Programmable Carbon Nanotube Networks: Controlling Optical Properties Through Orientation and Interaction

Author:

Voronin Kirill V.1,Ermolaev Georgy A.2,Burdanova Maria G.345,Slavich Aleksandr S.3,Toksumakov Adilet N.3,Yakubovsky Dmitry I.3,Paukov Maksim I.3,Xie Ying6,Qian Liu6,Kopylova Daria S.7,Krasnikov Dmitry V.7,Ghazaryan Davit A.38,Baranov Denis G.3,Chernov Alexander I.39,Nasibulin Albert G.7,Zhang Jin6,Arsenin Aleksey V.238,Volkov Valentyn28ORCID

Affiliation:

1. Donostia International Physics Center (DIPC) Donostia/San‐Sebastián 20018 Spain

2. Emerging Technologies Research Center XPANCEO Internet City Emmay Tower Dubai United Arab Emirates

3. Moscow Center for Advanced Studies Kulakova str. 20 Moscow Russia

4. Institute Prokhorov General Physics Institute of the Russian Academy of Sciences Moscow 119991 Russia

5. Osipyan Institute of Solid State Physics of the Russian Academy of Sciences Chernogolovka 142432 Russia

6. Beijing National Laboratory for Molecular Sciences College of Chemistry and Molecular Engineering Peking University Beijing 100871 P. R. China

7. Skolkovo Institute of Science and Technology Moscow 121205 Russia

8. Laboratory of Advanced Functional Materials Yerevan State University Yerevan 0025 Armenia

9. Russian Quantum Center Moscow 121205 Russia

Abstract

AbstractThe lattice geometry of natural materials and the structural geometry of artificial materials are crucial factors determining their physical properties. Most materials have predetermined geometries that lead to fixed physical characteristics. Here, the demonstration of a carbon nanotube network serves as an example of a system with controllable orientation achieving on‐demand optical properties. Such a network allows programming their optical response depending on the orientation of the constituent carbon nanotubes and leads to the switching of its dielectric tensor from isotropic to anisotropic. Furthermore, it also allows for the achievement of wavelength‐dispersion for their principal optical axes – a recently discovered phenomenon in van der Waals triclinic crystals. The results originate from two unique carbon nanotubes features: uniaxial anisotropy from the well‐defined cylindrical geometry and the intersection interaction among individual carbon nanotubes. The findings demonstrate that shaping the relative orientations of carbon nanotubes or other quasi‐one‐dimensional materials of cylindrical symmetry within a network paves the way to a universal method for the creation of systems with desired optical properties.

Funder

Ministerstwo Edukacji i Nauki

Basis Foundation

Russian Science Foundation

Publisher

Wiley

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