Ahiud Morag

Senior Academic

Solution-Processable Electronic-Grade 2D WTe2 Enabled by Synergistic Dual Ammonium Intercalation

Hyejung Yang, Kevin Synnatschke, Jiho Yoon, Hossein Mirhosseini, Ilka M. Hermes, Xiaodong Li, Christof Neumann, Ahiud Morag, Andrey Turchanin, Thomas D. Kühne, Stuart S.P. Parkin, Sheng Yang, Ali Shaygan Nia, Xinliang Feng

Tungsten ditelluride (WTe2) exhibits thickness-dependent properties, including magnetoresistance, ferroelectricity, and superconductivity, positioning it as an ideal candidate for nanoelectronics and spintronics. Therefore, the scalable synthesis of WTe2 with defined thicknesses down to the monolayer limit is crucial for unlocking these properties. Here, we introduce a universal electrolyte chemistry utilizing dual-ammonium compounds to exfoliate WTe2, enabling precise control over the intercalation stages and flake thicknesses. This approach achieves an 86% exfoliation yield, producing high-quality flakes averaging 2.83 nm in thickness, in which approximately 10% are monolayers. A solution-processed, single-flake device (10 nm thick) exhibits a magnetoresistance (MR) of 50% at 2 K and 9 T, and piezo-response force microscopy (PFM) indicates ferroelectricity in WTe2 flakes. Additionally, large-area WTe2 thin films (15 × 15 mm2), fabricated using Langmuir-Schaefer deposition, exhibit metallic behavior with a high conductivity of 2.9 × 104 S/m. Overall, the hybrid electrolyte approach facilitates the scalable synthesis of high-quality, solution-processable, two-dimensional (2D) WTe2 flakes with excellent properties. This versatility of the developed method has been further exemplified through the exfoliation of other transition metal dichalcogenides (e.g., MoS2 and MoSe2), expanding the potential for the extensive application of exfoliated 2D materials in printable and flexible nanoelectronics.

Publication language English
Pages 14309-14317
Volume 19
Issue number 14
Publication status Published - 15.04.2025

Keywords

2D nanomaterials
electrochemical exfoliation
solution-processable
thin films
WTe

ASJC Scopus subject areas

General Materials Science
General Engineering
General Physics and Astronomy

PubMed: MeSH publication types

Journal Article
Access to Document
10.1021/acsnano.5c01224
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Link to publication in Scopus