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壳层材料和限制类型对核壳量子点纳米晶体太阳能电池转换效率的影响。

Effect of the shell material and confinement type on the conversion efficiency of core/shell quantum dot nanocrystal solar cells.

作者信息

Sahin Mehmet

机构信息

Department of Material Sciences and Nanotechnology Engineering, Abdullah Gül University, Sümer Campus 38080 Kayseri, Turkey.

出版信息

J Phys Condens Matter. 2018 May 23;30(20):205301. doi: 10.1088/1361-648X/aabb7f. Epub 2018 Apr 4.

DOI:10.1088/1361-648X/aabb7f
PMID:29616981
Abstract

In this study, the effects of the shell material and confinement type on the conversion efficiency of core/shell quantum dot nanocrystal (QDNC) solar cells have been investigated in detail. For this purpose, the conventional, i.e. original, detailed balance model, developed by Shockley and Queisser to calculate an upper limit for the conversion efficiency of silicon p-n junction solar cells, is modified in a simple and effective way to calculate the conversion efficiency of core/shell QDNC solar cells. Since the existing model relies on the gap energy ([Formula: see text]) of the solar cell, it does not make an estimation about the effect of QDNC materials on the efficiency of the solar cells, and gives the same efficiency values for several QDNC solar cells with the same [Formula: see text]. The proposed modification, however, estimates a conversion efficiency in relation to the material properties and also the confinement type of the QDNCs. The results of the modified model show that, in contrast to the original one, the conversion efficiencies of different QDNC solar cells, even if they have the same [Formula: see text], become different depending upon the confinement type and shell material of the core/shell QDNCs, and this is crucial in the design and fabrication of the new generation solar cells to predict the confinement type and also appropriate QDNC materials for better efficiency.

摘要

在本研究中,详细研究了壳层材料和限制类型对核壳量子点纳米晶体(QDNC)太阳能电池转换效率的影响。为此,由肖克利和奎塞尔开发的用于计算硅 p-n 结太阳能电池转换效率上限的传统(即原始)详细平衡模型,以一种简单有效的方式进行了修改,以计算核壳 QDNC 太阳能电池的转换效率。由于现有模型依赖于太阳能电池的能隙([公式:见原文]),它没有对 QDNC 材料对太阳能电池效率的影响进行估计,并且对于几个具有相同[公式:见原文]的 QDNC 太阳能电池给出相同的效率值。然而,所提出的修改方法根据 QDNC 的材料特性以及限制类型来估计转换效率。修改后模型的结果表明,与原始模型不同,即使不同的 QDNC 太阳能电池具有相同的[公式:见原文],其转换效率也会因核壳 QDNC 的限制类型和壳层材料而有所不同,这对于新一代太阳能电池的设计和制造至关重要,有助于预测限制类型以及选择合适的 QDNC 材料以提高效率。

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