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Toward Scalable Electrochemical Exfoliation of Molybdenum Disulfide Powder through an Accessible Electrode Design.

Authors :
Wilson ND
Ozhukil Valappil M
Martin BY
Siu T
Pennings J
Mackintosh M
Almadhoun MN
Ouyang J
Graddage N
Pope MA
Source :
Small methods [Small Methods] 2025 Jan; Vol. 9 (1), pp. e2400298. Date of Electronic Publication: 2024 Jul 17.
Publication Year :
2025

Abstract

Cathodic electrochemical intercalation/exfoliation of transition metal dichalcogenides (TMDs) with bulky tetraalkylammonium-based cations is gaining popularity as it avoids the semiconducting (2H) to metallic (1T) phase transformation in TMDs like molybdenum disulfide (MoS <subscript>2</subscript> ) and, generally, produces sheets with a larger aspect ratio - important for achieving conformal sheet-to-sheet contact in optoelectronic devices. Large single crystals are typically used as the precursor, but these are expensive, often inaccessible, and result in limited quantities of material. In this paper, a 3D-printable electrochemical cell capable of intercalating gram-scale quantities of commercially available TMD powders is presented. By incorporating a reference electrode in the cell and physically restraining the powder with a spring-loaded mechanism, the system can probe the intercalation electrochemistry, for example, determining the onset of intercalation to be near -2.5 V versus the ferrocene redox couple. While the extent of intercalation depends on precursor quantity and reaction time, a high yield of exfoliated product can be obtained exhibiting average aspect ratios as high as 49 ± 44 similar to values obtained by crystal intercalation. The intercalation and exfoliation of a wide variety of pelletized commercial powders including molybdenum diselenide (MoSe <subscript>2</subscript> ), tungsten diselenide (WSe <subscript>2</subscript> ), tungsten disulfide (WS <subscript>2</subscript> ), and graphitic carbon nitride (gCN) are also demonstrated.<br /> (© 2024 National Research Council Canada and The Author(s). Small Methods published by Wiley‐VCH GmbH. Reproduced with the permission of the Minister of Innovation, Science, and Economic Development.)

Details

Language :
English
ISSN :
2366-9608
Volume :
9
Issue :
1
Database :
MEDLINE
Journal :
Small methods
Publication Type :
Academic Journal
Accession number :
39015052
Full Text :
https://doi.org/10.1002/smtd.202400298