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A puzzling solar cell structure: an exercise to get insight on intermediate band solar cells

机译:令人费解的太阳能电池结构:一种练习,可深入了解中带太阳能电池

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摘要

We introduce one trivial but puzzling solar cell structure. It consists of a high bandgap pn junction (top cell) grown on a substrate of lower bandgap. Let us assume, for example, that the bandgap of the top cell is 1.85 eV (Al 0.3Ga 0.7As) and the bandgap of the substrate is 1.42 eV (GaAs). Is the open-circuit of the top cell limited to 1.42 V or to 1.85 V? If the answer is ldquo1.85 Vrdquo we could then make the mind experiment in which we illuminate the cell with 1.5 eV photons (notice these photons would only be absorbed in the substrate). If we admit that these photons can generate photocurrent, then because we have also admitted that the voltage is limited to 1.85 V, it might be possible that the electron-hole pairs generated by these photons were extracted at 1.6 V for example. However, if we do so, the principles of thermodynamics could be violated because we would be extracting more energy from the photon than the energy it initially had. How can we then solve this puzzle?
机译:我们介绍一种琐碎但令人费解的太阳能电池结构。它由高带隙pn结(顶部电池)组成,该结生长在较低带隙的基板上。例如,让我们假设顶部电池的带隙为1.85 eV(Al 0.3Ga 0.7As),衬底的带隙为1.42 eV(GaAs)。顶部电池的开路电压限制为1.42 V或1.85 V吗?如果答案是“ 1.85 Vrdquo”,那么我们可以进行思维实验,在实验中我们用1.5 eV光子照亮细胞(注意这些光子只会在基质中吸收)。如果我们承认这些光子可以产生光电流,那么因为我们也已经承认电压限制在1.85 V,则这些光子产生的电子-空穴对可能会在1.6 V的电压下提取。但是,如果这样做,则可能会违反热力学原理,因为我们将从光子中提取的能量要比最初的能量多。我们如何解决这个难题?

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