论文标题

通过将分子偶极子嵌入其孔阻滞层中,增强钙钛矿太阳能电池的开路电压

Enhancing the Open-Circuit Voltage of Perovskite Solar Cells by Embedding Molecular Dipoles within their Hole-Blocking Layer

论文作者

Butscher, Julian F., Intorp, Sebastian, Kress, Joshua, An, Qingzhi, Hofstetter, Yvonne J., Hippchen, Nikolai, Paulus, Fabian, Bunz, Uwe H. F., Tessler, Nir, Vaynzof, Yana

论文摘要

通过故意插入偶极子来控制设备的内置潜力,可以使钙钛矿光伏设备的能量学为增强其性能而无需修改活动层本身,从而提供了机会。在这项工作中,我们演示了将分子偶极子掺入倒置的perovskite太阳能电池中的巴达果(BCP)孔阻断层中,从而改善了设备的开路电压(VOC),从而改善了其性能。我们探索了一系列的四个硫代烯基衍生物,这些衍生物表现出偶极矩的增加,并证明可以将这些分子引入溶液处理的BCP层中,以有效地增加设备内的内置电位,而无需更改任何其他设备层。结果,设备的VOC可通过多达130 mV增强,并带有较大的偶极子,从而产生了较高的VOC。为了研究这种方法的局限性,我们采用了数值设备模拟,这些模拟表明,在这项工作中使用的最高偶极衍生物消除了对设备内置电位的VOC的所有局限性。

Engineering the energetics of perovskite photovoltaic devices through the deliberate introduction of dipoles to control the built-in potential of the devices offers the opportunity to enhance their performance without the need to modify the active layer itself. In this work, we demonstrate how the incorporation of molecular dipoles into the bathocuproine (BCP) hole-blocking layer of inverted perovskite solar cells improves the device open-circuit voltage (VOC) and consequently, its performance. We explore a series of four thiaazulenic derivatives that exhibit increasing dipole moments and demonstrate that these molecules can be introduced into the solution-processed BCP layer to effectively increase the built-in potential within the device, without altering any of the other device layers. As a result the VOC of the devices is enhanced by up to 130 mV with larger dipoles resulting in higher VOCs. To investigate the limitations of this approach, we employ numerical device simulations that demonstrate that the highest dipole derivatives used in this work eliminate all limitations on the VOC stemming from the built-in potential of the device.

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