非对称剖面的共振元件的解析模型,以阐明该极限下的详细共振物理和漏模相互作用。通过添加均匀层实现光谱增强的数值量化。对谐振漏模光子带结构进行数值表征。4. 数值量化共振漏模空间场分布,阐明漏模相互作用动力学。5. 使用绝缘体上硅晶圆制造和测试谐振元件。智力优势:本项目通过解决亚波长漏模谐振器件技术的基本现象,为光子器件的研究提供了新的、创造性的方向。初步结果表明,一种新型光学元件是可能的,并解释了相关器件的实现方式。根据光子带结构及其与元素结构对称性的关系,解释了相关的物理性质。共振时泄漏模的相互作用动力学有助于塑造数值模拟观测到的不同光谱带。漏模光谱的位置,它们的光谱密度和它们的相互作用水平在理解设备操作中是至关重要的。这些想法值得进一步的理论和实验研究和发展。更广泛的影响:单层漏模元件的功能可以与多层均匀薄膜元件相媲美。传统的光学薄膜用于设计和制造具有多种光谱特征的元件,这些元件广泛应用于光学系统中。本提案中感兴趣的导模共振元件具有类似的光谱多功能性,但受不同物理特性的支配。因此,可以设想在功能和应用方面的新可能性,可以提供与薄膜光学领域互补的能力。最后,该项目将有利于研究生和本科教育,并提高参加暑期工程课程的众多高中学生和教师的经验。
英文摘要
0524383MagnussonThe goal of this project is to conduct analytical, numerical, and experimental research on the resonant leaky modes associated with periodic refractive-index lattices such as gratings and photonic crystals. As shown by numerous simulations, single-layer subwavelength periodic leaky-mode waveguide films with binary profiles can be applied to fashion optical elements that provide a remarkably broad variety of tailored spectral characteristics. These sparse elements with one-dimensional periodicity can function as new types of narrow-line bandpass filters, polarized wideband reflectors, polarizers, polarization-independent elements, and as wideband antireflectors. The project addresses fabrication and characterization of new device concepts based on these structures with the main objectives as follows:1. Develop an analytical model for resonance elements with weakly modulated asymmetric profiles to elucidate the detailed resonance physics and leaky-mode interactions in this limit.2. Numerically quantify spectral enhancements realized by addition of homogeneous layers.3. Numerically characterize the resonant leaky-mode photonic band structure. 4. Numerically quantify resonant leaky-mode spatial field distributions to clarify the leaky-mode interaction dynamics. 5. Fabricate and test resonant elements using silicon-on-insulator wafers.Intellectual merit: This project provides new, creative directions in photonic device research by addressing fundamental phenomena for subwavelength leaky-mode resonant device technologies. The preliminary results indicate that a new class of optical elements is possible and explain how pertinent devices might be implemented. The associated physical properties are explained in terms of the photonic band structure and its relation to the structural symmetry of the elements. The interaction dynamics of the leaky modes at resonance contribute to sculpting the diverse spectral bands observed by numerical simulations. The leaky-mode spectral placement, their spectral density, and their levels of interaction are shown to be fundamentally important in understanding device operation. These ideas merit further theoretical and experimental research and development as proposed.Broader impacts: Single-layer leaky-mode elements can have functionality somewhat comparable to multilayer homogeneous thin-film elements. Traditional thin optical films are applied to design and fabricate elements with diverse spectral features which are widely used in optical systems. The guided-mode resonance elements of interest in this proposal possess analogous spectral versatility but are governed by different physics. Thus, new possibilities in function and applications can be envisioned that may provide complementary capability with the field of thin-film optics. Finally, the project will benefit graduate and undergraduate education and enhance the experience of numerous high school students and teachers attending summer programs in engineering.
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财政年份:1996
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Research Scholars in Electrical Engineering
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财政年份:1993
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依托单位:
CHARACTERISTICS OF OPTICAL GUIDED-MODE RESONANCE FILTERS
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财政年份:1992
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Integration of Undergraduate Scholars Into Existing Research Programs
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财政年份:1991
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依托单位:
海外基金