Through analysis of three-generation solar cells, predict the future potential for solar-powered cars
DOI:
https://doi.org/10.54097/vmtd4463Keywords:
Solar cars; batteries; efficiency; scale of the market.Abstract
In today's world, the problem of global warming is becoming increasingly serious, leading to natural disasters. One of the main causes of global warming is the emission of carbon dioxide. There are hundreds of millions of cars worldwide that contain a lot of carbon dioxide in their exhaust emissions, and in the future more and more. So now mankind needs a way to solve this problem. The development and promotion of solar cars is a good way to reduce car exhaust emissions. The role, market size and prospects of solar vehicles are presented in this article. By summarizing the different types of solar cells in different literature, the working principles of the first, second and third generation solar cell, as well as their advantages and disadvantages, are analysed. By studying the properties of these batteries, the performance of the fourth generation of new solar cells is predicted and some individual opinions are presented.
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[1] Esmaeili S E, Aldandan A, Dallol L, et al. Design and implementation of a one-seater solar car[J]. Journal of Sustainable Development of Energy, Water and Environment Systems, 2024, 12(1): 1-14.
[2] Zhang Wenjie. A brief discussion on the application of solar energy technology in the field of new automotive energy [J]. Technology and Market, 2021, 28(12):96-97.
[3] Ballif C, Haug F J, Boccard M, et al. Status and perspectives of crystalline silicon photovoltaics in research and industry[J]. Nature Reviews Materials, 2022, 7(8): 597-616.
[4] Hou Yanqing, Xie Gang, Tao Dongping, et al. Solar grade polysilicon production technology[D], 2010.
[5] Chen Junfan, Zhao Shengsheng, Gao Tian, et al. Latest progress and development trends of high-efficiency monocrystalline silicon solar cells [J]. Materials Herald, 2019, 33(1): 110-116.
[6] Tang Y. Copper indium gallium selenide thin film solar cells[J]. Nanostructured solar cells, 2017, 10: 65291
[7] Shah A. Amorphous silicon solar cells[J]. Solar Cells and Modules, 2020: 139-161.
[8] Romeo A, Artegiani E. CdTe-based thin film solar cells: past, present and future[J]. Energies, 2021, 14(6): 1684
[9] Zhao Zhiming. Technology development status and trends of amorphous silicon thin film solar cells and production equipment[J]. Science and Technology Information Development and Economics, 2009, 19(34): 136-138
[10] Chen Zhonghai, Zhou Ying. Working principle and application prospects of organic solar cells[J]. Physical Bulletin, 2020, 39(3): 123-125.
[11] Francis O I, Ikenna A. Review of dye-sensitized solar cell (DSSCs) development[J]. Natural Science, 2021, 13(12): 496-509.
[12] Li Ling, Ma Zeyuan, Li Zixiang, et al. Research progress on quantum dot sensitized solar cells [J]. Journal of Hebei University (Natural Science Edition), 2020, 40(5): 469.
[13] Li Bo, Zhao Jianhong, Zhao Xinbo, et al. Research progress and development trends of new solar cells [J]. Energy Research and Information, 2021, 37(1): 32-39.
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