Strong Electrostatic Control of Excitonic Features in MoS2 by a Free‐Standing Ultrahigh‐κ Ferroelectric Perovskite

Author:

Pucher Thomas1ORCID,Puebla Sergio1,Zamora Victor2,Sánchez Viso Estrella1,Rouco Victor2,Leon Carlos23,Garcia‐Hernandez Mar13,Santamaria Jacobo23,Munuera Carmen13,Castellanos‐Gomez Andres13ORCID

Affiliation:

1. 2D Foundry research group Instituto de Ciencia de Materiales de Madrid (ICMM‐CSIC) Madrid 28049 Spain

2. GFMC Department Fisica de Materiales Facultad de Fisica Universidad Complutense Madrid 28040 Spain

3. Unidad Asociada UCM/CSIC “Laboratorio de Heteroestructuras con aplicación en spintrónica” Madrid 28000 Spain

Abstract

AbstractIntegrating free‐standing complex oxides with two‐dimensional (2D) materials has recently attracted great interest, due to the rich physics evolving from such structures. Enhancing and tuning the opto–electronic properties of these systems is of high importance for a multitude of applications, such as sensors, memory devices or optical communications. The electrostatic control of photoluminescence of monolayer MoS2 at room temperature via integration of free‐standing BaTiO3 (BTO), a ferroelectric perovskite oxide is presented. It is shown that the use of BTO leads to highly tunable exciton emission of MoS2 in a minimal range of gate voltages. Due to BTO's ferroelectric polarization‐induced doping, large peak emission shifts as well as a large and tunable A trion binding energy in the range of 40–100 meV are observed. These measurements are compared with those carried out when the BTO is replaced by a hexagonal boron nitride (hBN) dielectric layer, confirming BTO's superior gating properties and thus lower power consumption. Additionally, advantage of the ferroelectric switching of BTO is taken by fabricating devices where the BTO layer is decoupled from the gate electrode with a SiO2 layer. Choosing to isolate the BTO allows to induce large remanent behavior of MoS2’s excitonic features.

Funder

Ministerio de Ciencia e Innovación

Comunidad de Madrid

Publisher

Wiley

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