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Seok, Sang Il
Laboratory for Energy Harvesting Materials and Systems
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R4N+ and Cl− stabilized α-formamidinium lead triiodide and efficient bar-coated mini-modules

Author(s)
Yoo, Jin WookNoh, EunseoJang, JihunLee, Kyoung SuByeon, JunseopChoi, MansooIm, JinoSeok, Sang Il
Issued Date
2023-04
DOI
10.1016/j.joule.2023.03.003
URI
https://scholarworks.unist.ac.kr/handle/201301/64417
Citation
JOULE, v.7, no.4, pp.797 - 809
Abstract
The higher thermodynamic stability of formamidinium lead triiodide (FAPbI3) in the yellow non-perovskite (8-phase) than the black perov-skite (a-phase) at room temperature causes spontaneous a-phase to 8-phase transition. Stabilization of a-FAPbI3 by alloying the perovskite composition is limited by band gap broadening and halide segregation. Furthermore, commercial PSCs require coating methods suitable for large-area modules. Herein, we report a-phase stabilization of FAPbI3 without band gap broadening using R4N+ cations and Cl- anions. Subsequently, high-efficiency perovskite so-lar mini-modules (PSMs) were fabricated using a bar-coating process with simultaneous defect passivation and hole-transport promotion which exhibited a maximum power conversion efficiency (PCE) of 21.23% (certified 20.33%, 36.4-cm2 area). The PCE in the 1-cm2 area fabricated by bar-coating was 23.24% (certified 22.79%, the highest in those fabricated by scalable bar-coating method). Furthermore, the encapsulated PSM retained 93% of its initial PCE, even after 870 h under continuous one-sun illumination.
Publisher
CELL PRESS
ISSN
2542-4351
Keyword
HIGHLY EFFICIENTSOLAR-CELLSPEROVSKITESPERFORMANCE

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