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April 26, 2026Advanced Functional Materials14 citations

Synergistic Polarization Relaxation in Multi‐Level Hybridization and Preferred Orientation Strategies for Electromagnetic Wave Absorption

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SXShuang XuZJZirui JiaDLDi Lan

Key Points

  • This work aims to control electromagnetic response through hybridization and orientation strategies in materials.
  • Prepared CoSe2/Ni3Se2/CeSe1.9/CNFs composite via multi-step hydrothermal-selenization method.
  • Utilized multi-level hybridization and preferred orientation strategies for material structuring.
  • Achieved minimum reflection loss of -62.5 dB at 2.9 mm thickness.
  • Obtained an effective absorption bandwidth of 8.3 GHz.

Abstract

ABSTRACT Achieving precise control over the electromagnetic response of materials across multiple length scales from atomic to mesoscopic via multi‐level hybridization and preferred orientation strategies remains a central challenge in the development of high‐performance electromagnetic wave (EMW) absorbers. This work successfully prepared a CoSe 2 /Ni 3 Se 2 /CeSe 1.9 /CNFs (CNCS) composite with a multi‐level hybrid structure via a multi‐step hydrothermal‐selenization method. The core innovation lies in the synergistic application of “Multi‐level Hybridization” and “Preferred Orientation” strategies, enabling precise regulation of the material ’ s structure and composition across atomic, molecular, and mesoscopic scales, thereby constructing an efficient multi‐scale collaborative loss network. Consequently, the obtained material exhibits an exceptional minimum reflection loss (RL min ) of −62.5 dB at a matching thickness of merely 2.9 mm, along with an effective absorption bandwidth (EAB) of 8.3 GHz. This study not only proposes a novel material design paradigm utilizing cross‐scale structural engineering to synergistically regulate multiple loss mechanisms but also provides significant theoretical guidance and design principles for developing next‐generation high‐performance electromagnetic functional materials.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/69edad274a46254e215b4c5ehttps://doi.org/10.1002/adfm.75567
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