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Physical structure of Al‐pSi metal‐insulator semiconductor solar cells

机译:Al‐pSi金属‐绝缘体半导体太阳能电池的物理结构

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Investigations have been made of Al‐pSi metal‐insulator semiconductor (MIS) cells fabricated by depositing Al films onto silicon substrates with thermally grown SiO2surface films on the order of 18 A˚ thick. These studies have involved depth concentration profiling and ellipsometric measurements to understand the physical structure, electrical and optical characterization of aluminum films, and efforts to optimize an Al‐Si cell with a SiO antireflection (AR) coating. Depth concentration profiles show that the correct physical model is not Al/SiO2/Si, but Al/Al2O3(Si)/Si with the Al2O3interfacial layer being 15 A˚ thick. The Al film reduces the SiO2to yield Al2O3+Si for an interfacial film. Investigations to optimize the Al‐Si cell structure involved using optical constants measured for Al films to determine AR layer thicknesses, which maximize cell photocurrent for each Al film thickness. Analytical studies were also conducted concerning sheet resistance effects to determine the required grid design to maximize the fill factor. These analytical and experimental studies are used to project an ultimate, practical AM1 efficiency of 11–12 for Al‐pSi MIS cells based on a continuous metal front layer and a silicon resistivity of 2–5 OHgr; cm.
机译:已经对Al‐pSi金属&连字符;绝缘体半导体(MIS)电池进行了研究,该电池是通过将Al薄膜沉积到硅衬底上而制成的,硅衬底具有热生长的SiO2表面膜,厚度约为18 A&环;这些研究涉及深度浓度剖面和椭圆仪测量,以了解铝膜的物理结构、电学和光学特性,以及优化具有 SiO 抗反射 (AR) 涂层的 Al‐Si 电池的努力。深度浓度剖面图表明,正确的物理模型不是Al/SiO2/Si,而是Al/Al2O3(Si)/Si,Al2O3界面层厚度为15 A&环。Al薄膜还原SiO2生成Al2O3+Si,形成界面薄膜。优化 Al‐Si 电池结构的研究涉及使用为 Al 薄膜测量的光学常数来确定 AR 层厚度,从而最大限度地提高每个 Al 薄膜厚度的电池光电流。还对薄板电阻效应进行了分析研究,以确定所需的网格设计,以最大限度地提高填充系数。这些分析和实验研究用于预测基于连续金属前层和 2-5 &OHgr; cm 的硅电阻率的 Al‐pSi MIS 电池的最终实用 AM1 效率为 11-12%。

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