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首页> 外文期刊>Nature reviews Cancer >Heterogeneous Photon Recycling and Charge Diffusion Enhance Charge Transport in Quasi-2D Lead-Halide Perovskite Films
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Heterogeneous Photon Recycling and Charge Diffusion Enhance Charge Transport in Quasi-2D Lead-Halide Perovskite Films

机译:异构光子回收和电荷扩散增强了拟氧化锂卤化物膜中的电荷输送

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摘要

The addition of large hydrophobic cations to lead halide perovskites has significantly enhanced the environmental stability of photovoltaic cells based on these materials. However, the associated formation of two-dimensional structures inside the material can lead to dielectric confinement, higher exciton binding energies, wider bandgaps and limited charge-carrier mobilities. Here we show that such effects are not detrimental to the charge transport for carefully processed films comprising a self-assembled thin layer of quasi-two-dimensional (2D) perovskite interfaced with a 3D MAPbI(3) perovskite layer. We apply a combination of time-resolved photoluminescence and photoconductivity spectroscopy to reveal the charge-carrier recombination and transport through the film profile, when either the quasi-2D or the 3D layers are selectively excited. Through modeling of the recorded dynamics, we demonstrate that while the charge-carrier mobility is lower within the quasi-2D region, charge-carrier diffusion to the 3D phase leads to a rapid recovery in photoconductivity even when the quasi-2D region is initially photoexcited. In addition, the blue-shifted emission originating from quasi-2D regions overlaps significantly with the absorption spectrum of the 3D perovskite, allowing for highly effective "heterogeneous photon recycling". We show that this combination fully compensates for the adverse effects of electronic confinement, yielding quasi-2D perovskites with highly efficient charge transporting properties.
机译:加入大型疏水阳离子至卤化锂钙酸盐,显着提高了基于这些材料的光伏电池的环境稳定性。然而,材料内部的二维结构的相关形成可以导致介电限制,更高的激子结合能,更宽的带隙和有限的电荷 - 载体迁移率。在这里,我们表明这种效果对仔细处理薄膜的电荷传输不利,所述薄膜包括与3D Mapbi(3)钙钛矿层接合的自组装薄层的准二维(2D)钙钛矿层。我们应用时间分辨的光致发光和光电导性光谱的组合,以揭示电荷载体重组和通过薄膜曲线的运输,当准2D或3D层选择性地激发时。通过记录的动态的建模,我们证明,虽然在准2D区域内电荷载流子移动性较低,但即使当准2D区域最初是光透明的时,向3D相的电荷载波扩散导致光电导的快速恢复。另外,源自拟2D区域的蓝色移位发射显着与3D Perovskite的吸收光谱显着重叠,允许高效的“异质光子回收”。我们表明,这种组合完全补偿了电子禁闭的不利影响,产生了具有高效电荷运输性能的准2D钙酯。

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