Issue 10, 2021, Issue in Progress

Enhanced nonlinear optical response of graphene-based nanoflake van der Waals heterostructures

Abstract

The nonlinear optical properties of van der Waals bilayer heterostructures composed of graphene/h-BN and graphene/phosphorene nanoflakes are investigated using time-dependent density functional theory. Our calculated results show a significant enhancement of the first-hyperpolarizability value, β in heterostructures relative to the pristine nanoflakes at λ = 1064 nm. The calculated enhancement in optical nonlinearity mainly results from in-plane anisotropy induced by the interlayer electronic coupling between the adjacent nanoflake layers; a higher degree of anisotropy is induced by puckered phosphorene compared to atomically flat h-BN yielding χ(2) value corresponding to the second harmonic generation of ∼50 pm V−1 in the zigzag graphene/phosphorene bilayer heterostructure. The calculated results clearly show that graphene-based nanoflake heterostructures giving large NLO coefficients together with high electron mobility of these materials offer new opportunities as candidate materials of choice for next-generation photonics and integrated quantum technologies.

Graphical abstract: Enhanced nonlinear optical response of graphene-based nanoflake van der Waals heterostructures

Supplementary files

Article information

Article type
Paper
Submitted
12 Nov 2020
Accepted
22 Jan 2021
First published
29 Jan 2021
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2021,11, 5590-5600

Enhanced nonlinear optical response of graphene-based nanoflake van der Waals heterostructures

S. Kaur, R. Pandey and S. P. Karna, RSC Adv., 2021, 11, 5590 DOI: 10.1039/D0RA09636A

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