Improving Efficiency of Photovoltaic Cell Using Nanomaterials

Batool Memon, Samia Jatoi, Z. Ali, J. Larik, Liaquat Ali Jamro
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引用次数: 1

Abstract

Conventional solar cells are not economical and are recently too expensive to the manufacturers for extensive-scale electricity generation. Cost and efficiency is most vital factor in the accomplishment of any solar technology. In order to improve the conversion efficiency, the major research in thirdgeneration photovoltaic (PV) cells is directed toward retaining more sunlight using nanotechnology. Advancement in nanotechnology solar cell via quantum dots (QDs) could reduce the cost of PV cell and additionally enhance cell conversion efficiency. Silicon quantum dots (Si-QDs) are semiconductor nano crystals of nanometers dimension whose electron-holes are confined in all three spatial dimensions. Quantum dots have discrete electronic states. Quantum dots have capacity to change band gap with the adjustment in size of quantum dot. As the quantum dots size fluctuates over a wide range that demonstrates the variety of band gap so it will assimilate or discharge light. In this paper, the generic mathematical models of PV cell are adopted and then I-V and P-V characteristic curves are obtained from selected parameters using MATLAB software. The essential parameters are taken from datasheets. I-V and P-V characteristics curves are obtained for selected model. Silicon quantum dots have the tunable band gap that is added to conventional PV cell and obtain the I-V and P-V curves. After simulation, efficiency and power of Conventional PV cell to quantum dots based PV cell is compared. The property of quantum dots is used in extending the band gap of solar cells and increasing the maximum proportion of incident sunlight absorbed, hence improving efficiency.
利用纳米材料提高光伏电池效率
传统的太阳能电池不经济,而且对制造商来说,目前用于大规模发电过于昂贵。成本和效率是实现任何太阳能技术的最重要因素。为了提高转换效率,第三代光伏(PV)电池的主要研究方向是利用纳米技术留住更多的阳光。利用量子点技术发展纳米太阳能电池可以降低光伏电池的成本,提高电池的转换效率。硅量子点(Si-QDs)是纳米尺度的半导体纳米晶体,其电子空穴被限制在三个空间维度上。量子点具有离散的电子态。量子点具有随量子点尺寸的变化而改变带隙的能力。由于量子点的大小在一个很宽的范围内波动,这表明了带隙的变化,因此它会吸收或放电光。本文采用PV电池的通用数学模型,利用MATLAB软件对所选参数得到I-V和P-V特性曲线。基本参数取自数据表。得到所选模型的I-V和P-V特性曲线。硅量子点具有可调谐的带隙,加入到传统的光伏电池中,并获得I-V和P-V曲线。通过仿真,比较了传统光伏电池和量子点光伏电池的效率和功率。利用量子点的特性可以延长太阳能电池的带隙,增加入射太阳光的最大吸收比例,从而提高效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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