High-Specific-Power Flexible Transition Metal Dichalcogenide Solar Cells
Abstract
Semiconducting transition metal dichalcogenides (TMDs) are promising for flexible high-specific-power photovoltaics due to their ultrahigh optical absorption coefficients, desirable band gaps and self-passivated surfaces. However, challenges such as Fermi-level pinning at the metal contact-TMD interface and the inapplicability of traditional doping schemes have prevented most TMD solar cells from exceeding 2% power conversion efficiency (PCE). In addition, fabrication on flexible substrates tends to contaminate or damage TMD interfaces, further reducing performance. Here, we address these fundamental issues by employing: 1) transparent graphene contacts to mitigate Fermi-level pinning, 2) \rm{MoO}_\it{x} capping for doping, passivation and anti-reflection, and 3) a clean, non-damaging direct transfer method to realize devices on lightweight flexible polyimide substrates. These lead to record PCE of 5.1% and record specific power of for flexible TMD () solar cells, the latter on par with prevailing thin-film solar technologies cadmium telluride, copper indium gallium selenide, amorphous silicon and III-Vs. We further project that TMD solar cells could achieve specific power up to , creating unprecedented opportunities in a broad range of industries from aerospace to wearable and implantable electronics.
Keywords
Cite
@article{arxiv.2106.10609,
title = {High-Specific-Power Flexible Transition Metal Dichalcogenide Solar Cells},
author = {Koosha Nassiri Nazif and Alwin Daus and Jiho Hong and Nayeun Lee and Sam Vaziri and Aravindh Kumar and Frederick Nitta and Michelle Chen and Siavash Kananian and Raisul Islam and Kwan-Ho Kim and Jin-Hong Park and Ada Poon and Mark L. Brongersma and Eric Pop and Krishna C. Saraswat},
journal= {arXiv preprint arXiv:2106.10609},
year = {2022}
}
Comments
39 pages; v2: some references reformatted