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Ultra-High Efficiency Photovoltaic Cells for Large Scale Solar Power Generation

机译:用于大规模太阳能发电的超高效光伏电池

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The primary targets of our project are to drastically improve the photovoltaic conversion efficiency and to develop new energy storage and delivery technologies. Our approach to obtain an efficiency over 40% starts from the improvement of III-V multi-junction solar cells by introducing a novel material for each cell realizing an ideal combination of bandgaps and lattice-matching. Further improvement incorporates quantum structures such as stacked quantum wells and quantum dots, which allow higher degree of freedom in the design of the bandgap and the lattice strain. Highly controlled arrangement of either quantum dots or quantum wells permits the coupling of the wavefunctions, and thus forms intermediate bands in the bandgap of a host material, which allows multiple photon absorption theoretically leading to a conversion efficiency exceeding 50%. In addition to such improvements, microfabrication technology for the integrated high-efficiency cells and the development of novel material systems that realizes high efficiency and low cost at the same time are investigated.
机译:我们项目的主要目标是大大提高光伏转换效率,并开发新的能量存储和传输技术。我们获得40%以上效率的方法始于对III-V多结太阳能电池的改进,方法是为每种电池引入一种新型材料,以实现带隙和晶格匹配的理想组合。进一步的改进结合了诸如堆叠的量子阱和量子点之类的量子结构,它们在带隙和晶格应变的设计中允许更高的自由度。量子点或量子阱的高度受控排列允许波函数的耦合,并因此在主体材料的带隙中形成中间带,这从理论上允许多个光子吸收,从而导致转换效率超过50%。除了这些改进以外,还研究了集成高效电池的微细加工技术以及同时实现高效率和低成本的新型材料系统的开发。

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