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Modulation of perovskite degradation with multiple-barrier for light-heat stable perovskite solar cells.


ABSTRACT: The long-term stability of perovskite solar cells remains one of the most important challenges for the commercialization of this emerging photovoltaic technology. Here, we adopt a non-noble metal/metal oxide/polymer multiple-barrier to suppress the halide consumption and gaseous perovskite decomposition products release with the chemically inert bismuth electrode and Al2O3/parylene thin-film encapsulation, as well as the tightly closed system created by the multiple-barrier to jointly suppress the degradation of perovskite solar cells, allowing the corresponding decomposition reactions to reach benign equilibria. The resulting encapsulated formamidinium cesium-based perovskite solar cells with multiple-barrier maintain 90% of their initial efficiencies after continuous operation at 45 °C for 5200 h and 93% of their initial efficiency after continuous operation at 75 °C for 1000 h under 1 sun equivalent white-light LED illumination.

SUBMITTER: Zhou J 

PROVIDER: S-EPMC10542753 | biostudies-literature | 2023 Sep

REPOSITORIES: biostudies-literature

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Modulation of perovskite degradation with multiple-barrier for light-heat stable perovskite solar cells.

Zhou Jing J   Liu Zonghao Z   Yu Peng P   Tong Guoqing G   Chen Ruijun R   Ono Luis K LK   Chen Rui R   Wang Haixin H   Ren Fumeng F   Liu Sanwan S   Wang Jianan J   Lan Zhigao Z   Qi Yabing Y   Chen Wei W  

Nature communications 20230930 1


The long-term stability of perovskite solar cells remains one of the most important challenges for the commercialization of this emerging photovoltaic technology. Here, we adopt a non-noble metal/metal oxide/polymer multiple-barrier to suppress the halide consumption and gaseous perovskite decomposition products release with the chemically inert bismuth electrode and Al<sub>2</sub>O<sub>3</sub>/parylene thin-film encapsulation, as well as the tightly closed system created by the multiple-barrier  ...[more]

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