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High index glass thin film processing for photonics and photovoltaic (PV) applications.

机译:适用于光子学和光伏(PV)应用的高折射率玻璃薄膜加工。

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摘要

To favorably compete with fossil-fuel technology, the greatest challenge for thin film solar-cells is to improve efficiency and reduce material cost. Thickness scaling to thin film reduces material cost but affects the light absorption in the cells; therefore a concept that traps incident photons and increases its optical path length is needed to boost absorption in thin film solar cells. One approach is the integration of low symmetric gratings (LSG), using high index material, on either the front-side or backside of 30 um thin c-Si cells.;In this study, Multicomponent TeO2--Bi2O 3--ZnO (TBZ) glass thin films were prepared using RF magnetron sputtering under different oxygen flow rates. The influences of oxygen flow rate on the structural and optical properties of the resulting thin films were investigated. The structural origin of the optical property variation was studied using X-ray diffraction, X-ray photoelectron spectroscopy, Raman Spectroscopy, and transmission electron microscopy. The results indicate that TBZ glass thin film is a suitable material for front side LSG material photovoltaic and photonics applications due to their amorphous nature, high refractive index (n > 2), broad band optical transparency window, low processing temperature.;We developed a simple maskless method to pattern sputtered tellurite based glass thin films using unconventional agarose hydrogel mediated wet etching. Conventional wet etching process, while claiming low cost and high throughput, suffers from reproducibility and pattern fidelity issues due to the isotropic nature of wet chemical etching when applied to glasses and polymers. This method overcomes these challenges by using an agarose hydrogel stamp to mediate a conformal etching process. In our maskless method, agarose hydrogel stamps are patterned following a standard soft lithography and replica molding process from micropatterned masters and soaked in a chemical etchant. The micro-scale features on the stamp are subsequently transferred into glass and polymer thin films via conformal wet etching.;High refractive index chalcogenide glass (n = 2.6) thin films with composition As20Se80 was selected for backside LSG material due to their attractive properties. We developed an optimized integration protocol for LSG integration and successfully integrated these LSG structures at the back side of both 30 microm c-Si solar cells and standalone 30 microm c-Si wafers. Optical and electrical characterization of LSG on thin c-Si cells shows that LSG structures create higher absorption enhancement and external quantum efficiency at long wavelengths.
机译:为了与化石燃料技术竞争,薄膜太阳能电池面临的最大挑战是提高效率和降低材料成本。厚度缩放至薄膜可降低材料成本,但会影响电池中的光吸收。因此,需要一种捕获入射光子并增加其光程长度的概念,以提高薄膜太阳能电池的吸收率。一种方法是在30微米薄c-Si电池的正面或背面使用高折射率材料集成低对称光栅(LSG)。在本研究中,多组分TeO2--Bi2O 3--ZnO(使用RF磁控溅射在不同的氧气流速下制备TBZ玻璃薄膜。研究了氧气流速对所得薄膜的结构和光学性能的影响。使用X射线衍射,X射线光电子能谱,拉曼光谱和透射电子显微镜研究了光学性质变化的结构起源。结果表明,TBZ玻璃薄膜由于其无定形性质,高折射率(n> 2),宽带光学透明窗,较低的加工温度而成为适用于正面LSG材料光伏和光子学应用的材料。简单的无掩模方法,使用非常规的琼脂糖水凝胶介导的湿法刻蚀图案化溅射的基于碲化物的玻璃薄膜。常规的湿法刻蚀工艺虽然要求低成本和高产量,但是由于当将湿法化学刻蚀应用于玻璃和聚合物时具有各向同性的性质,因此存在再现性和图案保真度问题。该方法通过使用琼脂糖水凝胶印章来介导保形蚀刻过程克服了这些挑战。在我们的无掩膜方法中,琼脂糖水凝胶印章是按照标准的软光刻和仿制工艺从微图案母版上进行图案化的,然后浸入化学蚀刻剂中。压模上的微米级特征随后通过保形湿法刻蚀转移到玻璃和聚合物薄膜中。;由于背面涂层材料的吸引力,选择了成分为As20Se80的高折射率硫属化物玻璃(n = 2.6)薄膜作为背面LSG材料。我们为LSG集成开发了优化的集成协议,并成功地将这些LSG结构集成在30微米c-Si太阳能电池和独立的30微米c-Si晶圆的背面。薄c-Si电池上LSG的光学和电学表征表明LSG结构在长波长下产生更高的吸收增强和外部量子效率。

著录项

  • 作者

    Ogbuu, Okechukwu Anthony.;

  • 作者单位

    University of Delaware.;

  • 授予单位 University of Delaware.;
  • 学科 Materials science.;Optics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 121 p.
  • 总页数 121
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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