Effect of MXene Surface Structures on the Absorption Component in Reflection‐Dominated Electromagnetic Interference Shielding

ABSTRACT MXene nanoflakes have attracted significant attention due to their outstanding electromagnetic interference (EMI) shielding effectiveness ( SE ). However, understanding the relationship between shielding performance and complex surface microstructures of MXene nanoflakes remains challenging. In this study, flexible selfstanding Ti 3 C 2 T x films were synthesized under various preparation conditions, achieving an ultrahigh EMI shielding effectiveness exceeding 70 dB. The morphology and microstructure were characterized using scanning electron microscopy (SEM), high‐resolution transmission electron microscopy (HRTEM), synchrotron radiation X‐ray diffraction (SR‐XRD), X‐ray absorption fine structure spectroscopy (XAFS), and X‐ray photoelectron spectroscopy (XPS). Based on the layered structure of MXene and the nearest‐ and next‐nearest‐neighbor coordination numbers around Ti atoms, an XAFS‐based model was developed to estimate the surface Ti‐vacancy rate ( p ) and average surface T x ‐termination number ( m ). The results reveal that the shielding performance is jointly influenced by p and m through nonlinear coupling, with m exerting a more pronounced influence. Furthermore, the correlations among EMI absorption shielding performance, electrical conductivity, attenuation constant, surface structural parameters, and synthesis conditions were systematically analyzed, and the mechanism by which the surface structures affect the absorption shielding effectiveness was briefly discussed. We anticipate that this work will contribute to the surface engineering and optimization of advanced MXene‐based shielding materials.

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Publication Details

Journal
Small Methods
Published
2026-10-06
DOI
https://doi.org/10.1002/smtd.71084
Primary Topic
Electromagnetic wave absorption materials
Type
article
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article

Effect of MXene Surface Structures on the Absorption Component in Reflection‐Dominated Electromagnetic Interference Shielding

Guang Mo, Mengmeng Wang, Chengkai Bao, Xueqing Xing et al.
Small Methods
Electromagnetic wave absorption materials
article

Effect of MXene Surface Structures on the Absorption Component in Reflection‐Dominated Electromagnetic Interference Shielding

Guang Mo, Mengmeng Wang, Chengkai Bao, Xueqing Xing, Zhonghua Wu, Yunpeng Liu, Ké Li, Haiying Wang, L.H. Dai, Shuming Zhou, Zhongjun Chen, 谭园园, Yifang Song, Yunpeng Liu
article en

Abstract

ABSTRACT MXene nanoflakes have attracted significant attention due to their outstanding electromagnetic interference (EMI) shielding effectiveness ( SE ). However, understanding the relationship between shielding performance and complex surface microstructures of MXene nanoflakes remains challenging. In this study, flexible selfstanding Ti 3 C 2 T x films were synthesized under various preparation conditions, achieving an ultrahigh EMI shielding effectiveness exceeding 70 dB. The morphology and microstructure were characterized using scanning electron microscopy (SEM), high‐resolution transmission electron microscopy (HRTEM), synchrotron radiation X‐ray diffraction (SR‐XRD), X‐ray absorption fine structure spectroscopy (XAFS), and X‐ray photoelectron spectroscopy (XPS). Based on the layered structure of MXene and the nearest‐ and next‐nearest‐neighbor coordination numbers around Ti atoms, an XAFS‐based model was developed to estimate the surface Ti‐vacancy rate ( p ) and average surface T x ‐termination number ( m ). The results reveal that the shielding performance is jointly influenced by p and m through nonlinear coupling, with m exerting a more pronounced influence. Furthermore, the correlations among EMI absorption shielding performance, electrical conductivity, attenuation constant, surface structural parameters, and synthesis conditions were systematically analyzed, and the mechanism by which the surface structures affect the absorption shielding effectiveness was briefly discussed. We anticipate that this work will contribute to the surface engineering and optimization of advanced MXene‐based shielding materials.

Small Methods
Beijing Institute of Technology (CN), Chinese Academy of Sciences (CN), Institute of High Energy Physics (CN), Hubei Engineering University (CN), Institute of Mechanics (CN), University of Chinese Academy of Sciences (CN), State Key Laboratory of Nonlinear Mechanics
Openalex Percentile: Top 31%
Electromagnetic wave absorption materials
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