Photovoltaic devices based on lead iodide perovskite films have seen rapid advancements, recently achieving an impressive 17.9% certified solar power conversion efficiency. Reports have consistently emphasized that the specific choice of growth conditions and chemical precursors is central to achieving superior performance from these materials; yet the roles and mechanisms underlying the selection of materials processing route is poorly understood. Here we show that films grown under iodine-rich conditions are prone to a high density of deep electronic traps (recombination centers), while the use of a chloride precursor avoids the formation of key defects (Pb atom substituted by I) responsible for short diffusion lengths and poor photovolta...
Perovskite solar cells based on methylammonium lead triiodide witnessed unprecedented progress after...
To date, there have been a plethora of reports on different means to fabricate organic– inorganic me...
Metal halide perovskites have merged as an attractive class of materials for photovoltaic applicati...
Non-radiative recombination via defects is a major loss mechanism for nearly all photovoltaic techno...
Metal halide perovskites are generating enormous excitement for use in solar cells and light-emissio...
Metal halide perovskites have emerged as a new class of semiconductor materials enabling a broad ran...
Oxide perovskite materials have occupied a very important position in functional materials such as f...
Metal halide perovskites have emerged as a class of semiconductor materials with unique optical and ...
Inorganic-organic lead-halide perovskite solar cells have reached efficiencies above 22% within a fe...
Solution-processed metal halide perovskite semiconductors, such as CH3NH3PbI3, have exhibited remar...
Metal-halide perovskites show remarkably clean semiconductor behaviour, as evidenced by their excell...
Recently, metal halide perovskite materials have become an exciting topic of research for scientists...
Large-crystal perovskite films The performance of organic-inorganic hybrid perovskite planar solar c...
The chemical origins of charge recombination centers in lead-based organohalide perovskites were inv...
Perovskite solar cells based on methylammonium lead triiodide witnessed unprecedented progress after...
To date, there have been a plethora of reports on different means to fabricate organic– inorganic me...
Metal halide perovskites have merged as an attractive class of materials for photovoltaic applicati...
Non-radiative recombination via defects is a major loss mechanism for nearly all photovoltaic techno...
Metal halide perovskites are generating enormous excitement for use in solar cells and light-emissio...
Metal halide perovskites have emerged as a new class of semiconductor materials enabling a broad ran...
Oxide perovskite materials have occupied a very important position in functional materials such as f...
Metal halide perovskites have emerged as a class of semiconductor materials with unique optical and ...
Inorganic-organic lead-halide perovskite solar cells have reached efficiencies above 22% within a fe...
Solution-processed metal halide perovskite semiconductors, such as CH3NH3PbI3, have exhibited remar...
Metal-halide perovskites show remarkably clean semiconductor behaviour, as evidenced by their excell...
Recently, metal halide perovskite materials have become an exciting topic of research for scientists...
Large-crystal perovskite films The performance of organic-inorganic hybrid perovskite planar solar c...
The chemical origins of charge recombination centers in lead-based organohalide perovskites were inv...
Perovskite solar cells based on methylammonium lead triiodide witnessed unprecedented progress after...
To date, there have been a plethora of reports on different means to fabricate organic– inorganic me...
Metal halide perovskites have merged as an attractive class of materials for photovoltaic applicati...