Operation and physics of photovoltaic solar cells: an overview

Noemi Guerra, M. Guevara, César Palacios, F. Crupi
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引用次数: 10

Abstract

Solar energy is considered the primary source of renewable energy on earth; and among them, solar irradiance has both, the energy potential and the duration sufficient to match mankind future energy needs. Nowadays, despite the significant potential of sunlight for supplying energy, solar power provides only a very small fraction (of about 0.5%) of the global energy demand. In order to increase the worldwide installed PV capacity, solar photovoltaic systems must become more efficient, reliable, cost-competitive and responsive to the current demands of the market. In this context, PV industry in view of the forthcoming adoption of more complex architectures requires the improvement of photovoltaic cells in terms of reducing the related loss mechanism, focusing on the optimization of the process design, as well as, reducing manufacturing complexity and cost. Hence a careful choice of materials, a suitable architecture and geometric distribution, passivation techniques and the adoption of a suitable numerical modeling simulation strategy are mandatory. This work is part of a research activity on some advanced technological solutions aimed at enhancing the conversion efficiency of silicon solar cells. In particular, a detailed study on the main concepts related to the physical mechanisms such as generation and recombination process, movement, the collection of charge carriers, and the simple analytical 1D p-n junction model required to properly understand the behavior of solar cell structures. Additionally, the theoretical efficiency limits and the main loss mechanisms that affect the performance of silicon solar cells are explained.
光伏太阳能电池的操作和物理:概述
太阳能被认为是地球上可再生能源的主要来源;其中,太阳辐照度具有足够的能量潜力和持续时间,足以满足人类未来的能源需求。如今,尽管太阳能在提供能源方面具有巨大的潜力,但太阳能只提供了全球能源需求的很小一部分(约0.5%)。为了增加全球光伏发电装机容量,太阳能光伏发电系统必须变得更加高效、可靠、具有成本竞争力,并对当前的市场需求作出反应。在此背景下,光伏产业鉴于即将采用更复杂的架构,要求光伏电池在降低相关损耗机制、注重工艺设计的优化以及降低制造复杂性和成本等方面进行改进。因此,必须仔细选择材料、合适的结构和几何分布、钝化技术和采用合适的数值模拟模拟策略。这项工作是一项旨在提高硅太阳能电池转换效率的先进技术解决方案研究活动的一部分。特别是,详细研究了与物理机制相关的主要概念,如生成和重组过程,运动,电荷载流子的收集,以及正确理解太阳能电池结构行为所需的简单解析1D p-n结模型。此外,还解释了影响硅太阳能电池性能的理论效率极限和主要损耗机制。
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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