Abstract Surface post‐treatment using ammonium halides effectively reduces large open‐circuit voltage (VOC) losses in bromine‐rich wide‐bandgap (WBG) perovskite solar cells (PSCs). However, the underlying mechanism still remains unclear and the device efficiency lags largely behind. Here, a facile strategy of precisely tailoring the phase purity of 2D perovskites on top of 3D WBG perovskite and realizing high device efficiency is reported. The transient absorption spectra, cross‐sectional confocal photoluminescence mapping, and cross‐sectional Kelvin probe force microscopy are combined to demonstrate optimal defect passivation effect and surface electric‐field of pure n = 1 2D perovskites formed atop 3D WBG perovskites via low‐temperature a...
Dimensional engineering of perovskite solar cells has attracted significant research attention recen...
Perovskites with bandgaps between 1.7 and 1.8 eV are optimal for tandem configurations with crystall...
A long-standing dream in the large scale application of solar energy conversion is the fabrication o...
Solar-to-electricity conversion efficiency, power conversion efficiency (PCE), and stability are two...
Solar-to-electricity conversion efficiency, power conversion efficiency (PCE), and stability are two...
International audienceAbstract Efficient semi-transparent solar cells can trigger the adoption of bu...
© 2018 American Chemical Society. Perovskites with bandgaps between 1.7 and 1.8 eV are optimal for t...
Owing to improvements in film morphology, crystallization process optimization, and compositional de...
International audienceWithin the challenging race for alternative energy sources, hybrid metal halid...
Since their introduction in 2017, the efficiency of lead-free halide perovskite solar cells based on...
Summary: The power conversion efficiency (PCE) of metal halide perovskite solar cells (PSCs) has imp...
Mixed-dimensional perovskite solar cells combining 3D and 2D perovskites have recently attracted wid...
Perovskites with bandgaps between 1.7 and 1.8 eV are optimal for tandem configurations with crystall...
Dimensional engineering of perovskite solar cells has attracted significant research attention recen...
Perovskites with bandgaps between 1.7 and 1.8 eV are optimal for tandem configurations with crystall...
A long-standing dream in the large scale application of solar energy conversion is the fabrication o...
Solar-to-electricity conversion efficiency, power conversion efficiency (PCE), and stability are two...
Solar-to-electricity conversion efficiency, power conversion efficiency (PCE), and stability are two...
International audienceAbstract Efficient semi-transparent solar cells can trigger the adoption of bu...
© 2018 American Chemical Society. Perovskites with bandgaps between 1.7 and 1.8 eV are optimal for t...
Owing to improvements in film morphology, crystallization process optimization, and compositional de...
International audienceWithin the challenging race for alternative energy sources, hybrid metal halid...
Since their introduction in 2017, the efficiency of lead-free halide perovskite solar cells based on...
Summary: The power conversion efficiency (PCE) of metal halide perovskite solar cells (PSCs) has imp...
Mixed-dimensional perovskite solar cells combining 3D and 2D perovskites have recently attracted wid...
Perovskites with bandgaps between 1.7 and 1.8 eV are optimal for tandem configurations with crystall...
Dimensional engineering of perovskite solar cells has attracted significant research attention recen...
Perovskites with bandgaps between 1.7 and 1.8 eV are optimal for tandem configurations with crystall...
A long-standing dream in the large scale application of solar energy conversion is the fabrication o...