Mo Atom Rearrangement Drives Layer-Dependent Reactivity in Two-Dimensional MoS2

Fuente: arXiv
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Main Authors: Wang, Zifan, Wen, Jiaxuan, Mihm, Tina, Feng, Shaopeng, Huang, Kelvin, Tang, Jing, Li, Tianshu, Liang, Liangbo, Sharifzadeh, Sahar, Lai, Keji, Ling, Xi
Format: Preprint
Published: 2025
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author Wang, Zifan
Wen, Jiaxuan
Mihm, Tina
Feng, Shaopeng
Huang, Kelvin
Tang, Jing
Li, Tianshu
Liang, Liangbo
Sharifzadeh, Sahar
Lai, Keji
Ling, Xi
author_facet Wang, Zifan
Wen, Jiaxuan
Mihm, Tina
Feng, Shaopeng
Huang, Kelvin
Tang, Jing
Li, Tianshu
Liang, Liangbo
Sharifzadeh, Sahar
Lai, Keji
Ling, Xi
contents Two-dimensional (2D) materials offer a valuable platform for manipulating and studying chemical reactions at atomic level, owing to the ease of controlling their microscopic structure at the nanometer scale. While extensive research has been conducted on the structure-dependent chemical activity of 2D materials, the influence of structural transformation during the reaction remains largely unexplored. In this work, we report the layer-dependent chemical reactivity of MoS2 during a nitridation atomic substitution reaction and attribute it to the rearrangement of Mo atoms. Our results show that the chemical reactivity of MoS2 decreases as the number of layers is reduced in the few-layer regime. In particular, monolayer MoS2 exhibits significantly lower reactivity compared to its few-layer and multilayer counterparts. Atomic-resolution transmission electron microscope (TEM) reveals that MoN nanonetworks form as reaction products from monolayer and bilayer MoS2, with the continuity of the MoN crystals increasing with layer number, consistent with the local conductivity mapping data. The layer-dependent reactivity is attributed to the relative stability of the hypothetically formed MoN phase which retain the number of Mo atomic layers present in the precursor. Specifically, the low chemical reactivity of monolayer MoS2 is attributed to the high energy cost associated with Mo atom diffusion and migration necessary to form multi-layer Mo lattices in the thermodynamically stable MoN phase. This study underscores the critical role of lattice rearrangement in governing chemical reactivity and highlights the potential of 2D materials as versatile platforms for advancing the understanding of materials chemistry at atomic scale.
format Preprint
id arxiv_https___arxiv_org_abs_2509_04648
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mo Atom Rearrangement Drives Layer-Dependent Reactivity in Two-Dimensional MoS2
Wang, Zifan
Wen, Jiaxuan
Mihm, Tina
Feng, Shaopeng
Huang, Kelvin
Tang, Jing
Li, Tianshu
Liang, Liangbo
Sharifzadeh, Sahar
Lai, Keji
Ling, Xi
Materials Science
Chemical Physics
Two-dimensional (2D) materials offer a valuable platform for manipulating and studying chemical reactions at atomic level, owing to the ease of controlling their microscopic structure at the nanometer scale. While extensive research has been conducted on the structure-dependent chemical activity of 2D materials, the influence of structural transformation during the reaction remains largely unexplored. In this work, we report the layer-dependent chemical reactivity of MoS2 during a nitridation atomic substitution reaction and attribute it to the rearrangement of Mo atoms. Our results show that the chemical reactivity of MoS2 decreases as the number of layers is reduced in the few-layer regime. In particular, monolayer MoS2 exhibits significantly lower reactivity compared to its few-layer and multilayer counterparts. Atomic-resolution transmission electron microscope (TEM) reveals that MoN nanonetworks form as reaction products from monolayer and bilayer MoS2, with the continuity of the MoN crystals increasing with layer number, consistent with the local conductivity mapping data. The layer-dependent reactivity is attributed to the relative stability of the hypothetically formed MoN phase which retain the number of Mo atomic layers present in the precursor. Specifically, the low chemical reactivity of monolayer MoS2 is attributed to the high energy cost associated with Mo atom diffusion and migration necessary to form multi-layer Mo lattices in the thermodynamically stable MoN phase. This study underscores the critical role of lattice rearrangement in governing chemical reactivity and highlights the potential of 2D materials as versatile platforms for advancing the understanding of materials chemistry at atomic scale.
title Mo Atom Rearrangement Drives Layer-Dependent Reactivity in Two-Dimensional MoS2
topic Materials Science
Chemical Physics
url https://arxiv.org/abs/2509.04648