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handle: 11588/829475 , 20.500.14243/384954 , 2108/251913 , 11573/1406147
AbstractThe operation of halide perovskite optoelectronic devices, including solar cells and LEDs, is strongly influenced by the mobility of ions comprising the crystal structure. This peculiarity is particularly true when considering the long‐term stability of devices. A detailed understanding of the ion migration‐driven degradation pathways is critical to design effective stabilization strategies. Nonetheless, despite substantial research in this first decade of perovskite photovoltaics, the long‐term effects of ion migration remain elusive due to the complex chemistry of lead halide perovskites. By linking materials chemistry to device optoelectronics, this study highlights that electrical bias‐induced perovskite amorphization and phase segregation is a crucial degradation mechanism in planar mixed halide perovskite solar cells. Depending on the biasing potential and the injected charge, halide segregation occurs, forming crystalline iodide‐rich domains, which govern light emission and participate in light absorption and photocurrent generation. Additionally, the loss of crystallinity limits charge collection efficiency and eventually degrades the device performance.
Solar cells of the next generation, amorphization; degradation mechanism; halide perovskites; ion migration; perovskite solar cells; phase segregation; potential-induced degradation, perovskite solar cells; halide perovskites; photovoltaics; solar energy, perovskite solar cells, 4016 Materials Engineering, potential-induced degradation, Settore ING-INF/01 - ELETTRONICA, halide perovskites, General Materials Science, 40 Engineering, ion migration, 3403 Macromolecular and Materials Chemistry, 34 Chemical Sciences, Renewable Energy, Sustainability and the Environment, potential‐induced degradation, degradation mechanism, amorphization, 3406 Physical Chemistry, 7 Affordable and Clean Energy, phase segregation, MAG: Materials science, MAG: Potential induced degradation, MAG: Planar, MAG: Phase (matter), MAG: Perovskite (structure), MAG: Ion migration, MAG: Chemical engineering, MAG: Degradation (geology), MAG: Mechanism (sociology)
Solar cells of the next generation, amorphization; degradation mechanism; halide perovskites; ion migration; perovskite solar cells; phase segregation; potential-induced degradation, perovskite solar cells; halide perovskites; photovoltaics; solar energy, perovskite solar cells, 4016 Materials Engineering, potential-induced degradation, Settore ING-INF/01 - ELETTRONICA, halide perovskites, General Materials Science, 40 Engineering, ion migration, 3403 Macromolecular and Materials Chemistry, 34 Chemical Sciences, Renewable Energy, Sustainability and the Environment, potential‐induced degradation, degradation mechanism, amorphization, 3406 Physical Chemistry, 7 Affordable and Clean Energy, phase segregation, MAG: Materials science, MAG: Potential induced degradation, MAG: Planar, MAG: Phase (matter), MAG: Perovskite (structure), MAG: Ion migration, MAG: Chemical engineering, MAG: Degradation (geology), MAG: Mechanism (sociology)
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