Exploring van der Waals materials with high anisotropy: geometrical and optical approaches.

IF 19.4 1区 物理与天体物理 Q1 Physics and Astronomy Light, science & applications Pub Date : 2024-03-08 DOI:10.1038/s41377-024-01407-3
Aleksandr S Slavich, Georgy A Ermolaev, Mikhail K Tatmyshevskiy, Adilet N Toksumakov, Olga G Matveeva, Dmitriy V Grudinin, Kirill V Voronin, Arslan Mazitov, Konstantin V Kravtsov, Alexander V Syuy, Dmitry M Tsymbarenko, Mikhail S Mironov, Sergey M Novikov, Ivan Kruglov, Davit A Ghazaryan, Andrey A Vyshnevyy, Aleksey V Arsenin, Valentyn S Volkov, Kostya S Novoselov
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Abstract

The emergence of van der Waals (vdW) materials resulted in the discovery of their high optical, mechanical, and electronic anisotropic properties, immediately enabling countless novel phenomena and applications. Such success inspired an intensive search for the highest possible anisotropic properties among vdW materials. Furthermore, the identification of the most promising among the huge family of vdW materials is a challenging quest requiring innovative approaches. Here, we suggest an easy-to-use method for such a survey based on the crystallographic geometrical perspective of vdW materials followed by their optical characterization. Using our approach, we found As2S3 as a highly anisotropic vdW material. It demonstrates high in-plane optical anisotropy that is ~20% larger than for rutile and over two times as large as calcite, high refractive index, and transparency in the visible range, overcoming the century-long record set by rutile. Given these benefits, As2S3 opens a pathway towards next-generation nanophotonics as demonstrated by an ultrathin true zero-order quarter-wave plate that combines classical and the Fabry-Pérot optical phase accumulations. Hence, our approach provides an effective and easy-to-use method to find vdW materials with the utmost anisotropic properties.

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探索具有高各向异性的范德华材料:几何和光学方法。
范德华(vdW)材料的出现使人们发现了其高度的光学、机械和电子各向异性,并立即促成了无数新的现象和应用。这种成功激发了人们对范德华材料尽可能高的各向异性的深入研究。此外,在庞大的 vdW 材料家族中识别最有前途的材料是一项极具挑战性的任务,需要创新的方法。在此,我们提出了一种基于 vdW 材料晶体学几何视角的简单易用的调查方法,然后再对其进行光学表征。利用我们的方法,我们发现 As2S3 是一种高度各向异性的 vdW 材料。它具有高平面内光学各向异性,比金红石大 20%,是方解石的两倍多,折射率高,在可见光范围内透明度高,打破了金红石长达一个世纪的记录。鉴于这些优点,As2S3 开辟了一条通往下一代纳米光子学的道路,结合经典和法布里-佩罗光学相位累积的超薄真正零阶四分之一波板就是证明。因此,我们的方法为寻找具有最大各向异性的 vdW 材料提供了一种有效且易于使用的方法。
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来源期刊
CiteScore
27.00
自引率
2.60%
发文量
331
审稿时长
20 weeks
期刊介绍: Light: Science & Applications is an open-access, fully peer-reviewed publication.It publishes high-quality optics and photonics research globally, covering fundamental research and important issues in engineering and applied sciences related to optics and photonics.
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