Changes in the nanostructure of methylammonium lead iodide (MAPbI(3)) perovskite solar cells are assessed as a function of current-voltage stimulus by biasing thin samples in situ in a transmission electron microscope. Various degradation pathways are identified both in situ and ex situ, predominantly at the positively biased MAPbI(3) interface. Iodide migrates into the positively biased charge transport layer and also volatilizes along with organic species, which triggers the nucleation of PbI2 nanoparticles and voids and hence decreases the cell performance
Copyright © 2020 American Chemical Society. Degradation due to electron beam exposure has posed a ch...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Metal halide perovskites exhibit outstanding optical and electronic properties, but are very sensiti...
Changes in the nanostructure of methylammonium lead iodide (MAPbI3) perovskite solar cells are asses...
Organic-inorganic metal-halide perovskite solar cells are emerging as a promising photovoltaic techn...
Emerging lead halide perovskite materials have enormous potential for application in a range of opto...
Emerging lead halide perovskite materials have enormous potential for application in a range of opto...
The operational stability of organic–inorganic halide perovskite based solar cells is a challenge fo...
Organic-inorganic hybrid perovskite solar cells have exhibited power conversion efficiencies compara...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Here, previously unobserved nanoscale defects residing within individual grains of solution‐processe...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Copyright © 2020 American Chemical Society. Degradation due to electron beam exposure has posed a ch...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Metal halide perovskites exhibit outstanding optical and electronic properties, but are very sensiti...
Changes in the nanostructure of methylammonium lead iodide (MAPbI3) perovskite solar cells are asses...
Organic-inorganic metal-halide perovskite solar cells are emerging as a promising photovoltaic techn...
Emerging lead halide perovskite materials have enormous potential for application in a range of opto...
Emerging lead halide perovskite materials have enormous potential for application in a range of opto...
The operational stability of organic–inorganic halide perovskite based solar cells is a challenge fo...
Organic-inorganic hybrid perovskite solar cells have exhibited power conversion efficiencies compara...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Here, previously unobserved nanoscale defects residing within individual grains of solution‐processe...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Copyright © 2020 American Chemical Society. Degradation due to electron beam exposure has posed a ch...
Operational stability is the main issue hindering the commercialisation of perovskite solar cells. H...
Metal halide perovskites exhibit outstanding optical and electronic properties, but are very sensiti...