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Main Authors: Falorsi, Francesca, Zhao, Shuangjie, Liu, Kejun, Eckel, Christian, Pöhls, Jonas F., Bennecke, Wiebke, Reutzel, Marcel, Mathias, Stefan, Watanabe, Kenji, Taniguchi, Takashi, Wang, Zhiyong, Polozij, Miroslav, Feng, Xinliang, Heine, Thomas, Weitz, R. Thomas
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2407.11559
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author Falorsi, Francesca
Zhao, Shuangjie
Liu, Kejun
Eckel, Christian
Pöhls, Jonas F.
Bennecke, Wiebke
Reutzel, Marcel
Mathias, Stefan
Watanabe, Kenji
Taniguchi, Takashi
Wang, Zhiyong
Polozij, Miroslav
Feng, Xinliang
Heine, Thomas
Weitz, R. Thomas
author_facet Falorsi, Francesca
Zhao, Shuangjie
Liu, Kejun
Eckel, Christian
Pöhls, Jonas F.
Bennecke, Wiebke
Reutzel, Marcel
Mathias, Stefan
Watanabe, Kenji
Taniguchi, Takashi
Wang, Zhiyong
Polozij, Miroslav
Feng, Xinliang
Heine, Thomas
Weitz, R. Thomas
contents The vertical integration of multiple two-dimensional (2D) materials in heterostructures, held together by van der Waals forces, has opened unprecedented possibilities for modifying the (opto-)electronic properties of nanodevices. Graphene, with its remarkable opto-electronic properties, is an ideal candidate for such applications. Further candidates are 2D polymers, crystalline polymeric materials with customizable structure and electronic properties that can be synthesized in all mathematically possible Bravais lattices. In this study, we investigated the optoelectronic properties of a heterostructure created by pristine graphene and a rectangular 2D polyimide (2DPI) film. This imprints a new superlattice on graphene in conjunction with a direct influence on its electronic properties. Theoretical and experimental analyses reveal that interlayer charge exchange between the 2D polymer and graphene induces hole doping in the graphene layer. We have also observed that the properties of the heterostructure are dependent on the substrate used in experiments, likely due to the porous character of the 2DPI allowing direct interaction of graphene with the support. These findings highlight the unique ability to tailor functionalities in 2D polymers-based heterostructures, allowing the development of optoelectronic devices with precisely engineered properties and stimulating further exploration of the diverse phenomena accessible through tailored designs of the 2D polymers.
format Preprint
id arxiv_https___arxiv_org_abs_2407_11559
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Interlayer charge transfer in graphene 2D polyimide heterostructures
Falorsi, Francesca
Zhao, Shuangjie
Liu, Kejun
Eckel, Christian
Pöhls, Jonas F.
Bennecke, Wiebke
Reutzel, Marcel
Mathias, Stefan
Watanabe, Kenji
Taniguchi, Takashi
Wang, Zhiyong
Polozij, Miroslav
Feng, Xinliang
Heine, Thomas
Weitz, R. Thomas
Mesoscale and Nanoscale Physics
Materials Science
The vertical integration of multiple two-dimensional (2D) materials in heterostructures, held together by van der Waals forces, has opened unprecedented possibilities for modifying the (opto-)electronic properties of nanodevices. Graphene, with its remarkable opto-electronic properties, is an ideal candidate for such applications. Further candidates are 2D polymers, crystalline polymeric materials with customizable structure and electronic properties that can be synthesized in all mathematically possible Bravais lattices. In this study, we investigated the optoelectronic properties of a heterostructure created by pristine graphene and a rectangular 2D polyimide (2DPI) film. This imprints a new superlattice on graphene in conjunction with a direct influence on its electronic properties. Theoretical and experimental analyses reveal that interlayer charge exchange between the 2D polymer and graphene induces hole doping in the graphene layer. We have also observed that the properties of the heterostructure are dependent on the substrate used in experiments, likely due to the porous character of the 2DPI allowing direct interaction of graphene with the support. These findings highlight the unique ability to tailor functionalities in 2D polymers-based heterostructures, allowing the development of optoelectronic devices with precisely engineered properties and stimulating further exploration of the diverse phenomena accessible through tailored designs of the 2D polymers.
title Interlayer charge transfer in graphene 2D polyimide heterostructures
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2407.11559