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WSe2 as transparent top gate for infrared near-field microscopy

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hesp_nanolett_2022.pdf (1,970Mb)
 
10.1021/acs.nanolett.2c01658
 
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hdl:2117/427418

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Hesp, NielsMés informació
Kamper Svendsen, Mark
Watanabe, Kenji
Taniguchi, Takashi
Thygesen, Kristian Sommer
Torre, IacopoMés informacióMés informació
Koppens, Frank
Document typeArticle
Defense date2022-08-10
Rights accessOpen Access
All rights reserved. This work is protected by the corresponding intellectual and industrial property rights. Without prejudice to any existing legal exemptions, reproduction, distribution, public communication or transformation of this work are prohibited without permission of the copyright holder
ProjectGrapheneCore2 - Graphene Flagship Core Project 2 (EC-H2020-785219)
2D-SIPC - Two-dimensional quantum materials and devices for scalable integrated photonic circuits (EC-H2020-820378)
GrapheneCore3 - Graphene Flagship Core Project 3 (EC-H2020-881603)
TOPONANOP - Topological nano-photonics (EC-H2020-726001)
ICFOstepstone - ICFOstepstone PhD Programme for Early-Stage Researchers in Photonics (EC-H2020-665884)
Abstract
Independent control of carrier density and out-of-plane displacement field is essential for accessing novel phenomena in two-dimensional (2D) material heterostructures. While this is achieved with independent top and bottom metallic gate electrodes in transport experiments, it remains a challenge for near-field optical studies as the top electrode interferes with the optical path. Here, we characterize the requirements for a material to be used as the top-gate electrode and demonstrate experimentally that few-layer WSe2 can be used as a transparent, ambipolar top-gate electrode in infrared near-field microscopy. We carry out nanoimaging of plasmons in a bilayer graphene heterostructure tuning the plasmon wavelength using a trilayer WSe2 gate, achieving a density modulation amplitude exceeding 2 × 1012 cm–2. The observed ambipolar gate–voltage response allows us to extract the energy gap of WSe2, yielding a value of 1.05 eV. Our results provide an additional tuning knob to cryogenic near-field experiments on emerging phenomena in 2D materials and moiré heterostructures.
CitationHesp, N. [et al.]. WSe2 as transparent top gate for infrared near-field microscopy. "Nano letters", 10 Agost 2022, vol. 22, núm. 15, p. 6200-6206. 
URIhttp://hdl.handle.net/2117/427418
DOI10.1021/acs.nanolett.2c01658
ISSN1530-6984
Publisher versionhttps://pubs.acs.org/doi/10.1021/acs.nanolett.2c01658
Other identifiershttps://arxiv.org/abs/2204.11666
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