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Polaron Plasma in Equilibrium with Bright Excitons in 2D and 3D Hybrid Perovskites

机译:Polaron等离子在平衡中,在2D和3D Hybrid植物中的明亮激子

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Rapid advances in perovskite photovoltaics have produced efficient solar cells, with stability and duration improving thanks to variations in materials composition, including the use of layered 2D perovskites. A major reason for the success of perovskite photovoltaics is the presence of free carriers as majority optical excitations in 3D materials at room temperature. On the other hand, the current understanding is that in 2D perovskites or at cryogenic temperatures insulating bound excitons form, which need to be split in solar cells and are not beneficial to photoconversion. Here, a tandem spectroscopy technique that combines ultrafast photoluminescence and differential transmission is applied to demonstrate a plasma of unbound charge carriers in chemical equilibrium with a minority phase of light-emitting excitons, even in 2D perovskites and at cryogenic temperatures. The underlying photophysics is interpreted as formation of large polarons, charge carriers coupled to lattice deformations, in place of excitons. A conductive polaron plasma foresees novel mechanisms for LEDs and lasers, as well as a prominent role for 2D perovskites in photovoltaics.
机译:Perovskite光伏的快速进步已经产生了高效的太阳能电池,具有稳定性和持续时间,由于材料组成的变化,包括使用分层的2D Perovskites。 Perovskite Photovoltaics成功的主要原因是在室温下存在自由载体作为3D材料中的大多数光学激发。另一方面,目前的理解是,在2D钙钛矿中或在低温温度下绝缘结合的激子形式,需要在太阳能电池中分裂,并且没有有利于光电转换。这里,将超快光致发光和差分传递结合的串联光谱技术应用于用少数阶段的发光激子的化学平衡中的未结合电荷载体的等离子体,即使在2D钙钛矿和低温温度下也是如此。将底层的光学药物被解释为大型优良子的形成,耦合到晶格变形的电荷载体,代替激子。导电极化子等离子体预示着LED和激光器的新机制,以及在光伏中的2D Perovskites的突出作用。

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