Investigation of the nonlinear optical frequency conversion in ultrathin franckeite heterostructures

Author:

Cadore Alisson R.12ORCID,Ore Alexandre S. M. V.13ORCID,Steinberg David3ORCID,Zapata Juan D.4ORCID,de Souza Eunézio A. T.1,Bahamon Dario A.13ORCID,de Matos Christiano J. S.13ORCID

Affiliation:

1. Mackenzie Engineering School, Mackenzie Presbyterian University 1 , Sao Paulo 01302907, SP, Brazil

2. Brazilian Nanotechnology National Laboratory, Brazilian Center for Research in Energy and Materials 2 , Campinas 13083-100, SP, Brazil

3. MackGraphe, Mackenzie Presbyterian Institute 3 , Sao Paulo 01302907, SP, Brazil

4. Faculty of Engineering, Universidad del Antioquia UdeA 4 , Medellín, Colombia

Abstract

Layered franckeite is a natural superlattice composed of two alternating layers of different compositions, SnS2- and PbS-like. This creates incommensurability between the two species along the planes of the layers, resulting in spontaneous symmetry-break periodic ripples in the a-axis orientation. Nevertheless, natural franckeite heterostructure has shown potential for optoelectronic applications mostly because it is a semiconductor with 0.7 eV bandgap, air-stable, and can be easily exfoliated down to ultrathin thicknesses. Here, we demonstrate that few-layer franckeite shows a highly anisotropic nonlinear optical response due to its lattice structure, which allows for the identification of the ripple axis. Moreover, we find that the highly anisotropic third-harmonic emission strongly varies with material thickness. These features are further corroborated by a theoretical nonlinear susceptibility model and the nonlinear transfer matrix method. Overall, our findings help to understand this material and propose a characterization method that could be used in other layered materials and heterostructures to assign their characteristic axes.

Funder

São Paulo State Foundation

Fundo Mackenzie de Pesquisa e Inovação

Publisher

AIP Publishing

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