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김진영

Kim, Jin Young
Next Generation Energy Lab.
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Improved photovoltaic performance and stability of perovskite solar cells by adoption of an n-type zwitterionic cathode interlayer

Author(s)
Noh, Young WookHa, Jung MinSon, Jung GeonHan, JongminLee, HeunjeongKim, Dae WooJee, Min HunShin, Woo GyeongCho, ShinukKim, Jin YoungSong, Myoung HoonWoo, Han Young
Issued Date
2024-03
DOI
10.1039/d4mh00253a
URI
https://scholarworks.unist.ac.kr/handle/201301/82297
Citation
MATERIALS HORIZONS
Abstract
Recently, inverted perovskite solar cells (PeSCs) have witnessed significant advancements; however, their long-term stability remains a challenge because of the oxidation of silver cathodes to form AgI by mobile iodides. To overcome this problem, we propose the integration of an electron-deficient naphthalene diimide-based zwitterion (NDI-ZI) as the cathode interlayer. Compared to the physical ion-blocking layer, it effectively captures ions by forming ionic bonds via electrostatic Coulombic interaction to suppress the migration of iodide and Ag ions. The NDI-ZI interlayer also suppresses the shunt paths and modulates the work function of the Ag electrode by forming interface dipoles, thereby enhancing charge extraction. FA0.85Cs0.15PbI3 based PeSCs incorporating NDI-ZI exhibited a noticeably high power conversion efficiency of up to 23.3% and outstanding stability, maintaining similar to 80% of their initial performance over 1500 h at 85 degrees C and over 500 h under continuous 1-sun illumination. This study highlights the potential of a zwitterionic cathode interlayer in diverse perovskite optoelectronic devices, leading to their improved efficiency and stability. Integration of NDI-ZI as a cathode interlayer in perovskite solar cells improves both device efficiency and stability, mitigating halide and Ag ion migration by chemically capturing ions via electrostatic Coulombic interactions.
Publisher
ROYAL SOC CHEMISTRY
ISSN
2051-6347

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