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Basic principles of solar cells and the possible impact of nano-structures

机译:太阳能电池的基本原理及纳米结构的可能影响

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The generation of electrons and holes by illumination and their subsequent thermalisation establishes different Fermi-distributions for the electrons in different energy ranges of a semiconducting absorber. As a consequence, chemical energy showing up as the difference of Fermi-energies is produced per electron-hole pair. The transformation of chemical into electrical energy requires a structure, the solar cell, in which semi-permeable membranes allow for selective transport of electrons and holes to different electrodes. With nano-structures as in the dye-cell, absorbers with very poor transport properties can be employed. While two-band systems are bounded by the Shockley-Queisser efficiency limit, higher efficiencies are possible for systems with more than 2 different Fermi-distributions. Examples like intermediate band structures, up- and down-converters or hot electron cells may heavily rely on the properties of nano-structures.
机译:通过照明产生电子和孔及其随后的热化建立了半导体吸收器的不同能量范围的电子的不同费用分布。因此,每个电子孔对产生随着FERMI-Energies差异的化学能量。化学成电能的转化需要结构,太阳能电池,其中半透膜允许电子和孔选择性地传送到不同的电极。利用如染料细胞中的纳米结构,可以使用具有非常差的运输性能的吸收剂。虽然双频系统受到震惊的批准效率限制的界限,但对于具有超过2个不同的费米分布的系统,可以获得更高的效率。例如中间带结构,上变频器或热电子电池的示例可以严重依赖于纳米结构的性质。

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