Title: Spherical hydroxyapatite nanoparticle scaffolds for reduced lead release from damaged perovskite solar cells

Authors (16): M. Z. Mokhtar, A. Altujjar, B. Wang, Q. Chen, J. C. -R. Ke, R. Cai, N. Zibouche, B. F. Spencer, J. Jacobs, A. G. Thomas, D. Hall, S. J. Haigh, D. J. Lewis, R. Curry, M. S. Islam, B. R. Saunders

Themes: Circular Economy (2022)

DOI: 10.1038/s43246-022-00299-3

Citations: 3

Pub type: journal-article

Publisher: Springer Science and Business Media LLC

Issue: 1

License: [{"start"=>{"date-parts"=>[[2022, 10, 19]], "date-time"=>"2022-10-19T00:00:00Z", "timestamp"=>1666137600000}, "content-version"=>"tdm", "delay-in-days"=>0, "URL"=>"https://creativecommons.org/licenses/by/4.0"}, {"start"=>{"date-parts"=>[[2022, 10, 19]], "date-time"=>"2022-10-19T00:00:00Z", "timestamp"=>1666137600000}, "content-version"=>"vor", "delay-in-days"=>0, "URL"=>"https://creativecommons.org/licenses/by/4.0"}]

Publication date(s): 2022/10/19 (online)

Pages:

Volume: 3 Issue: 1

Journal: Communications Materials

Link: [{"URL"=>"https://www.nature.com/articles/s43246-022-00299-3.pdf", "content-type"=>"application/pdf", "content-version"=>"vor", "intended-application"=>"text-mining"}, {"URL"=>"https://www.nature.com/articles/s43246-022-00299-3", "content-type"=>"text/html", "content-version"=>"vor", "intended-application"=>"text-mining"}, {"URL"=>"https://www.nature.com/articles/s43246-022-00299-3.pdf", "content-type"=>"application/pdf", "content-version"=>"vor", "intended-application"=>"similarity-checking"}]

URL: http://dx.doi.org/10.1038/s43246-022-00299-3

AbstractPerovskite solar cells continue to attract interest due to their facile preparation and high power conversion efficiencies. However, the highest efficiency perovskite solar cells inevitably contain lead, which raises concerns over contamination of drinking water when a solar module is broken and then flooded. We previously showed that conventional synthetic hydroxyapatite (HAP) nanoparticles could capture some of the lead from broken solar cells, but the amount of lead released was well above the safe drinking water level. Here, we modify the HAP synthesis to prepare new spherical-HAP (s-HAP) nanoparticles with a 60% increase in the Pb absorption capacity. We blend s-HAPs with TiO2 nanoparticles to construct mixed scaffolds and investigate their effect on (FAPbI3)0.97(MAPbBr3)0.03 solar cell performance and lead capture. Replacement of 80% of the TiO2 nanoparticles with s-HAP causes the power conversion efficiency to increase from 18.61% to 20.32% as a result of decreased charge carrier recombination. Lead contamination of water from devices subjected to simulated hail damage followed by flooding is shown to decrease exponentially with increasing s-HAP content. The lead concentration in water after 24 h is below the US safe water drinking limit.

Name Description Publised
Description of Additional Supplementary Files Description of Additional Supl. Files... 2022
Photovoltaic Checklist Photovoltaic Checklist... 2022
supplementary data for: Spherical hydroxyapatite nanoparticle scaffolds for reduced lead release from damaged perovskite solar cells Supl. data to article... 2022
supplementary video 1 Video of the breaking procedure for the PSCs. See also Supl. Figure 11 ... 2022


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