Plasmon‐Free Surface‐Enhanced Raman Sensing Enabled by Phase‐Engineered Two‐Dimensional Mo 2 C‐Based Heterostructures

ABSTRACT Plasmon‐free surface‐enhanced Raman scattering (SERS) based on two‐dimensional materials is a promising approach for nondestructive analysis. However, the smooth surfaces commonly formed during chemical vapor deposition (CVD) limit the generation of localized high electromagnetic fields and reduce chemical interactions with adsorbed molecules, even in metallic 2D materials. In this study, 2D Mo 2 C was synthesized by CVD, and MoOx/Mo 2 C, MoS 2 /Mo 2 C, and MoSe 2 /Mo 2 C heterostructures were fabricated through thermal oxidation, plasma‐assisted sulfurization, and selenization, respectively. The MoS 2 and MoSe 2 top layers were phase‐engineered into 1T‐rich and 2H‐rich structures at 350°C and 550°C, respectively, under the same plasma power of 150 W. The heterostructures exhibit improved SERS activity, mainly due to chemical enhancement (CM) arising from increased surface roughness, defect/edge‐rich nanostructures, and heterointerfaces that provide abundant localized chemically active sites for molecular adsorption and interfacial charge transfer. The 1T‐rich MoS 2 /Mo 2 C shows a detection limit of up to 10 −10 M and a Raman enhancement factor of 9.1 × 10 4 , while the 1T‐rich MoSe 2 /Mo 2 C displays a detection limit of up to 10 −9 M and a Raman enhancement factor of 8.9 × 10 4 for rhodamine B (RhB), attributed to the presence of a high density of states and localized chemically active sites on the 1T‐rich MoS 2 and MoSe 2 surfaces.

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Publication Details

Journal
Advanced Materials
Published
2026-09-09
DOI
https://doi.org/10.1002/adma.74835
Primary Topic
Gold and Silver Nanoparticles Synthesis and Applications
Type
article
Field-Weighted Citation Impact
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article

Plasmon‐Free Surface‐Enhanced Raman Sensing Enabled by Phase‐Engineered Two‐Dimensional Mo 2 C‐Based Heterostructures

Yuqi Huang, Yu‐Lun Chueh, Tzu-Hsuan Lin, Sumayah Shakil Wani et al.
Advanced Materials
Gold and Silver Nanoparticles Synthesis and Applications
article

Plasmon‐Free Surface‐Enhanced Raman Sensing Enabled by Phase‐Engineered Two‐Dimensional Mo 2 C‐Based Heterostructures

Yuqi Huang, Yu‐Lun Chueh, Tzu-Hsuan Lin, Sumayah Shakil Wani, K.M.M.D.K. Kimbulapitiya, Tzu‐Wen Kuo, Feng‐Chuan Chuang, Bushra Rehman, Po‐Chien La, Chia‐Chen Chung, Sujith Lakshan Cooray, R. J. G. L. R. Kumara
article en

Abstract

ABSTRACT Plasmon‐free surface‐enhanced Raman scattering (SERS) based on two‐dimensional materials is a promising approach for nondestructive analysis. However, the smooth surfaces commonly formed during chemical vapor deposition (CVD) limit the generation of localized high electromagnetic fields and reduce chemical interactions with adsorbed molecules, even in metallic 2D materials. In this study, 2D Mo 2 C was synthesized by CVD, and MoOx/Mo 2 C, MoS 2 /Mo 2 C, and MoSe 2 /Mo 2 C heterostructures were fabricated through thermal oxidation, plasma‐assisted sulfurization, and selenization, respectively. The MoS 2 and MoSe 2 top layers were phase‐engineered into 1T‐rich and 2H‐rich structures at 350°C and 550°C, respectively, under the same plasma power of 150 W. The heterostructures exhibit improved SERS activity, mainly due to chemical enhancement (CM) arising from increased surface roughness, defect/edge‐rich nanostructures, and heterointerfaces that provide abundant localized chemically active sites for molecular adsorption and interfacial charge transfer. The 1T‐rich MoS 2 /Mo 2 C shows a detection limit of up to 10 −10 M and a Raman enhancement factor of 9.1 × 10 4 , while the 1T‐rich MoSe 2 /Mo 2 C displays a detection limit of up to 10 −9 M and a Raman enhancement factor of 8.9 × 10 4 for rhodamine B (RhB), attributed to the presence of a high density of states and localized chemically active sites on the 1T‐rich MoS 2 and MoSe 2 surfaces.

Advanced Materials
National Sun Yat-sen University (TW), Korea University (KR), National Tsing Hua University (TW), National Center for Theoretical Sciences (TW)
Openalex Percentile: Top 27%
Gold and Silver Nanoparticles Synthesis and Applications
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