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首页> 外文期刊>ACS applied materials & interfaces >SnO2-Catalyzed Oxidation in High-Efficiency CdTe Solar Cells
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SnO2-Catalyzed Oxidation in High-Efficiency CdTe Solar Cells

机译:SNO2催化在高效CDTE太阳能电池中的氧化

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Interfaces at the front of superstrate CdTe-based solar cells are critical to carrier transport, recombination, and device performance, yet determination of the chemical structure of these nanoscale regions has remained elusive. This is partly due to changes that occur at the front interfaces during high temperature growth and substantive changes occurring during postdeposition processing. In addition, these buried interfaces are extremely difficult to access in a way that preserves chemical information. In this work, we use a recently developed thermomechanical cleaving technique paired with X-ray photoelectron spectroscopy to probe oxidation states at the SnO2 interface of CdTe solar cells. We show that the tin oxide front electrode promotes the formation of nanometer-scale oxides of tellurium and sulfur. Most oxidation occurs during CdCl2/O-2 activation. Surprisingly, we show that relatively low-temperature anneals (180-260 degrees C) used to diffuse and activate copper acceptors in a doping/back contact process also cause significant changes in oxidation at the front of the cell, providing a heretofore missing aspect of how back contact processes can modify device transport, recombination, and performance. Device performance is shown to correlate with the extent of tellurium and sulfur oxidation within this nanometer-scale region. Mechanisms responsible for these beneficial effects are proposed.
机译:基于葡萄胎CDTE的太阳能电池前部的界面对于载流子传输,重组和装置性能至关重要,但这些纳米级区域的化学结构的测定仍然难以捉摸。这部分是由于在高温生长期间在前界面发生的变化以及在后置分感过程中发生的实质性变化。此外,这些埋地界面非常难以以保留化学信息的方式访问。在这项工作中,我们使用最近开发的热机械切割技术与X射线光电子能谱配对,在CDTE太阳能电池的SnO2界面处对探针氧化状态。我们表明氧化锡前电极促进纳米型碲和硫的形成。在CDCl2 / O-2活化期间发生大多数氧化。令人惊讶的是,我们表明,在掺杂/背部接触过程中用于漫射和激活铜受体的相对低温退火(180-260℃)也会导致细胞前面的氧化变化,提供迄今为止缺失的方面背面接触过程如何可以修改设备传输,重组和性能。显示装置性能与该纳米级区域内的碲和硫氧化程度相关。提出了负责这些有益效果的机制。

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