Lightweight MXene@Kapok Pulp/Nanofiber Composite Material for Electromagnetic Interference Shielding, Low Frequency Sound Absorption, and Thermal Insulation

To meet the urgent demands for resource conservation, environmental protection and low emissions in the process of sustainable development, this study combines MXene with alkaline-treated hollow kapok fiber and integrates it onto a polyacrylonitrile (PAN) nanofiber mesh through vacuum filtration, successfully preparing a lightweight GO/MXene@NaOH-treated kapok fiber/PAN (GMKNP) composite material. Utilizing the natural hollow structure of kapok fibers and the gaps of the PAN nanofiber mesh as reflection units and thermal insulation units, while using the PAN nanofiber network as the mechanical support framework, through interfacial self-assembly, a multi-level pore structure is formed to achieve the synergistic integration of absorption-based electromagnetic shielding and low-frequency broadband sound absorption in a single biomass-based composite material. This layered porous structure enables the GMKNP to maintain a density of only 0.187 g/cm3, featuring an absorption-dominated shielding mechanism, where the absorption loss accounts for 78.4% of the total shielding effect, thereby effectively reducing secondary electromagnetic reflection. Its electromagnetic interference (EMI) shielding efficiency reaches 31.9 dB, effectively blocking electromagnetic radiation. The thermal conductivity of the material is only 0.09 W/(m·K), demonstrating excellent thermal management performance. Additionally, it shows a maximum sound absorption coefficient of 0.7 in the low-frequency range of 400-1600 Hz. This study provides a new multifunctional composite material design scheme with comprehensive sound, heat and electromagnetic protection capabilities for fields such as automotive cabins, aircraft interiors and green buildings.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-09-18
DOI
https://doi.org/10.1021/acsami.6c16998
Primary Topic
Electromagnetic wave absorption materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Lightweight MXene@Kapok Pulp/Nanofiber Composite Material for Electromagnetic Interference Shielding, Low Frequency Sound Absorption, and Thermal Insulation

Hongqiang Xu, Lihai Zhang, Wanli Han, Fangqing Ge et al.
ACS Applied Materials & Interfaces
Electromagnetic wave absorption materials
article

Lightweight MXene@Kapok Pulp/Nanofiber Composite Material for Electromagnetic Interference Shielding, Low Frequency Sound Absorption, and Thermal Insulation

Hongqiang Xu, Lihai Zhang, Wanli Han, Fangqing Ge, Enlong Yang, Dapeng Wang
article en

Abstract

To meet the urgent demands for resource conservation, environmental protection and low emissions in the process of sustainable development, this study combines MXene with alkaline-treated hollow kapok fiber and integrates it onto a polyacrylonitrile (PAN) nanofiber mesh through vacuum filtration, successfully preparing a lightweight GO/MXene@NaOH-treated kapok fiber/PAN (GMKNP) composite material. Utilizing the natural hollow structure of kapok fibers and the gaps of the PAN nanofiber mesh as reflection units and thermal insulation units, while using the PAN nanofiber network as the mechanical support framework, through interfacial self-assembly, a multi-level pore structure is formed to achieve the synergistic integration of absorption-based electromagnetic shielding and low-frequency broadband sound absorption in a single biomass-based composite material. This layered porous structure enables the GMKNP to maintain a density of only 0.187 g/cm3, featuring an absorption-dominated shielding mechanism, where the absorption loss accounts for 78.4% of the total shielding effect, thereby effectively reducing secondary electromagnetic reflection. Its electromagnetic interference (EMI) shielding efficiency reaches 31.9 dB, effectively blocking electromagnetic radiation. The thermal conductivity of the material is only 0.09 W/(m·K), demonstrating excellent thermal management performance. Additionally, it shows a maximum sound absorption coefficient of 0.7 in the low-frequency range of 400-1600 Hz. This study provides a new multifunctional composite material design scheme with comprehensive sound, heat and electromagnetic protection capabilities for fields such as automotive cabins, aircraft interiors and green buildings.

ACS Applied Materials & Interfaces
Jiaxing University (CN)
National Natural Science Foundation of China, Jiaxing University, Natural Science Foundation of Zhejiang Province, Science and Technology Program of Zhejiang Province
Responsible consumption and production
Openalex Percentile: Top 28%
Electromagnetic wave absorption materials
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