After explosive growth of efficiency in organic solar cells (OSCs), achieving ideal morphology of bulk heterojunction remains crucial and challenging for advancing OSCs into consumer market. Herein, by utilizing the amphiphobic nature and temperature-dependent miscibility of fluorous solvent, hot fluorous solvent soaking method is developed to optimize the morphology with various donor/acceptor combinations including polymer/small-molecule, all-polymer and all-small-molecule systems. By immersing blend film into hot fluorous solvent which is utilized as liquid medium with better thermal conductivity, the molecular reorganization is accelerated. Furthermore, fluorous solvent can be miscible with the residue of chloroform and chloronaphthalen...
Nanoscale-phase separation of electron donor/acceptor blends is crucial for efficient charge generat...
The optimization of solution-processed organic bulk-heterojunction solar cells with the acceptor-sub...
The nanoscale morphology of poly(3-hexylthiophene) (P3HT) and [6,6]-phenyl-C71. butyric acid methyle...
We developed a novel solvent-assisted treatment (SAT) technique to modify the nanomorphology of the ...
Compared to bulk heterojunction (BHJ) organic solar cells (OSCs) prepared by the blend casting in “o...
Organic solar cells (OSCs) have made rapid progress in terms of their development as a sustainable e...
High efficiency bulk heterojunction (BHJ) organic solar cells based upon poly(3-hexylthiophene) (P3H...
AbstractThe current study aims to discover the key factors affecting the photovoltaic performance of...
The device performance of photovoltaics with a polymer: fullerene bulk heterojunction (BHJ) structur...
In the polymer photovoltaic devices (PVDs), the performance of devices was strongly influenced by re...
Fine-tuning nano/micro-structural morphologies and their depth studies in small-molecule solar cells...
Using non-halogenated solvents to process organic solar cells is preferable because they are less ha...
More environmentally friendly polymer solar cells were constructed using a conjugated polymer, poly ...
The morphology of organic active layer plays a crucial role in the performance of organic solar cell...
The performance of bulk heterojunction polymer solar cells is profoundly influenced by the spatial a...
Nanoscale-phase separation of electron donor/acceptor blends is crucial for efficient charge generat...
The optimization of solution-processed organic bulk-heterojunction solar cells with the acceptor-sub...
The nanoscale morphology of poly(3-hexylthiophene) (P3HT) and [6,6]-phenyl-C71. butyric acid methyle...
We developed a novel solvent-assisted treatment (SAT) technique to modify the nanomorphology of the ...
Compared to bulk heterojunction (BHJ) organic solar cells (OSCs) prepared by the blend casting in “o...
Organic solar cells (OSCs) have made rapid progress in terms of their development as a sustainable e...
High efficiency bulk heterojunction (BHJ) organic solar cells based upon poly(3-hexylthiophene) (P3H...
AbstractThe current study aims to discover the key factors affecting the photovoltaic performance of...
The device performance of photovoltaics with a polymer: fullerene bulk heterojunction (BHJ) structur...
In the polymer photovoltaic devices (PVDs), the performance of devices was strongly influenced by re...
Fine-tuning nano/micro-structural morphologies and their depth studies in small-molecule solar cells...
Using non-halogenated solvents to process organic solar cells is preferable because they are less ha...
More environmentally friendly polymer solar cells were constructed using a conjugated polymer, poly ...
The morphology of organic active layer plays a crucial role in the performance of organic solar cell...
The performance of bulk heterojunction polymer solar cells is profoundly influenced by the spatial a...
Nanoscale-phase separation of electron donor/acceptor blends is crucial for efficient charge generat...
The optimization of solution-processed organic bulk-heterojunction solar cells with the acceptor-sub...
The nanoscale morphology of poly(3-hexylthiophene) (P3HT) and [6,6]-phenyl-C71. butyric acid methyle...