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April 3, 2026Advanced Materials9 citations

Cascaded Built‐In Electric Fields Engineering for Electromagnetic Wave Absorption

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JTJ.M. TaoPSPon Janani SugumaranYZY. Zhao

Key Points

  • The central aim is to explore how cascaded built-in electric fields enhance electromagnetic wave absorption without compromising impedance matching.
  • Synthesis of two core–shell hybrids (metal@oxide@carbon and metal@multiphase hybridized carbon)
  • Utilization of ultrasound-assisted galvanic replacement for liquid metal
  • Application of metal-organic framework coating and in situ pyrolysis
  • Programming of radial work function profiles into different shapes
  • The co-directional cascaded built-in electric fields achieve significant reflection loss of −58.81 dB
  • The absorption bandwidth reaches 6.39 GHz
  • Electric-field radiation is suppressed below 10%
  • The carbon shell increases π electrons, enhancing carrier excitation and mobility

Abstract

ABSTRACT Built‐in electric fields (BIEF) at heterointerfaces create non‐equilibrium energy gradients that amplify dielectric response without sacrificing impedance matching, improving electromagnetic wave absorption (EWA). However, in cascaded BIEF systems formed by morphology control and multiphase hybridization, the impacts of dipole orientation and band‐edge connectivity on dielectric attenuation remain unclear. Herein, we synthesize two core–shell hybrids (metal@oxide@carbon and metal@multiphase hybridized carbon), with phase complexity evolving from four to six, via ultrasound‐assisted galvanic replacement of liquid metal, metal‐organic framework coating, and in situ pyrolysis. By programming radial work function profiles into mountain‐shaped or monotonic staircase, the counter‐ and co‐directional cascaded BIEF were realized. The former suffers interface dipole vector cancellation, while the latter exhibits superposition, strengthening local fields and cross‐layer coupling to promote charge separation and interfacial relaxation. Additionally, the carbon shell narrows the bandgap and enriches π electrons, increasing carrier excitation and mobility to deliver a controlled rise in conductive loss. The co‐directional cascaded BIEF sample achieves impressive reflection loss (−58.81 dB) and bandwidth (6.39 GHz), and its EWA patch suppresses electric‐field radiation to below 10%. Overall, this work establishes a cascaded BIEF engineering paradigm, expanding the conceptual boundaries and application scope of BIEF‐driven EWA materials.

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Cite This Study

Tao et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e505a333a821460c940https://doi.org/10.1002/adma.202523404
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