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The relationship between the resulting morphology and device performance is analyzed.
The performance of SCs is also strongly influenced by other factors such as morphology and device structure.
Atomic force microscopy (AFM) and photovoltaic device measurements are used to study the morphology and device performance of the three different types of ZnO interlayers.
Here, we substantiate this observation by investigating the role of a rod-coil block copolymer poly- 3-hexylthiophene -b-polystyrene (poly- 3-hexylthiophene -b-polystyreneencing the blend morpoly- 3-hexylthiophene -b-polystyreneeral poly- 3-hexylthiophene -b-polystyrene
This value is significantly higher than what would be expected from high temperature annealing alone, which has been linked to improvements in surface morphology and device efficiency in CIGS solar cells.
To investigate the effect of addition of (PCB 2C2 on the active layer morphology and device performance, a blend of PCBM with the carbazole-based PCDTBT polymer was chosen as model system.
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While traditionally used as electron donor materials, π conjugated polymers suffer from batch-to-batch variations in molecular weight and regioregularity that make controlling morphology, and ultimately device performance, difficult.
The degree of mixing of fullerene acceptors with conjugated polymer donors used for thin film BHJ solar cells has significant implications for determining morphologies and overall device performance.
The relationships between copolymer morphologies, physical properties and device performance are analyzed.
The type of the DC solvent and annealing temperature employed during the preparation of CH3NH3PbI3 films via a solvent-assisted process have a considerable impact on the resulting absorber morphologies, crystalline structures, and device photovoltaic performance.
The material and device morphology was examined by scanning electron microscopy (SEM).
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