Understanding defect chemistry, particularly ion migration, and its significant effect on the surface’s optical and electronic properties is one of the major challenges impeding the development of hybrid perovskite-based devices. Here, using both experimental and theoretical approaches, we demonstrate that the surface layers of the perovskite crystals may acquire a high concentration of positively charged halide vacancies with the complementary negatively charged halide ions pushed to the surface. This charge separation near to the surface generate an electric field that can induce a shift in the optical band gap of the surface layers to higher energy compared to the bulk counterpart. We fou...
Halide perovskites are emerging as revolutionary materials for optoelectronics. Their ionic nature ...
Mixed-halide perovskites are essential for use in all-perovskite or perovskite–silicon tandem solar ...
Identification of specific operating mechanisms becomes particularly challenging when mixed ionic-el...
Understanding defect chemistry, particularly ion migration, and its significant effect on the surfac...
We propose a new model of defect formation and ion migration at the surfaces / grain boundaries of l...
We propose a new model of defect formation and ion migration at the surfaces/grain boundaries of lea...
Metal halide perovskites have garnered a great deal of interest over the last few years due to their...
Surfaces and grain boundaries play a fundamental role in charge transport, localization and trapping...
In contrast with conventional inorganic semiconductors such as silicon, defects in ionic metal halid...
The operation of halide perovskite optoelectronic devices, including solar cells and LEDs, is strong...
The operation of halide perovskite optoelectronic devices, including solar cells and LEDs, is strong...
The recent surge of scientific interest for lead halide perovskite semiconductors and optoelectronic...
Lead halide perovskites are semiconductor materials which are employed as nonintentionally doped abs...
Metal halide perovskite single crystals are being explored as functional materials for a variety of ...
Halide perovskites are emerging as revolutionary materials for optoelectronics. Their ionic nature ...
Mixed-halide perovskites are essential for use in all-perovskite or perovskite–silicon tandem solar ...
Identification of specific operating mechanisms becomes particularly challenging when mixed ionic-el...
Understanding defect chemistry, particularly ion migration, and its significant effect on the surfac...
We propose a new model of defect formation and ion migration at the surfaces / grain boundaries of l...
We propose a new model of defect formation and ion migration at the surfaces/grain boundaries of lea...
Metal halide perovskites have garnered a great deal of interest over the last few years due to their...
Surfaces and grain boundaries play a fundamental role in charge transport, localization and trapping...
In contrast with conventional inorganic semiconductors such as silicon, defects in ionic metal halid...
The operation of halide perovskite optoelectronic devices, including solar cells and LEDs, is strong...
The operation of halide perovskite optoelectronic devices, including solar cells and LEDs, is strong...
The recent surge of scientific interest for lead halide perovskite semiconductors and optoelectronic...
Lead halide perovskites are semiconductor materials which are employed as nonintentionally doped abs...
Metal halide perovskite single crystals are being explored as functional materials for a variety of ...
Halide perovskites are emerging as revolutionary materials for optoelectronics. Their ionic nature ...
Mixed-halide perovskites are essential for use in all-perovskite or perovskite–silicon tandem solar ...
Identification of specific operating mechanisms becomes particularly challenging when mixed ionic-el...