论文标题

揭示纳米力学结构域及其在混合壁钙钛矿膜中的瞬态行为

Revealing nanomechanical domains and their transient behavior in mixed-halide perovskite films

论文作者

Mela, Ioanna, Poudel, Chetan, Anaya, Miguel, Delport, Geraud, Frohna, Kyle, Macpherson, Stuart, Doherty, Tiarnan A. S., Stranks, Samuel D., Kaminski, Clemens F.

论文摘要

卤化物钙钛矿是用于高性能新兴的光电设备的多功能半导体,包括柔性电机系统,但其离子性质对其机械行为的影响仍然可以理解。在这里,使用原子力,光学和成分X射线显微镜技术的组合来阐明纳米级卤化物钙钛矿膜的机械性能。我们揭示了形态晶粒内部和之间的机械域,与大量父母相比,杨氏模量更高的机械边界所包围。这些机械边界与纳米X射线荧光映射可视化的富含溴的簇有关。在光吸收样品的光下,特异性地选择性地修饰了僵硬的区域,从而导致机械性能的总体均匀化,向大量的Young的模量。我们将这种行为归因于光诱导的离子迁移过程,该过程使局部化学分布均匀,并伴随着同一区域内光致发光的光零。我们的工作突出了该钙钛矿家族中机械,化学和光电特征之间的关键联系,并证明了组合成像研究的潜力来理解和设计Halide perovskite膜,用于新兴应用,例如Photoflexolectricity。

Halide perovskites are a versatile class of semiconductors employed for high performance emerging optoelectronic devices, including flexoelectric systems, yet the influence of their ionic nature on their mechanical behaviour is still to be understood. Here, a combination of atomic-force, optical and compositional X-ray microscopy techniques is employed to shed light on the mechanical properties of halide perovskite films at the nanoscale. We reveal mechanical domains within and between morphological grains, enclosed by mechanical boundaries of higher Young's Modulus than the bulk parent material. These mechanical boundaries are associated with the presence of bromide-rich clusters as visualized by nano-X-ray fluorescence mapping. Stiffer regions are specifically selectively modified upon light soaking the sample, resulting in an overall homogenization of the mechanical properties towards the bulk Young's Modulus. We attribute this behaviour to light-induced ion migration processes that homogenize the local chemical distribution, which is accompanied by photobrightening of the photoluminescence within the same region. Our work highlights critical links between mechanical, chemical and optoelectronic characteristics in this family of perovskites, and demonstrates the potential of combinational imaging studies to understand and design halide perovskite films for emerging applications such as photoflexoelectricity.

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