论文标题
杂交有机无机钙钛矿的明亮一面和黑暗的一面
The Bright Side and the Dark Side of Hybrid Organic Inorganic Perovskites
论文作者
论文摘要
先前开发的双向两性植物本地缺陷(Band)模型用于全面解释独特的光物理特性,并理解钙钛矿作为光伏材料的显着性能。结果表明,供体(受体)构型中的两性缺陷捕获了将它们分为两组的光激发电子(孔)的一部分:较高的能量明亮和较低的能量暗电子(孔)。黑暗电子和深色孔的空间分离以及明亮和深色荷载流子的K空间分离降低了电子孔的重组速率,从而模仿了理想的光伏材料的性质,并具有平衡的电子和孔的空间分离的传输。频段模型还为多晶性钙钛矿膜对结构和光学不均匀性的光伏性能的异常不敏感提供了简单的解释。明亮电子和孔的蓝移辐射重组产生了较大的反stokes效应,为在钙钛矿血小板中测得的激光冷却效果的光谱依赖性提供了定量解释。
The previously developed bistable amphoteric native defect (BAND) model is used for a comprehensive explanation of the unique photophysical properties and for understanding the remarkable performance of perovskites as photovoltaic materials. It is shown that the amphoteric defects in donor (acceptor) configuration capture a fraction of photoexcited electrons (holes) dividing them into two groups: higher energy bright and lower energy dark electrons (holes). The spatial separation of the dark electrons and the dark holes and the k-space separation of the bright and the dark charge carriers reduce electron hole recombination rates, emulating the properties of an ideal photovoltaic material with a balanced, spatially separated transport of electrons and holes. The BAND model also offers a straightforward explanation for the exceptional insensitivity of the photovoltaic performance of polycrystalline perovskite films to structural and optical inhomogeneities. The blue-shifted radiative recombination of bright electrons and holes results in a large anti-Stokes effect that provides a quantitative explanation for the spectral dependence of the laser cooling effect measured in perovskite platelets.