论文标题

单晶CSPBX $ _3 $ halide perovskites中的巨型且可调的激发光学各向异性

Giant and tunable excitonic optical anisotropy in single-crystal CsPbX$_3$ halide perovskites

论文作者

Ermolaev, G. A., Pushkarev, A. P., Zhizhchenko, A. Yu., Kuchmizhak, A. A., Iorsh, I. V., Kruglov, I., Mazitov, A., Ishteev, A., Konstantinova, K., Saranin, D., Slavich, A. S., Stosic, D., Zhukova, E., Tselikov, G., Di Carlo, Aldo, Arsenin, A. V., Novoselov, K. S., Makarov, S. V., Volkov, V. S.

论文摘要

在过去的几年中,巨型光学各向异性表明其对轻型操作的重要性至关重要,这导致了许多应用,范围从副文明的光引导到可切换的纳米层。尽管该领域最近取得了进步,但实现光学各向异性的连续可调节性仍然是一个重大挑战。在这里,我们通过单晶CSPBX $ _3 $ halide perovskites的化学改变了卤素原子(x = br或cl)的化学变化来解决问题。事实证明,各向异性起源于钙钛矿中的激子共振,光谱的位置和强度取决于卤素组成。结果,我们设法将光学各向异性不断地修改为0.14。我们还发现,卤化物钙钛矿可以在可见范围内表现出高达0.6的光学各向异性,这是非van der waals材料中最大的值。此外,我们的结果表明,这种各向异性可能是面板内和平面外的,具体取决于钙钛矿形状 - 矩形和正方形。因此,它可以作为各向异性操纵的额外自由度。作为一个实际的演示,我们创建了钙钛矿各向异性纳米线路指导,并显示了各向异性对高阶指南模式的显着影响。这些发现铺平了卤化物钙钛矿,作为可调型各向异性光子学的下一代平台。

During the last years, giant optical anisotropy demonstrated its paramount importance for light manipulation which resulted in numerous applications ranging from subdiffraction light guiding to switchable nanolasers. In spite of recent advances in the field, achieving continuous tunability of optical anisotropy remains an outstanding challenge. Here, we present a solution to the problem through chemical alteration of the ratio of halogen atoms (X = Br or Cl) in single-crystal CsPbX$_3$ halide perovskites. It turns out that the anisotropy originates from an excitonic resonance in the perovskite, which spectral position and strength are determined by the halogens composition. As a result, we manage to continually modify the optical anisotropy by 0.14. We also discover that the halide perovskite can demonstrate optical anisotropy up to 0.6 in the visible range -- the largest value among non-van der Waals materials. Moreover, our results reveal that this anisotropy could be in-plane and out-of-plane, depending on perovskite shape -- rectangular and square. Hence, it can serve as an additional degree of freedom for anisotropy manipulation. As a practical demonstration, we created perovskite anisotropic nanowaveguides and show a significant impact of anisotropy on high-order guiding modes. These findings pave the way for halide perovskites as a next-generation platform for tunable anisotropic photonics.

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