首页> 外文期刊>Journal of Applied Physics >InP-based lattice-matched InGaAsP and strain-compensated InGaAs/InGaAs quantum well cells for thermophotovoltaic applications
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InP-based lattice-matched InGaAsP and strain-compensated InGaAs/InGaAs quantum well cells for thermophotovoltaic applications

机译:基于InP的晶格匹配InGaAsP和应变补偿InGaAs / InGaAs量子阱电池,用于热光电应用

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摘要

Quantum well cells (QWCs) for thermophotovoltaic (TPV) applications are demonstrated in the InGaAsP material system lattice matched to the InP substrate and strain-compensated InGaAs/InGaAs QWCs also on InP substrates. We show that lattice-matched InGaAsP QWCs are very well suited for TPV applications such as with erbia selective emitters. QWCs with the same effective band gap as a bulk control cell show a better voltage performance in both wide and erbialike emission. We demonstrate a QWC with enhanced efficiency in a narrow-band spectrum compared to a bulk heterostructure control cell with the same absorption edge. A major advantage of QWCs is that the band gap can be engineered by changing the well thickness and varying the composition to the illuminating spectrum. This is relatively straightforward in the lattice-matched InGaAsP system. This approach can be extended to longer wavelengths by using strain-compensation techniques, achieving band gaps as low as 0.62 eV that cannot be achieved with lattice-matched bulk material. We show that strain-compensated QWCs have voltage performances that are at least as good as, if not better than, expected from bulk control cells.
机译:在与InP衬底匹配的InGaAsP材料系统晶格中展示了用于热光电(TPV)应用的量子阱电池(QWC),在InP衬底上也显示了应变补偿的InGaAs / InGaAs QWC。我们显示出晶格匹配的InGaAsP QWC非常适合TPV应用,例如使用塞尔维亚选择性发射器。具有与整体控制单元相同的有效带隙的QWC在宽幅发射和类似erbialike发射方面均显示出更好的电压性能。我们证明了与具有相同吸收边的整体异质结构控制单元相比,QWC在窄带频谱中具有更高的效率。 QWC的主要优点是可以通过改变孔的厚度和改变照明光谱的成分来设计带隙。在晶格匹配的InGaAsP系统中,这相对简单。通过使用应变补偿技术,可以将该方法扩展到更长的波长,从而实现低至0.62 eV的带隙,这是晶格匹配的块状材料无法实现的。我们表明,应变补偿QWC具有的电压性能至少要好于(如果不是优于)大容量控制单元所期望的电压性能。

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