Quantum Transport and Spectroscopy of 2D Perovskite/Graphene Heterostructures

Author:

Sun Yan1ORCID,Morice Corentin1,Garrot Damien2,Weil Raphael1,Watanabe Kenji3,Taniguchi Takashi4,Monteverde Miguel1,Chepelianskii Alexei D.1ORCID

Affiliation:

1. LPS Université Paris‐Saclay CNRS, UMR 8502 Orsay F‐91405 France

2. Université Paris‐Saclay UVSQ, CNRS, GEMaC Versailles 78000 France

3. Research Center for Electronic and Optical Materials National Institute for Materials Science 1‐1 Namiki Tsukuba 305‐0044 Japan

4. International Center for Materials Nanoarchitectonics National Institute for Materials Science 1‐1 Namiki Tsukuba 305‐0044 Japan

Abstract

AbstractUnderstanding the quantum transport properties of (Two‐dimensional) 2D perovskite heterostructures is key to interpreting their electronic performance and promoting optoelectronic devices. Here, it is shown that clear Shubnikov‐de Hass oscillation appears in the heterostructure of monocrystalline 2D perovskites and graphene, thanks to the clean interface. An efficient charge transfer between perovskite nanosheets and graphene is found, facilitating the separation of electrons and holes at the interface. The relation between the charge transfer efficiency and microscopic interface structures is quantitatively described. The evidence of photo‐assisted transport from the photo‐response of magnetoresistance is revealed, which happens between Landau levels of two graphene layers mediated by hot carriers in the perovskite layer, overcoming the barrier from the organic layers in the Ruddlesden‐Popper perovskite phase. These results provide a picture to understand the transport behavior of 2D perovskite/graphene heterostructure and a reference for the controlled design of interfaces in perovskite optoelectronic devices.

Publisher

Wiley

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