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Effects of Magnetic Nanoparticles and External Magnetostatic Field on the Bulk Heterojunction Polymer Solar Cells

机译:磁性纳米粒子和外部静磁场对整体异质结聚合物太阳能电池的影响

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摘要

The price of energy to separate tightly bound electron-hole pair (or charge-transfer state) and extract freely movable charges from low-mobility materials represents fundamental losses for many low-cost photovoltaic devices. In bulk heterojunction (BHJ) polymer solar cells (PSCs), approximately 50% of the total efficiency lost among all energy loss pathways is due to the photogenerated charge carrier recombination within PSCs and low charge carrier mobility of disordered organic materials. To address these issues, we introduce magnetic nanoparticles (MNPs) and orientate these MNPS within BHJ composite by an external magnetostatic field. Over 50% enhanced efficiency was observed from BHJ PSCs incorporated with MNPs and an external magnetostatic field alignment when compared to the control BHJ PSCs. The optimization of BHJ thin film morphology, suppression of charge carrier recombination, and enhancement in charge carrier collection result in a greatly increased short-circuit current density and fill factor, as a result, enhanced power conversion efficiency.
机译:分离紧密结合的电子-空穴对(或电荷转移状态)并从低迁移率材料中提取自由移动的电荷的能源价格代表了许多低成本光伏设备的基本损失。在体异质结(BHJ)聚合物太阳能电池(PSC)中,所有能量损失途径中损失的总效率的大约50%是由于PSC中的光生电荷载流子复合以及无序有机材料的低载流子迁移率。为了解决这些问题,我们引入了磁性纳米粒子(MNP),并通过外部静磁场将这些MNPS定向在BHJ复合材料中。与对照BHJ PSC相比,结合了MNP的BHJ PSC观察到效率提高了50%以上,并且外部静磁场场对准。 BHJ薄膜形态的优化,电荷载流子复合的抑制以及电荷载流子收集的增强,导致短路电流密度和填充因子大大提高,从而提高了功率转换效率。

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