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Coupled metal-node and chalcogen modulation in pristine 2D conjugated MOFs for carbonization-free electromagnetic wave absorption

  • Xuexiang Li
  • , Guangyang Li
  • , Shengchong Hui
  • , Menlong Zhu
  • , Yang Zhang
  • , Hongjing Wu
  • Northwestern Polytechnical University Xian

Research output: Contribution to journalArticlepeer-review

Abstract

Electromagnetic interference (EMI) generated by densely deployed wireless electronics calls for lightweight absorbers that can simultaneously deliver strong attenuation and good impedance matching over broad frequency windows. Metal-organic frameworks (MOFs) are structurally programmable, yet most high-performance MOF absorbers rely on high-temperature carbonization, which obscures the intrinsic structure-property relationship of pristine frameworks. Here we propose a carbonization-free strategy using two-dimensional conjugated MOFs (2D c-MOFs) in which both the metal nodes (M = Cu, Zn, Co, Ni) and chalcogen functionalities (X = S, Se) are jointly engineered within an isostructural M-XHHTP family. The resulting materials form extended, electrically percolative frameworks with abundant polarization sites, facilitating an improved balance between dielectric loss and impedance matching. Among the series, Cu-Se3HHTP exhibits the best microwave-absorption performance, delivering a minimum reflection loss (RLmin) of −24.20 dB at 80 wt% loading and achieving a maximum effective absorption bandwidth (RL < −10 dB) of 6.08 GHz (matched thickness 2.11 mm). Notably, the absorption can be shifted toward low-frequency operation, and Cu-Se3HHTP shows an RLmin of −24.20 dB in the 4–6 GHz at a thickness of 5.0 mm. This work demonstrates pristine 2D c-MOFs as efficient, tunable electromagnetic wave (EMW) absorbers and provides a design guideline for triphenylene-based frameworks via coupled metal-node/chalcogen modulation.

Original languageEnglish
Article number179375
JournalChemical Engineering Journal
Volume545
DOIs
StatePublished - 1 Oct 2026

Keywords

  • Carbonization-free strategy
  • Chalcogen modulation
  • Electromagnetic wave absorption
  • Impedance matching
  • Isostructural modulation
  • Polarization loss
  • Triphenylene-based framework
  • Two-dimensional conjugated MOFs

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