Wandering principal optical axes in van der Waals triclinic materials

Author:

Ermolaev Georgy A.,Voronin Kirill V.,Toksumakov Adilet N.,Grudinin Dmitriy V.,Fradkin Ilia M.,Mazitov Arslan,Slavich Aleksandr S.,Tatmyshevskiy Mikhail K.,Yakubovsky Dmitry I.,Solovey Valentin R.,Kirtaev Roman V.,Novikov Sergey M.,Zhukova Elena S.ORCID,Kruglov Ivan,Vyshnevyy Andrey A.,Baranov Denis G.ORCID,Ghazaryan Davit A.ORCID,Arsenin Aleksey V.ORCID,Martin-Moreno LuisORCID,Volkov Valentyn S.,Novoselov Kostya S.ORCID

Abstract

AbstractNature is abundant in material platforms with anisotropic permittivities arising from symmetry reduction that feature a variety of extraordinary optical effects. Principal optical axes are essential characteristics for these effects that define light-matter interaction. Their orientation – an orthogonal Cartesian basis that diagonalizes the permittivity tensor, is often assumed stationary. Here, we show that the low-symmetry triclinic crystalline structure of van der Waals rhenium disulfide and rhenium diselenide is characterized by wandering principal optical axes in the space-wavelength domain with above π/2 degree of rotation for in-plane components. In turn, this leads to wavelength-switchable propagation directions of their waveguide modes. The physical origin of wandering principal optical axes is explained using a multi-exciton phenomenological model and ab initio calculations. We envision that the wandering principal optical axes of the investigated low-symmetry triclinic van der Waals crystals offer a platform for unexplored anisotropic phenomena and nanophotonic applications.

Funder

Ministry of Education - Singapore

Royal Society

Publisher

Springer Science and Business Media LLC

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