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首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Heterostructured cathode with graded bandgap window-layer for photon-enhanced thermionic emission solar energy converters
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Heterostructured cathode with graded bandgap window-layer for photon-enhanced thermionic emission solar energy converters

机译:带梯度带隙窗口层的异质结构阴极,用于光子增强型热电子发射太阳能转换器

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摘要

A heterostructured cathode having a graded bandgap window-layer is proposed in this study to improve the performance of photon-enhanced thermionic emission (PETE) solar energy converters. A model based on a one-dimensional steady-state equation is developed to analyze the characteristics of the proposed device. This model is used to calculate the conversion efficiency of a PETE device with an AlxGa1-xAs/GaAs cathode. The built-in electric field induced by the bandgap gradation in the window-layer is shown to improve the efficiency because of the reduction of contact surface recombination losses and efficient collection of photogenerated electrons. This field is unaffected by temperature variation, and the improvement of efficiency is sustained at elevated temperatures. The effect of window-layer parameters and cathode thickness on efficiency is discussed. We also show that the efficiency maximizes at lower temperatures for cathodes with lower electron affinities. Moreover an optimal value exists for anode work function at a given anode temperature, thus providing guidance for the optimum design of barrier conditions for both cathode and anode. (C) 2014 Elsevier B.V. All rights reserved.
机译:在这项研究中提出了一种具有梯度带隙窗口层的异质结构阴极,以提高光子增强热电子发射(PETE)太阳能转换器的性能。建立了基于一维稳态方程的模型,以分析该器件的特性。该模型用于计算具有AlxGa1-xAs / GaAs阴极的PETE器件的转换效率。由于减少了接触表面的复合损失和有效收集了光生电子,显示了由窗口层中的带隙灰度级感应的内置电场提高了效率。该场不受温度变化的影响,并且效率的提高在升高的温度下得以持续。讨论了窗口层参数和阴极厚度对效率的影响。我们还表明,对于具有较低电子亲和力的阴极,效率在较低温度下达到最大值。此外,在给定的阳极温度下,存在阳极功函数的最佳值,从而为阴极和阳极的势垒条件的最佳设计提供了指导。 (C)2014 Elsevier B.V.保留所有权利。

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