Ultrathin silicon solar microcells for semitransparent, mechanically flexible and microconcentrator module designs
Author(s) -
Jongseung Yoon,
Alfred J. Baca,
Sang-Il Park,
Paulius Elvikis,
Joseph B. Geddes,
Lanfang Li,
Rak Hwan Kim,
Jianliang Xiao,
Shuodao Wang,
TaeHo Kim,
Michael J. Motala,
Bok Yeop Ahn,
Eric B. Duoss,
Jennifer A. Lewis,
Ralph G. Nuzzo,
Placid M. Ferreira,
Yonggang Huang,
Angus Rockett,
John A. Rogers
Publication year - 2008
Publication title -
nature materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 14.344
H-Index - 483
eISSN - 1476-4660
pISSN - 1476-1122
DOI - 10.1038/nmat2287
Subject(s) - silicon , wafer , flexibility (engineering) , materials science , photovoltaic system , transparency (behavior) , nanotechnology , transfer printing , reliability (semiconductor) , photovoltaics , optical transparency , engineering physics , solar cell , computer science , optoelectronics , electrical engineering , engineering , power (physics) , physics , statistics , mathematics , computer security , composite material , quantum mechanics
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.
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