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Unexpected MoO3/Al Interfacial Reaction Lowering the Performance of Organic Solar Cells upon Thermal Annealing and
Xuelai Yu1,2, Qian Xi1,2, Jian Qin1,2
1School of Nano-Tech and Nano-Bionics, University of Science and Technology of China, JinZhai Road 96, Baohe District, Hefei 230026, P. R. China.
Abstract:
Understanding the degradation mechanism and improving the thermal stability of organic solar cells are essential for this new photovoltaic technology. In this work, we found that the high-performance polymer solar cells suffer from significant performance decay upon thermal annealing at 150 °C owing to the fast decay of VOC and FF. We demonstrated that the thermal annealing process leads to a severe chemical reaction of MoO3 with Al, forming an Al2O3 barrier layer at the MoO3/Al interface, which lowers the built-in potential (Vbi) of the cells and consequently reduces charge collection efficiency. Inserting a thin C60 interlayer between MoO3/Al slows the chemical reaction of MoO3 with Al, which ensures a high Vbi and charge collection efficiency for the annealed MoO3/C60/Al cells. Such a protection effect of the C60 layer in improving device performance against thermal annealing was also confirmed for cells with different polymer photoactive layers and metal electrodes, demonstrating the generality of the interfacial degradation of the cells and the protection effect of the C60 layer. Finally, we demonstrated that the inverted polymer solar cells with the C60-modified anode showed almost no performance decay upon high-temperature hot-press encapsulation, demonstrating excellent heat tolerance of this new device structure.
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