Optical Switching of Hole Transfer in Double-Perovskite/Graphene Heterostructure

Journal Article (2023)
Author(s)

Heng Zhang (Max Planck Institute for Polymer Research)

Elke Debroye (Katholieke Universiteit Leuven)

Shuai Fu (Max Planck Institute for Polymer Research)

Miriam C.Rodriguez González (Katholieke Universiteit Leuven)

Indy du Fossé (TU Delft - ChemE/Opto-electronic Materials)

Jaco J. Geuchies (Max Planck Institute for Polymer Research)

Lei Gao (Southeast University, Max Planck Institute for Polymer Research)

Xiaoqing Yu (Max Planck Institute for Polymer Research)

Arjan J. Houtepen (TU Delft - ChemE/Opto-electronic Materials)

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Research Group
ChemE/Opto-electronic Materials
DOI related publication
https://doi.org/10.1002/adma.202211198
More Info
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Publication Year
2023
Language
English
Research Group
ChemE/Opto-electronic Materials
Issue number
29
Volume number
35
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Abstract

Synergically combining their respective ultrahigh charge mobility and strong light absorption, graphene (Gr)/semiconductor heterostructures are promising building blocks for efficient optoelectronics, particularly photodetectors. Charge transfer (CT) across the heterostructure interface crucially determines device efficiency and functionality. Here, it is reported that hole-transfer processes dominate the ultrafast CT across strongly coupled double-perovskite Cs2AgBiBr6/graphene (DP/Gr) heterostructures following optical excitation. While holes are the primary charges flowing across interfaces, their transfer direction, as well as efficiency, show a remarkable dependence on the excitation wavelength. For excitation with photon energies below the bandgap of DPs, the photoexcited hot holes in Gr can compete with the thermalization process and inject into in-gap defect states in DPs. In contrast, above-bandgap excitation of DP reverses the hole-transfer direction, leading to hole transfer from the valence band of DPs to Gr. Experimental evidence that increasing the excitation photon energy enhances CT efficiency for both below- and above-bandgap photoexcitation regimes is further provided, unveiling the positive role of excess energy in enhancing interfacial CT. The possibility of switching the hole-transfer direction and thus the interfacial photogating field by tuning the excitation wavelength, provides a novel way to control the interfacial charge flow across a DP/Gr heterojunction.