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December 6, 2025ACS Applied Materials & Interfaces6 citations

3D-Printed Multifunctional Hydrogel for Integrated Electromagnetic Interference Shielding, Infrared Stealth, and Wearable Sensing

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JHJianshe HaoSHSong HuDLDi Liu

Key Points

  • EMI shielding efficiency reached 34.5 dB in the X-band, indicating superior performance compared to typical materials.
  • The hydrogel, synthesized with an ionic liquid, demonstrates high strain sensitivity with a gauge factor of 5.282 across significant strain levels.
  • Fabrication employed vat photopolymerization, enabling tailored electromagnetic wave dissipation and infrared thermal suppression.
  • The versatile material offers integrated functionality for wearable devices, showcasing potential in next-generation sensor design.

Abstract

The growing demand for wearable electronics and infrared stealth technologies has highlighted the limitations of traditional electromagnetic interference (EMI) shielding materials, which often lack flexibility, lightweight design, and multifunctional integration. Although hydrogels present a promising platform due to their flexibility, adhesion, and sensing capabilities, the integration of multiple functions into a single material system through a straightforward fabrication process remains challenging. In this study, we developed a one-pot synthesized multifunctional ANE hydrogel that incorporates an ionic liquid (EBIB) as a conductive medium. Unlike conventional conductive fillers, such as silver nanowires or MXene, EBIB enhances both conductivity and interfacial polarization, achieving an EMI shielding efficiency of 34.5 dB in the X-band, surpassing many reported polymer-based shields. By combining this with vat photopolymerization 3D printing, we fabricated tailored topological structures that promote electromagnetic wave dissipation and suppress infrared thermal transmission. The hydrogel demonstrates effective infrared stealth, maintaining a low temperature increase of 24 °C on a 100 °C hot stage for 20 min, outperforming typical nonporous hydrogel coatings. Furthermore, the material exhibits strong adhesion, high strain sensitivity (gauge factor = 5.282 over 150-300% strain), fast response (165 ms), and cycling stability, exceeding the performance of many existing ionic hydrogels in motion sensing. By integration of EMI shielding, infrared camouflage, and wearable sensing in a single 3D-printable system, this study offers a competitive material solution for next-generation multifunctional sensors.

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Cite This Study

Hao et al. (2025) studied this question.

synapsesocial.com/papers/6940223b2d562116f28fb804https://doi.org/10.1021/acsami.5c20335
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Stomata‐Inspired Intelligent High‐Performance Hydrogel With on‐Demand Gateable Electromagnetic‐Interference Shielding2025
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  3. 3Multifunctional MXene/PEDOT:PSS-Based Phase Change Organohydrogels for Electromagnetic Interference Shielding and Medium-Low Temperature Infrared Stealth2024 · 23 citations
  4. 4Robust PAM/HACC dual-network hydrogel with hydroxylated carbon nanotubes for strain sensing and electromagnetic interference shielding2026
  5. 5An Environmentally Stable, Adhesive MXene/Urushiol Dual-Network Hydrogel for Multifunctional Sensing and Electromagnetic Shielding Applications2026