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Effect of topography-dependent light coupling through a near-field aperture on the local photocurrent of a solar cell

机译:通过近场孔径在太阳能电池的局部光电流上的近场孔径依赖性光耦合的影响

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摘要

An aperture-type scanning near-field optical microscope (a-SNOM) is readily used for the optical and optoelectronic characterizations of a wide variety of chemical, biological and optoelectronic samples with sub-wavelength optical resolution. These samples mostly exhibit nanoscale topographic variations, which are related to local material inhomogeneity probed either by an optical contrast or by secondary effects such as photoconductivity or photoluminescence. To date, in the interpretation and evaluation of the measurement results from a-SNOM or derived methods, often only the local material inhomogeneity is taken into account. A possible influence of the optical interaction between the scanning probe and the surface topography is rarely discussed. In this paper, we present experimental and theoretical investigation of the effects of nanoscale topographic features on a-SNOM measurement results. We conduct local photocurrent measurements on a thin-film solar cell with an a-SNOM as the illumination source. A clear correlation between the photocurrent response and local topography is observed in all measurements with a signal contrast of up to similar to 30%, although the sample features homogeneous permittivity and electrical properties. With the help of finite-difference time-domain (FDTD) simulations, this correlation is reproduced and local light coupling is identified as the mechanism which determines the local photocurrent response. Our results suggest that a-SNOM-based measurements of any sample with material inhomogeneity will be superimposed by the local light-coupling effect if surface topography variation exists. This effect should always be taken into consideration for an accurate interpretation of the measurement results.
机译:孔型扫描近场光学显微镜(A-SNOM)容易用于具有具有子波长光学分辨率的各种化学,生物和光电样本的光学和光电子特性。这些样品主要表现出纳米级地形变化,其与通过光学对比或通过诸如光电导或光致发光的二次效果探测的局部材料的局部材料。迄今为止,在对A-SNOM或衍生方法的测量结果的解释和评估中,通常仅考虑局部材料不均匀性。很少讨论扫描探针与表面形貌之间的光学相互作用的可能影响。本文介绍了纳米级地形特征对A-SNOM测量结果的实验​​和理论研究。我们在薄膜太阳能电池上进行局部光电流测量,用A-SNOM作为照明源。在所有测量中观察到光电流响应和局部地形之间的明显相关性,其信号对比度至30%,尽管样品具有均匀介电常数和电性能。在有限差分时域(FDTD)模拟的帮助下,再现该相关性,并且局部光耦合被识别为确定局部光电流响应的机制。我们的结果表明,如果存在表面形貌变化,则叠加任何具有材料不均匀性的样品的基于样品的测量值,如果存在表面形貌变化,则呈现出局部光学耦合效果。应始终考虑这种效果,以便准确地解释测量结果。

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