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

被引:0
|
作者
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
机构
[1] Moscow Center for Advanced Studies,Institute of Materials
[2] Emerging Technologies Research Center,Department of Chemistry
[3] XPANCEO,Laboratory of Advanced Functional Materials
[4] Donostia International Physics Center (DIPC),National Graphene Institute (NGI)
[5] École Polytechnique Fédérale de Lausanne,Department of Materials Science and Engineering
[6] Lomonosov Moscow State University,Institute for Functional Intelligent Materials
[7] Yerevan State University,undefined
[8] University of Manchester,undefined
[9] National University of Singapore,undefined
[10] National University of Singapore,undefined
关键词
D O I
暂无
中图分类号
学科分类号
摘要
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.
引用
收藏
相关论文
共 50 条
  • [1] Exploring van der Waals materials with high anisotropy: geometrical and optical approaches
    Slavich, Aleksandr S.
    Ermolaev, Georgy A.
    Tatmyshevskiy, Mikhail K.
    Toksumakov, Adilet N.
    Matveeva, Olga G.
    Grudinin, Dmitriy V.
    Voronin, Kirill V.
    Mazitov, Arslan
    Kravtsov, Konstantin V.
    Syuy, Alexander V.
    Tsymbarenko, Dmitry M.
    Mironov, Mikhail S.
    Novikov, Sergey M.
    Kruglov, Ivan
    Ghazaryan, Davit A.
    Vyshnevyy, Andrey A.
    Arsenin, Aleksey V.
    Volkov, Valentyn S.
    Novoselov, Kostya S.
    LIGHT-SCIENCE & APPLICATIONS, 2024, 13 (01)
  • [2] Artificial intelligence guided search for van der Waals materials with high optical anisotropy
    Bereznikova, Liudmila A.
    Kruglov, Ivan A.
    Ermolaev, Georgy A.
    Trofimov, Ivan
    Xie, Congwei
    Mazitov, Arslan
    Tselikov, Gleb
    Minnekhanov, Anton
    Tsapenko, Alexey P.
    Povolotsky, Maxim
    Ghazaryan, Davit A.
    Arsenin, Aleksey V.
    Volkov, Valentyn S.
    Novoselov, Kostya S.
    MATERIALS HORIZONS, 2025, 12 (06) : 1953 - 1961
  • [3] High Entropy van der Waals Materials
    Ying, Tianping
    Yu, Tongxu
    Qi, Yanpeng
    Chen, Xiaolong
    Hosono, Hideo
    ADVANCED SCIENCE, 2022, 9 (30)
  • [4] Dynamics of optical vortices in Van der Waals materials
    Bucher, T.
    Kurman, Y.
    Wang, K.
    Yan, Q.
    Niedermayr, A.
    Ruimy, R.
    Nahari, H.
    Dahan, R.
    Shienfux, H. Herzig
    Vanacore, G. M.
    Kaminer, I.
    ACTIVE PHOTONIC PLATFORMS, APP 2024, 2024, 13110
  • [5] Dynamics of optical vortices in van der Waals materials
    Kurman, Yaniv
    Dahan, Raphael
    Shenfux, Hanan Herzig
    Rosolen, Gilles
    Janzen, Eli
    Edgar, James H.
    Koppens, Frank H. L.
    Kaminer, Ido
    OPTICA, 2023, 10 (05): : 612 - 618
  • [6] Magnetism and Optical Anisotropy in van der Waals Antiferromagnetic Insulator CrOCl
    Zhang, Tianle
    Wang, Yimeng
    Li, Hexuan
    Zhong, Fang
    Shi, Jia
    Wu, Minghui
    Sun, Zhaoyang
    Shen, Wanfu
    Wei, Bin
    Hu, Weida
    Liu, Xinfeng
    Huang, Li
    Hu, Chunguang
    Wang, Zhongchang
    Jiang, Chengbao
    Yang, Shengxue
    Zhang, Qing-ming
    Qu, Zhe
    ACS NANO, 2019, 13 (10) : 11353 - 11362
  • [7] Optical Anisotropy in van der Waals materials: Impact on Direct Excitation of Plasmons and Photons by Quantum Tunneling
    Wang, Zhe
    Kalathingal, Vijith
    Thanh Xuan Hoang
    Chu, Hong-Son
    Nijhuis, Christian A.
    LIGHT-SCIENCE & APPLICATIONS, 2021, 10 (01)
  • [8] Optical Anisotropy in van der Waals materials: Impact on Direct Excitation of Plasmons and Photons by Quantum Tunneling
    Zhe Wang
    Vijith Kalathingal
    Thanh Xuan Hoang
    Hong-Son Chu
    Christian A. Nijhuis
    Light: Science & Applications, 10
  • [9] Straintronics with van der Waals materials
    Miao, Feng
    Liang, Shi-Jun
    Cheng, Bin
    NPJ QUANTUM MATERIALS, 2021, 6 (01)
  • [10] Straintronics with van der Waals materials
    Feng Miao
    Shi-Jun Liang
    Bin Cheng
    npj Quantum Materials, 6