Yoon Jongseung, Baca Alfred J, Park Sang-Il, Elvikis Paulius, Geddes Joseph B, Li Lanfang, Kim Rak Hwan, Xiao Jianliang, Wang Shuodao, Kim Tae-Ho, Motala Michael J, Ahn Bok Yeop, Duoss Eric B, Lewis Jennifer A, Nuzzo Ralph G, Ferreira Placid M, Huang Yonggang, Rockett Angus, Rogers John A
Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Illinois 61801, USA.
Nat Mater. 2008 Nov;7(11):907-15. doi: 10.1038/nmat2287. Epub 2008 Oct 5.
The high natural abundance of silicon, together with its excellent reliability and good efficiency in solar cells, suggest its continued use in production of solar energy, on massive scales, for the foreseeable future. Although organics, nanocrystals, nanowires and other new materials hold significant promise, many opportunities continue to exist for research into unconventional means of exploiting silicon in advanced photovoltaic systems. Here, we describe modules that use large-scale arrays of silicon solar microcells created from bulk wafers and integrated in diverse spatial layouts on foreign substrates by transfer printing. The resulting devices can offer useful features, including high degrees of mechanical flexibility, user-definable transparency and ultrathin-form-factor microconcentrator designs. Detailed studies of the processes for creating and manipulating such microcells, together with theoretical and experimental investigations of the electrical, mechanical and optical characteristics of several types of module that incorporate them, illuminate the key aspects.
硅的天然丰度高,加上其在太阳能电池中具有出色的可靠性和良好的效率,这表明在可预见的未来,它将继续大规模用于太阳能生产。尽管有机物、纳米晶体、纳米线和其他新材料具有巨大潜力,但在先进光伏系统中探索利用硅的非常规方法仍有许多研究机会。在此,我们描述了一些模块,这些模块使用由块状晶圆制成的大规模硅太阳能微电池阵列,并通过转移印刷集成到异质衬底上的不同空间布局中。由此产生的器件可以提供有用的特性,包括高度的机械柔韧性、用户可定义的透明度和超薄外形的微聚光器设计。对制造和操纵此类微电池过程的详细研究,以及对包含它们的几种类型模块的电学、机械和光学特性的理论和实验研究,阐明了关键方面。