Nonlinear Nano‐Imaging of Interlayer Coupling in 2D Graphene‐Semiconductor Heterostructures

Author:

Luo Wenjin12ORCID,Song Renkang1ORCID,Whetten Benjamin G.2ORCID,Huang Di1ORCID,Cheng Xinbin1ORCID,Belyanin Alexey3ORCID,Jiang Tao1ORCID,Raschke Markus B.2ORCID

Affiliation:

1. MOE Key Laboratory of Advanced Micro‐Structured Materials Shanghai Frontiers Science Center of Digital Optics Institute of Precision Optical Engineering and School of Physics Science and Engineering Tongji University Shanghai 200092 China

2. Department of Physics and JILA University of Colorado Boulder CO 80309 USA

3. Department of Physics and Astronomy Texas A&M University College Station, TX 77843 USA

Abstract

AbstractThe emergent electronic, spin, and other quantum properties of 2D heterostructures of graphene and transition metal dichalcogenides are controlled by the underlying interlayer coupling and associated charge and energy transfer dynamics. However, these processes are sensitive to interlayer distance and crystallographic orientation, which are in turn affected by defects, grain boundaries, or other nanoscale heterogeneities. This obfuscates the distinction between interlayer charge and energy transfer. Here, nanoscale imaging in coherent four‐wave mixing (FWM) and incoherent two‐photon photoluminescence (2PPL) is combined with a tip distance‐dependent coupled rate equation model to resolve the underlying intra‐ and inter‐layer dynamics while avoiding the influence of structural heterogeneities in mono‐ to multi‐layer graphene/WSe2 heterostructures. With selective insertion of hBN spacer layers, it is shown that energy, as opposed to charge transfer, dominates the interlayer‐coupled optical response. From the distinct nano‐FWM and ‐2PPL tip‐sample distance‐dependent modification of interlayer and intralayer relaxation by tip‐induced enhancement and quenching, an interlayer energy transfer time of  ps consistent with recent reports is derived. As a local probe technique, this approach highlights the ability to determine intrinsic sample properties even in the presence of large sample heterogeneity.

Funder

U.S. Department of Energy

Air Force Office of Scientific Research

National Natural Science Foundation of China

National Science Foundation

Science and Technology Commission of Shanghai Municipality

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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