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Heterogeneous carbon nano-tube window layer with higher sheet resistance improve the solar cell performance

机译:具有较高薄层电阻的非均相碳纳米管窗口层改善了太阳能电池性能

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The heterogeneous Carbon Nano-Tube (CNT) layers deposited on the window surface of solar cells that allow better charge carrier collection was numerically analyzed and studied in modern TCAD tools. The quantum efficiency(EQE) as well as power conversion efficiency(η) were found to be improved significantly based on the light transmission capabilities of the CNT layer. Two CNT network models using experimental sheet resistance values of 75 Ω/□ and 128 Ω/□ as a top conducting layer in a GaAs solar cell were compared. It is found that the CNT networks allow for a greater area of charge collection as well as serve as a lower resistance path for charge carriers with minimum voltage loss to travel to the top contact. This model thus significantly improve the η up to 30% under AMO with more than 90% EQE. The effect of cell width varying starting from 200 urn to 4000 urn with CNT top layer on J_(sc), V_(oc) and P_(max) parameters were studied and found that these parameters remain almost constant irrespective of cell width. This work thus shown that a thin CNT top layers of lower sheet resistance with a higher light transmission can greatly improve the efficiency of solar cells.
机译:沉积太阳能电池,其允许更好的电荷载流子收集的窗口表面上的非均相碳纳米管(CNT)层进行数值分析并在现代TCAD工具研究。量子效率(EQE)以及功率转换效率(η)被发现是基于在CNT层的光传输能力显著改善。使用75Ω/□和128Ω/□的实验片电阻值作为在GaAs太阳能电池进行了比较的顶导电层的两个CNT网络模型。据发现,碳纳米管网状结构允许电荷收集更大的面积,以及作为与最小电压损失行程顶端接触载流子的较低的电阻路径。该模型因此显著提高η高达AMO下30%,超过90%的EQE。细胞的宽度改变从200瓮开始4000瓮与J_(SC)CNT顶层的效果,V_(OC)和P_(最大值)参数研究,并发现,这些参数保持几乎恒定而不管单元宽度的被。这个工作从而表明具有较高的光透射较低的表面电阻的薄CNT顶层可以大大提高太阳能电池的效率。

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