The development of scalable deposition methods for perovskite solar cell materials is critical to enable the commercialization of this nascent technology. Herein, we investigate the use and processing of nanoparticle SnO2 films as electron transport layers in perovskite solar cells and develop deposition methods for ultrasonic spray coating and slot-die coating, leading to photovoltaic device efficiencies over 19%. The effects of postprocessing treatments (thermal annealing, UV ozone, and O2 plasma) are then probed using structural and spectroscopic techniques to characterize the nature of the np-SnO2/perovskite interface. We show that a brief “hot air flow” method can be used to replace extended thermal annealing, confirming that this appr...
We present planar perovskite solar cells incorporating thin SnO 2 /Al 2 O 3 double electron transpor...
International audienceTo upscale the emerging perovskite photovoltaic technology to larger-size modu...
Hybrid perovskite solar cells (PSC) have gained stupendous achievement in single/tandem solar cell, ...
Tin oxide (SnO x ) electron-extraction layers are fabricated via a reactive electron-beam evaporatio...
In the renewable energy field, the use of hybrid perovskite materials has opened up new directions t...
Perovskite solar cell (PSC) technology experiences a remarkably rapid growth toward commercializatio...
Solution‐processed tin oxide (SnO$_{x}$ ) electron transport layers demonstrate excellent performanc...
Tin dioxide (SnO2) has been demonstrated as one of the promising electron transport layers for high-...
Electron transport layer (ETL) is a functional layer of great significance for boosting the power co...
Solution-processed metal halide perovskite materials haverevealed outstanding optoelectronic feature...
Tin oxide (SnO2) is widely used as electron transporting layer (ETL) in perovskite solar cells (PSC...
The fabrication of high efficiency perovskite solar cells at larger scales will rely on the optimize...
Corrosive precursors used for the preparation of organic inorganic hybrid perovskite photoactive lay...
Inorganic metal oxide electron-transport layers (ETLs) have the potential to yield perovskite solar ...
We present planar perovskite solar cells incorporating thin SnO 2 /Al 2 O 3 double electron transpor...
International audienceTo upscale the emerging perovskite photovoltaic technology to larger-size modu...
Hybrid perovskite solar cells (PSC) have gained stupendous achievement in single/tandem solar cell, ...
Tin oxide (SnO x ) electron-extraction layers are fabricated via a reactive electron-beam evaporatio...
In the renewable energy field, the use of hybrid perovskite materials has opened up new directions t...
Perovskite solar cell (PSC) technology experiences a remarkably rapid growth toward commercializatio...
Solution‐processed tin oxide (SnO$_{x}$ ) electron transport layers demonstrate excellent performanc...
Tin dioxide (SnO2) has been demonstrated as one of the promising electron transport layers for high-...
Electron transport layer (ETL) is a functional layer of great significance for boosting the power co...
Solution-processed metal halide perovskite materials haverevealed outstanding optoelectronic feature...
Tin oxide (SnO2) is widely used as electron transporting layer (ETL) in perovskite solar cells (PSC...
The fabrication of high efficiency perovskite solar cells at larger scales will rely on the optimize...
Corrosive precursors used for the preparation of organic inorganic hybrid perovskite photoactive lay...
Inorganic metal oxide electron-transport layers (ETLs) have the potential to yield perovskite solar ...
We present planar perovskite solar cells incorporating thin SnO 2 /Al 2 O 3 double electron transpor...
International audienceTo upscale the emerging perovskite photovoltaic technology to larger-size modu...
Hybrid perovskite solar cells (PSC) have gained stupendous achievement in single/tandem solar cell, ...