This study introduces a straightforward technique for edge engineering in MoS2 flakes through chemically induced nano-folding. By utilizing a buffered oxide etchant solution, precise detachment is achieved from the substrate and controlled folding/rolling of MoS2 flakes, resulting in the creation of additional active edges up to 100 times thicker than the original flake. The model material, MoS2 grown on silicon substrates via chemical vapor deposition, undergoes a dramatic transformation in morphology. This transformation is driven by partial detachment from the substrate, followed by bending and folding of the flake boundaries, which generates well-defined additional edges. The impact of edge thickening is demonstrated on fundamental characteristics such as work function, crystallinity, and catalytic properties. Notably, the findings demonstrate that the engineered edges significantly enhance the electrocatalytic activity of MoS2 in hydrogen evolution reactions. This highlights the potential of this method to substantially improve the performance of low-dimensional materials.

Edge Engineering in MoS2 by Chemically Induced Nano-Folding

Chini E.;Esposito F.;Benekou V.;Lunedei E.;Ruani G.;Rizzoli R.;Calabrese Sivieri G.;Liscio F.;Corticelli F.;Seravalli L.;D'Angelo P.;Palermo V.;Candini A.
;
Gentili D.
;
Cavallini M.
2025

Abstract

This study introduces a straightforward technique for edge engineering in MoS2 flakes through chemically induced nano-folding. By utilizing a buffered oxide etchant solution, precise detachment is achieved from the substrate and controlled folding/rolling of MoS2 flakes, resulting in the creation of additional active edges up to 100 times thicker than the original flake. The model material, MoS2 grown on silicon substrates via chemical vapor deposition, undergoes a dramatic transformation in morphology. This transformation is driven by partial detachment from the substrate, followed by bending and folding of the flake boundaries, which generates well-defined additional edges. The impact of edge thickening is demonstrated on fundamental characteristics such as work function, crystallinity, and catalytic properties. Notably, the findings demonstrate that the engineered edges significantly enhance the electrocatalytic activity of MoS2 in hydrogen evolution reactions. This highlights the potential of this method to substantially improve the performance of low-dimensional materials.
2025
Istituto per lo Studio dei Materiali Nanostrutturati - ISMN
Istituto per la Sintesi Organica e la Fotoreattivita' - ISOF
Istituto dei Materiali per l'Elettronica ed il Magnetismo - IMEM
edge engineering
MoS2 flakes
nano-foldings
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/547305
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