材料科学
光子学
光电子学
等离子体子
半导体
光伏系统
带隙
串联
能量转换效率
吸收(声学)
纳米技术
多激子产生
能量转换
等离子太阳电池
太阳能
热光电伏打
聚合物太阳能电池
共发射极
电气工程
物理
热力学
工程类
复合材料
出处
期刊:Energies
[Multidisciplinary Digital Publishing Institute]
日期:2009-07-13
卷期号:2 (3): 504-530
被引量:171
摘要
Solar cells are a promising renewable, carbon-free electric energy resource to address the fossil fuel shortage and global warming. Energy conversion efficiencies around 40% have been recently achieved in laboratories using III-V semiconductor compounds as photovoltaic materials. This article reviews the efforts and accomplishments made for higher efficiency III-V semiconductor compound solar cells, specifically with multijunction tandem, lower-dimensional, photonic up/down conversion, and plasmonic metallic structures. Technological strategies for further performance improvement from the most efficient (Al)InGaP/(In)GaAs/Ge triple-junction cells including the search for 1.0 eV bandgap semiconductors are discussed. Lower-dimensional systems such as quantum well and dot structures are being intensively studied to realize multiple exciton generation and multiple photon absorption to break the conventional efficiency limit. Implementation of plasmonic metallic nanostructures manipulating photonic energy flow directions to enhance sunlight absorption in thin photovoltaic semiconductor materials is also emerging.
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