HgCdTe红外光子捕获结构中量子效率和表面复合的数值模拟

J. Schuster, E. Bellotti
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引用次数: 0

摘要

我们研究了HgCdTe光伏像素阵列的量子效率,采用了一种光子捕获结构,该结构由旨在提供宽带操作的周期性柱阵实现。我们发现,量子效率在很大程度上取决于柱表面的钝化。用阳极氧化物钝化的柱在柱表面具有较大的固定正电荷。利用三维数值模拟模型研究了表面电荷和表面复合速度对矿柱外表面的影响。然后我们评估了不同表面条件下该结构的量子效率。我们发现,表面电荷和表面复合本身对量子效率是有害的,但当这两种现象同时存在时,量子效率得到了恢复。我们将讨论这些现象的影响以及两者之间存在的权衡。
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Numerical simulation of quantum efficiency and surface recombination in HgCdTe IR photon-trapping structures
We have investigated the quantum effiency in HgCdTe photovoltaic pixel arrays employing a photon-trapping structure realized with a periodic array of pillars intended to provide broadband operation. We have found that the quantum efficiency depends heavily on the passivation of the pillar surface. Pillars passivated with anodicoxide have a large fixed positive charge on the pillar surface. We use our three-dimensional numerical simulation model to study the effect of surface charge and surface recombination velocity on the exterior of the pillars. We then evaluate the quantum efficiency of this structure subject to different surface conditions. We have found that by themselves, the surface charge and surface recombination are detrimental to the quantum efficiency but the quantum efficiency is recovered when both phenomena are present. We will discuss the effects of these phenomena and the trade offs that exist between the two.
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