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    AuthorAlmislem, Amani Saleh Saad (1)Bahabry, Rabab R. (1)Ghoneim, Mohamed T. (1)Hussain, Muhammad Mustafa (1)Khan, Sherjeel (1)View MoreDepartment
    Computer, Electrical and Mathematical Sciences and Engineering (CEMSE) Division (1)
    Electrical Engineering Program (1)
    Imaging and Characterization Core Lab (1)Integrated Disruptive Electronic Applications (IDEA) Lab (1)Integrated Nanotechnology Lab (1)View MoreJournalAdvanced Energy Materials (1)Publisher
    Wiley (1)
    SubjectC-Si solar cells (1)CMOS devices (1)Flexible PV (1)High efficiency (1)Large-scale photovoltaics (1)View MoreTypeArticle (1)Year (Issue Date)
    2018 (1)
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    Corrugation Architecture Enabled Ultraflexible Wafer-Scale High-Efficiency Monocrystalline Silicon Solar Cell

    Bahabry, Rabab R.; Kutbee, Arwa T.; Khan, Sherjeel; Sepulveda, Adrian C.; Wicaksono, Irmandy; Nour, Maha A.; Wehbe, Nimer; Almislem, Amani Saleh Saad; Ghoneim, Mohamed T.; Sevilla, Galo T.; Syed, Ahad; Shaikh, Sohail F.; Hussain, Muhammad Mustafa (Advanced Energy Materials, Wiley, 2018-01-02) [Article]
    Advanced classes of modern application require new generation of versatile solar cells showcasing extreme mechanical resilience, large-scale, low cost, and excellent power conversion efficiency. Conventional crystalline silicon-based solar cells offer one of the most highly efficient power sources, but a key challenge remains to attain mechanical resilience while preserving electrical performance. A complementary metal oxide semiconductor-based integration strategy where corrugation architecture enables ultraflexible and low-cost solar cell modules from bulk monocrystalline large-scale (127 × 127 cm) silicon solar wafers with a 17% power conversion efficiency. This periodic corrugated array benefits from an interchangeable solar cell segmentation scheme which preserves the active silicon thickness of 240 μm and achieves flexibility via interdigitated back contacts. These cells can reversibly withstand high mechanical stress and can be deformed to zigzag and bifacial modules. These corrugation silicon-based solar cells offer ultraflexibility with high stability over 1000 bending cycles including convex and concave bending to broaden the application spectrum. Finally, the smallest bending radius of curvature lower than 140 μm of the back contacts is shown that carries the solar cells segments.
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