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Research Article | Open Access

Non-woven fabrics of columnar-cactus-like MXene@rGO fibers with efficient electromagnetic absorption

Zonglin Liu1 Huanxin Lian1Fuhua Xue1 ( )Han Li1Xu Zhao1 Qian Yan1He Chen1Yunxiang Chen1Teng Fei1Haowen Zheng1Liangliang Xu1Qingyu Peng1,2 ( )Xiaodong He1
National Key Laboratory of Science and Technology on Advanced Composites in Special Environments, Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin 150080, China
Suzhou Research Institute of HIT, Suzhou 215104, China
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Abstract

The escalating demand for electromagnetic protection against increasingly severe electromagnetic pollution is making the development of advanced electromagnetic wave absorbing material systems imperative. MXene-based electromagnetic wave absorbing fillers demonstrate advantages of lightweight and high efficiency. However, their microscale dimensions hinder the formation of interconnected networks within matrices, resulting in limited electromagnetic (EM) loss mechanisms and narrow effective absorption bandwidths. Herein, we employ wet spinning combined with molten salt-assisted in-situ synthesis to fabricate MAX@rGO (rGMAXn) fibrous absorbers featuring a hierarchical structure of “columnar cactus covered with MAX spheres”. Precise regulation of MAX phase content enables controlled tuning of the electromagnetic properties of rGMAXn fibers. Moreover, subsequent in-situ etching further enhances their EM performance, yielding MXene@rGO (rGMXn) fibers with a hierarchical structure of “columnar cactus decorated with MXene nanosheet clusters”. Freeze-drying is utilized to modulate fiber filling content, and fibrous felts with conductive networks are obtained, which exhibit excellent electromagnetic wave absorption performance. Among them, the as-prepared rGMX10 fibrous felt exhibits good electromagnetic wave absorption performance at a low filling content (10 wt.%) with the RLmax of 54.4 dB and an effective absorption bandwidth of 5.31 GHz. This enhancement originates from improved impedance matching characteristics through fiber-interconnected networks and multiple electromagnetic loss mechanisms enabled by the hierarchical structure. The strategy of in-situ growing hierarchical MXene@rGO fibers establishes a novel approach for developing MXene-based fibrous absorbing materials.

Graphical Abstract

Hierarchical rGMAXn/rGMXn fibrous felts with bioinspired “columnar cactus” structures via molten salt-assisted synthesis and in-situ etching, achieve breakthrough electromagnetic wave absorption (EMA) performance (RL > 54.4 dB, EAB > 5.31 GHz at 10 wt.%) by precisely regulating MXene content and fiber filling content to optimize conductive networks and multi-scale loss mechanisms. The cross-scale design overcomes the efficiency-bandwidth trade-off in MXene absorbers and establishes a new paradigm for lightweight electromagnetic protection in aerospace and wearable electronics.

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Nano Research
Article number: 94908053

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Cite this article:
Liu Z, Lian H, Xue F, et al. Non-woven fabrics of columnar-cactus-like MXene@rGO fibers with efficient electromagnetic absorption. Nano Research, 2026, 19(1): 94908053. https://doi.org/10.26599/NR.2025.94908053
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Received: 19 August 2025
Revised: 07 September 2025
Accepted: 08 September 2025
Published: 31 December 2025
© The Author(s) 2026. Published by Tsinghua University Press.

This is an open access article under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0, https://creativecommons.org/licenses/by/4.0/).