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Breaking bandwidth limit: All-medium metamaterial absorber engineered from heterostructure-anchored N-doped hollow carbon spheres

  • Jie Sui
  • , Jiaxuan Zhang
  • , Kemeng Yan
  • , Jiayi Guo
  • , Shuang Li
  • , Jiaxin Liu
  • , Jiangni Yun
  • , Peng Kang
  • , Yuhui Ren*
  • , Han Zhang
  • , Lei Zhang
  • , Ruiyong Chen
  • , Wenzhe Wu
  • , Junfeng Yan*
  • *Corresponding author for this work
  • Northwest University China
  • Beihang University
  • Shaanxi Applied Physics-Chemistry Research Institute
  • University of Liverpool
  • Shaanxi International Joint Research Centre for the Battery-Free Internet of Things

Research output: Contribution to journalArticlepeer-review

Abstract

The composition and structural characteristics of materials significantly influence their ability to absorb electromagnetic waves (EMW). In this research, iron-based heterostructure particles were effectively attached to N-doped hollow carbon spheres (NHCS) through straightforward electrostatic assembly and heat treatment processes, creating a novel composite material (denoted as NHCS@Fe/Fe₃O₄). For samples treated at different annealing temperatures, we use suffixes (e.g., NHCS@Fe/Fe₃O₄-700) to distinguish the specific conditions. This method notably improves the impedance matching characteristics of the as-prepared composites so as to enhance theirs EMW absorption capacity. The effect of NHCS diameter on EMW absorption performance was systematically investigated, and the product, NHCS@Fe/Fe₃O₄-700, with a diameter of 200 nm, exhibited exceptional EMW absorption properties, achieving a minimum reflection loss (RL) of −55.06 dB at 15.12 GHz and an effective absorption bandwidth (EAB) of 6.59 GHz at a matching thickness of 2.37 mm. Additionally, density functional theory (DFT) calculations were conducted to study the electronic properties and polarization behaviors within the NHCS. And an all-medium metamaterial absorber, made up of multi-layered open-ring configuration, was realized through CST simulations, successfully expanding the effective absorption frequency range. Radar cross-section (RCS) simulations further confirmed the application potential of as-prepared composite in real-world. This investigation provides a meaningful perspective and paves a fast route for developing high-performance EMW absorption materials.

Original languageEnglish
Article number169301
JournalChemical Engineering Journal
Volume524
DOIs
StatePublished - 15 Nov 2025

Keywords

  • Electromagnetic waves absorption
  • Heterostructure
  • Impedance matching
  • N-doped hollow carbon spheres

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