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Soft interfaces within hybrid perovskite solar cells: real-time dynamic tracking of interfacial electrical property evolution by EIS

机译:Hybrid Perovskite太阳能电池中的软界面:EIS的界面电容演进的实时动态跟踪

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Despite the significant increase in power conversion efficiency (PCE) achieved recently, the fundamental physics behind some of the photovoltaic anomalies in perovskite solar cells (PSCs) is rarely investigated. The interfaces within PSCs, especially the two key interfaces related to the perovskite (electron transport layer/perovskite and perovskite/hole transport layer), play a vital role in their overall performance and stability since they are especially susceptible to external stimuli. Herein, high efficiency planar PSCs were fabricated, and the property evolution of the above-mentioned two key interfaces was real-time dynamically traced via electrochemical impedance spectroscopy (EIS). The results indicate that the two interfaces under a small bias are variable, and even last for hours due to ion migration within the PSCs. Specifically, the charge transfer resistance of the two interfaces and the bulk charge transport resistance of the perovskite layer continually increased, while their capacitances (interfacial and dielectric) displayed non-linear changes. Subsequently, ion accumulation occurred at the two interfaces due to electromigration, and a gradual variation in the dielectric property of the perovskite layer was observed at a definite stage and reached a steady state finally. Interestingly, the impedance characteristics could recover within hours after the bias was removed, indicating that ion migration is reversible within PSCs. Therefore, the "soft interface" mechanism was proposed to well elucidate the unique attributes of PSCs. These findings provide novel and deep insight into the unique interfacial properties within PSCs, which advances our understanding of the underlying physical mechanism in photovoltaics.
机译:尽管最近实现了电力转换效率(PCE)的显着增加,但很少研究钙钛矿太阳能电池(PSCS)中一些光伏异口背后的基本物理。 PSC中的接口,特别是与钙钛矿(电子传输层/钙钛矿和钙钛矿/空穴传输层相关的两个关键接口,在整体性能和稳定性中起着至关重要的作用,因为它们特别容易受到外部刺激。这里,制造高效率平面PSC,并且通过电化学阻抗光谱(EIS)进行上述两个关键界面的性能演化是实时跟踪。结果表明,在小偏压下的两个接口是可变的,甚至由于PSC内的离子迁移而持续数小时。具体地,两个界面的电荷传递电阻和钙钛矿层的散装电荷传输电阻连续增加,而它们的电容(界面和电介质)显示出非线性变化。随后,在由于电迁移引起的两个接口发生离子积聚,并且在一个确定的阶段观察到钙钛矿层的电介质性质的逐渐变化,最后达到稳定状态。有趣的是,阻抗特性可以在移除偏差后的几小时内恢复,表明离子迁移在PSC中是可逆的。因此,提出了“软接口”机制,以良好地阐明PSC的独特属性。这些发现提供了对PSC中独特的界面性质的新颖和深入了解,这提出了我们对光伏中的潜在物理机制的理解。

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