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首页> 外文期刊>Nano Energy >Maximizing the ultimate absorption efficiency of vertically-aligned semiconductor nanowire arrays with wires of a low absorption cross-section
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Maximizing the ultimate absorption efficiency of vertically-aligned semiconductor nanowire arrays with wires of a low absorption cross-section

机译:使用低吸收截面的导线最大化垂直排列的半导体纳米线阵列的最终吸收效率

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摘要

Single semiconducting nanowires with sub-wavelength diameters exhibit superior light absorption, and hence triggered a vivid discussion regarding the application of these nanostructures into future generations of high efficiency solar cells. We examine the transition from a single highly absorbing silicon wire into an array composed of such individuals in order to validate the application of these into solar harvesting devices. We use finite-difference time-domain simulations to show that the coupling of the Fabry-Perot oscillations with the waveguide resonances inside the wires has a significant effect on the array absorption. For example, the ultimate absorption efficiency of a square-tiled wire array under normal incidence (array period of 0.5 mu m, wire diameter of 0.4 mu m and wire height of 2) is 81% higher than a 2 mu m thin-film when the Fabry-Perot oscillations are considered and 37% higher when these oscillations are not considered. This coupling screens out the contribution of the waveguide modes to the array absorption and therefore, unlike previously published work, we eliminate the contribution of the Fabry-Perot oscillations. In this manner we demonstrate the absorption enhancement due to waveguide modes, and general correlations between the nanowire geometry and the overall array absorption are presented. First, we show that once an isolated wire with high absorption cross-section is nested inside an array its absorption decreases due to wire proximity effects. Secondly, the array absorption is maximized with relatively wide wires of low absorption cross-sections. We show that a 75 nm wire inside an square-tiled array with 2 pm period has an average absorption efficiency factor of 6.5 and the average relative absorption of the array is 0.5%, while the same wire nested inside an array of a 0.25 mu m period exhibits 2.3 average absorption efficiency factor and the array exhibits average relative absorption of 9.85%. Finally, there is an optimized wire diameter that once exceeded the array absorption converges to that of a continuous film. For example, the maximum absorption of 0.5 mu m array is obtained with wire diameter of 0.4 mu m where a decrease in relative absorption is recorded for arrays with wires exceeding 0.4 mu m. (C) 2015 Elsevier Ltd. All rights reserved.
机译:具有亚波长直径的单根半导体纳米线表现出优异的光吸收性能,因此引发了有关将这些纳米结构应用于下一代高效太阳能电池的生动讨论。我们研究了从单一的高吸收性硅线到由此类个体组成的阵列的过渡过程,以验证其在太阳能收集设备中的应用。我们使用有限差分时域仿真来表明,法布里-珀罗振荡与导线内部的波导共振的耦合对阵列吸收有重要影响。例如,在垂直入射时(阵列周期为0.5μm,线径为0.4μm,线高为2),方形倾斜线阵列的最终吸收效率比2μm薄膜高81%。 Fabry-Perot振荡被考虑,而当不考虑这些振荡时,高37%。这种耦合屏蔽了波导模式对阵列吸收的影响,因此,与以前发表的工作不同,我们消除了法布里-珀罗振荡的影响。以这种方式,我们证明了由于波导模式而引起的吸收增强,并且提出了纳米线几何形状与整体阵列吸收之间的一般相关性。首先,我们表明,一旦将具有高吸收截面的隔离导线嵌套在阵列内部,由于导线的邻近效应,其吸收就会降低。其次,利用低吸收截面的相对较宽的导线使阵列吸收最大化。我们显示,在一个具有2 pm周期的正方形平铺阵列内的75 nm导线平均吸收效率系数为6.5,该阵列的平均相对吸收率为0.5%,而同一根导线嵌套在0.25μm的阵列内周期显示2.3的平均吸收效率因子,阵列显示9.85%的平均相对吸收。最后,存在优化的线径,该线径一旦超过阵列,吸收率便会收敛到连续膜的吸收率。例如,当线径为0.4μm时,最大吸收量为0.5μm,对于线径超过0.4μm的阵列,相对吸收率下降。 (C)2015 Elsevier Ltd.保留所有权利。

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