能源收集的革命性变革:利用环境太阳能提高发电量

M. M. M., Nnamchi, S. N., S. J. I.
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引用次数: 0

摘要

对可持续和可再生能源不断增长的需求推动了对环境太阳能的探索,使其成为清洁发电的重要途径。这篇综述论文深入探讨了太阳能收集技术的复杂性,对其原理、效率指标、材料进步和多种应用进行了全面分析。重点关注作为太阳能电池基石的光生伏打效应,深入探讨半导体材料选择和带隙工程对效率的关键影响。强调了填充因子、开路电压和短路电流等关键性能指标在评估系统效率中的关键作用。从便携式电子产品到大型太阳能发电场,太阳能解决方案的适应性通过各种应用得到了体现。展望未来,在技术、材料科学和效率措施不断进步的推动下,这篇综述展望了太阳能收集的美好前景。从本综述中获得的启示将促进更高效、更易获得的太阳能收集技术的发展。反过来,这也有望在全球向更环保、更可持续的能源格局转变的过程中发挥重要作用,为可持续发展、减缓气候变化和提高全球生活质量做出实质性贡献。关键词太阳能收集、太阳能电池、材料选择、电池板方向、存储技术、系统集成、案例研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Revolutionizing Energy Harvesting: Harnessing Ambient Solar Energy for Enhanced Electric Power Generation
The escalating demand for sustainable and renewable energy sources has propelled the exploration of ambient solar energy as a pivotal avenue for cleaner power generation. This review paper delves into the intricacies of solar energy harvesting technologies, providing a comprehensive analysis of principles, efficiency metrics, material advancements, and versatile applications. Focusing on the photovoltaic effect as the cornerstone of solar cells, the critical impact of semiconductor material selection and bandgap engineering on efficiency is thoroughly examined. Key performance measures such as fill factor, open-circuit voltage, and short-circuit current are emphasized for their pivotal role in evaluating system efficiency. The adaptability of solar energy solutions is exemplified through diverse applications, spanning from portable electronics to large-scale solar farms. Looking towards the future, this review envisions a promising trajectory for solar energy harvesting, driven by continual advancements in technology, material science, and efficiency measures. The insights gleaned from this comprehensive examination are poised to catalyze the development of more efficient and accessible solar energy harvesting technologies. This, in turn, promises to play a significant role in the global transition towards a greener and more sustainable energy landscape, contributing substantively to sustainability, climate mitigation, and an enhanced quality of life worldwide. Keywords: Solar energy harvesting, solar cells, material selection, panel orientation, storage techniques, system integration, case studies.
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