<p>The escalating challenge of electromagnetic pollution drives the need for high-performance shielding materials. This study develops a lightweight, multifunctional composite by synthesizing a polypyrrole/carbon black (PPy/CB) matrix via in situ chemical oxidative polymerization and enhancing it with a nanostructured silver coating applied by chemical spray pyrolysis. A comprehensive characterization protocol, including FE-SEM, XRD, FT-IR, TGA, DSC, and UV–Vis spectroscopy, confirmed successful composite formation and revealed tailored material properties. The optimal composite (5 wt% CB with Ag coating) demonstrated a high electrical conductivity of 9.7 × 10⁻<sup>4</sup> S/cm and exceptional EMI shielding effectiveness, reaching − 45 dB in the X-band (8.2–12.4&#xa0;GHz) and − 40 dB in the C-band (4–8&#xa0;GHz), governed by a low skin depth that decreased with frequency. The material also exhibited a tunable optical band gap, reduced from 5.88&#xa0;eV to 5.79&#xa0;eV, and enhanced thermal stability, with a decomposition temperature increased to 717.43&#xa0;°C. With a uniform silver coating thickness of 246 ± 165&#xa0;nm, this composite integrates electrical, optical, and thermal functionalities, positioning it as a robust, multifunctional candidate for next-generation EMI shielding in advanced electronics and telecommunications.</p>

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Interplay of Optical, Thermal, and Electromagnetic Properties in a Silver-Coated Polypyrrole/Carbon Black Composite for C- and X-Band Shielding

  • Ali N. Obead,
  • Nadia A. Ali

摘要

The escalating challenge of electromagnetic pollution drives the need for high-performance shielding materials. This study develops a lightweight, multifunctional composite by synthesizing a polypyrrole/carbon black (PPy/CB) matrix via in situ chemical oxidative polymerization and enhancing it with a nanostructured silver coating applied by chemical spray pyrolysis. A comprehensive characterization protocol, including FE-SEM, XRD, FT-IR, TGA, DSC, and UV–Vis spectroscopy, confirmed successful composite formation and revealed tailored material properties. The optimal composite (5 wt% CB with Ag coating) demonstrated a high electrical conductivity of 9.7 × 10⁻4 S/cm and exceptional EMI shielding effectiveness, reaching − 45 dB in the X-band (8.2–12.4 GHz) and − 40 dB in the C-band (4–8 GHz), governed by a low skin depth that decreased with frequency. The material also exhibited a tunable optical band gap, reduced from 5.88 eV to 5.79 eV, and enhanced thermal stability, with a decomposition temperature increased to 717.43 °C. With a uniform silver coating thickness of 246 ± 165 nm, this composite integrates electrical, optical, and thermal functionalities, positioning it as a robust, multifunctional candidate for next-generation EMI shielding in advanced electronics and telecommunications.