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SOLAR Collaborative: Multiplasmonic Light Harvesting for Thin Film Solar Cells

SOLAR Collaborative: Multiplasmonic Light Harvesting for Thin Film Solar Cells
SOLAR Collaborative:薄膜太阳能电池的多等离子体光收集
批准号:
1125590
负责人:
Peter Monk
金额:
$32.94万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-01 至 2015-08-31

项目摘要

项目成果

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中文摘要
翻译
该项目由材料研究、化学和数学科学系共同资助。技术:宾夕法尼亚州立大学的一个由化学家、材料科学家和工程师组成的团队与特拉华大学的一名数学家一起研究太阳能电池的集光薄膜,该薄膜包含耦合到周期性介质的等离子体纳米结构。该项目将亚波长金属结构的强光散射概念与光子晶体的捕光和导光特性联系起来。这些结构被称为多等离子体结构,因为它们支持多种表面等离子激元-偏振(SPP)模的传播,并且可以利用S偏振和p偏振入射光。它们为大幅提高薄膜光伏电池的光利用率提供了希望。在薄膜半导体和平面介质聚光结构中对这一概念进行了计算和实验探索。采用严格耦合波方法对光的散射和传播进行了模拟和优化。由于这些计算是时间密集型的,数学研究计划开发更有效的算法,这些算法将结合提供物理上有意义的解决方案所需的光学特性。然后将开发全3-D时间域模拟工具,以实现对多等离子体结构的宽带建模。在计算工作的配合下,多等离子体概念在几个实验架构中进行了测试和验证。其中最简单的是传统的SPP散射层,该散射层由金属衬底膜组成,在包含多晶层或非晶态半导体层的薄膜多结单元上具有网格的散射中心。这种结构允许计算模型在光伏电池中得到验证,并有望量化极化和多模效应。研究了含有周期氧化物或聚合物介质层的平面聚光器结构及其异质集成硅微电池作为光伏组件。这些设计被扩展到一个光谱分裂模块,它结合了染料敏化太阳能电池和多等离子体硅电池。为了制造这些模块,开发了新的光学纳米结构和新的图案化技术。非技术:太阳能光伏发电的大规模实施受到成本的限制。太阳能光伏发电是一种有可能极大地影响全球能源经济的可再生资源。该项目的目标是探索太阳能电池中光捕获的新原理。这种方法可以设计出硅含量比传统电池少五分之一的太阳能电池,同时提供相同数量的电力。这一概念是将两种光学纳米结构结合在一起:(1)非常小的金属颗粒,众所周知,这种颗粒会强烈散射光,以及(2)衍射光的图案绝缘体--这种现象产生了蛋白石和蝴蝶翅膀的颜色。理论预测和初步实验证实,这些组合结构的薄膜在捕光方面特别好。挑战在于研究不同组合的特性,为此必须开发更有效的数学工具和制造方法,并证明它们可以以可制造的方式集成到太阳能电池中。该项目具有多学科性质,吸引研究生参与研究,在纳米材料合成和图案化、太阳能电池组件设计、光学和电学测量、建模和数学算法开发等主题之间架起桥梁。宾夕法尼亚州立大学和特拉华州的本科生优等生也参与了这个项目。
英文摘要
This project is co-funded by the Divisions of Materials Research, Chemistry, and Mathematical Sciences.Technical: A team of chemists, materials scientists, and engineers at Pennsylvania State University is joined by a mathematician at the University of Delaware to investigate light-harvesting thin films for solar cells that contain plasmonic nanostructures coupled to periodic dielectrics. The project links the concepts of strong light scattering by sub-wavelength metallic structures with the light-trapping and light-guiding properties of photonic crystals. These structures are called multiplasmonic because they support the propagation of multiple surface plasmon-polariton (SPP) modes and can utilize both s- and p-polarized incident light. They offer promise for substantially increasing the utilization of light in thin film photovoltaic cells. This concept is explored computationally and experimentally in thin film semiconductor and planar dielectric light-concentrating architectures. The Rigorous Coupled Wave Approach is used to simulate and optimize light scattering and propagation. Because these calculations are time-intensive, mathematical research is planned to develop more efficient algorithms that will incorporate the optical properties needed to provide physically meaningful solutions. A fully 3-D time domain simulation tool will then be developed to enable broadband modeling of the multiplasmonic structures. In concert with the computational effort, the multiplasmonic concept is tested and validated in several experimental architectures. The simplest of these is a conventional SPP scattering layer, consisting of a metal backing film with a grid of scattering centers on a thin film multi-junction cell containing layers of polycrystalline or amorphous semiconductors. This structure allows the computational model to be validated in a photovoltaic cell and is expected to quantify polarization and multi-mode effects. Planar concentrator architectures containing periodic oxide or polymer dielectric layers with heterogeneously integrated silicon microcells are studied as photovoltaic modules. These designs are extended to a spectrum-splitting module that combines dye-sensitized solar cells and multiplasmonic silicon cells. New optical nanostructures and new patterning techniques are developed in order to fabricate these modules.Non-technical: The large-scale implementation of solar photovoltaic power, a renewable resource that has the potential to dramatically impact the global energy economy, is limited by cost. The goal of this project is to explore a new principle for light trapping in solar cells. This approach could enable the design of solar cells that contain five times less silicon than conventional cells, while delivering the same amount of power. The concept is to couple two kinds of optical nanostructures: (1) very small metal particles, which are well known to scatter light strongly, and (2) patterned insulators that diffract light - the same phenomenon that gives rise to the colors of opals and butterfly wings. Theory predicts and preliminary experiments confirm that thin films of these combined structures are particularly good at light trapping. The challenge is to investigate the properties of different combinations, for which more efficient mathematical tools as well as fabrication methods must be developed, and to demonstrate that they can be integrated into solar cells in a manufacturable way. This project, with its multidisciplinary nature, engage graduate students in research that bridges topics in nanomaterials synthesis and patterning, solar cell module design, optical and electrical measurements, modeling, and mathematical algorithm development. Undergraduate honors students are also involved in this project at both Penn State and Delaware.
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Collaborative Research: Integrated Optoelectronic Optimization of Thin-Film Solar Cells with Light-Trapping Structures
  • 批准号:
    2011603
  • 项目类别:
    Standard Grant
  • 资助金额:
    $34.98万
  • 财政年份:
    2020
  • 负责人:
    Peter Monk
  • 依托单位:
Adhesion to host cell membrane microdomains in cornea as an antimicrobial target to prevent corneal ulceration
  • 批准号:
    MR/S004688/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $120.58万
  • 财政年份:
    2018
  • 负责人:
    Peter Monk
  • 依托单位:
Simulation and Numerical Analysis in Elastodynamics
  • 批准号:
    1818867
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $32.5万
  • 财政年份:
    2018
  • 负责人:
    Peter Monk
  • 依托单位:
Adhesion to host cell membrane microdomains in cornea as an antimicrobial target to prevent corneal ulceration
  • 批准号:
    MC_PC_17226
  • 项目类别:
    Intramural
  • 资助金额:
    $31.86万
  • 财政年份:
    2018
  • 负责人:
    Peter Monk
  • 依托单位:
海外基金