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https://hdl.handle.net/10356/170475
Title: | Semitransparent perovskite solar cells with > 13% efficiency and 27% transperancy using plasmonic Au nanorods | Authors: | Lie, Stener Bruno, Annalisa Wong, Lydia Helena Etgar, Lioz |
Keywords: | Engineering::Materials | Issue Date: | 2022 | Source: | Lie, S., Bruno, A., Wong, L. H. & Etgar, L. (2022). Semitransparent perovskite solar cells with > 13% efficiency and 27% transperancy using plasmonic Au nanorods. ACS Applied Materials and Interfaces, 14(9), 11339-11349. https://dx.doi.org/10.1021/acsami.1c22748 | Journal: | ACS Applied Materials and Interfaces | Abstract: | Semitransparent hybrid perovskites open up applications in windows and building-integrated photovoltaics. One way to achieve semitransparency is by thinning the perovskite film, which has several benefits such as cost efficiency and reduction of lead. However, this will result in a reduced light absorbance; therefore, to compromise this loss, it is possible to incorporate plasmonic metal nanostructures, which can trap incident light and locally amplify the electromagnetic field around the resonance peaks. Here, Au nanorods (NRs), which are not detrimental for the perovskite and whose resonance peak overlaps with the perovskite band gap, are deposited on top of a thin (∼200 nm) semitransparent perovskite film. These semitransparent perovskite solar cells with 27% average visible transparency show enhancement in the open-circuit voltage (Voc) and fill factor, demonstrating 13.7% efficiency (improved by ∼6% compared to reference cells). Space-charge limited current, electrochemical impedance spectroscopy (EIS), and Mott–Schottky analyses shed more light on the trap density, nonradiative recombination, and defect density in these Au NR post-treated semitransparent perovskite solar cells. Furthermore, Au NR implementation enhances the stability of the solar cell under ambient conditions. These findings show the ability to compensate for the light harvesting of semitransparent perovskites using the plasmonic effect. | URI: | https://hdl.handle.net/10356/170475 | ISSN: | 1944-8252 | DOI: | 10.1021/acsami.1c22748 | DOI (Related Dataset): | 10.21979/N9/KQB3GN | Schools: | School of Materials Science and Engineering | Research Centres: | Energy Research Institute @ NTU (ERI@N) | Rights: | This document is the Accepted Manuscript version of a Published Work that appeared in final form in ACS Applied Materials and Interfaces, copyright © 2022 American Chemical Society, after peer review and technical editing by the publisher. To access the final edited and published work see https://doi.org/10.1021/acsami.1c22748. | Fulltext Permission: | open | Fulltext Availability: | With Fulltext |
Appears in Collections: | MSE Journal Articles |
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