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Updated: Jan 16, 2026

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Percolation-Driven Optimization of MWCNT/CoMn2O4/PVA Metacomposites for Electromagnetic Wave Absorption and
Reza Gholipur1, Haider Al-Luhaibi1
1Department of Physics, Faculty of Science, Razi University, Kermanshah 6714115111, Iran.
Abstract:
The escalating demand for multifunctional nanomaterials in electromagnetic interference (EMI) mitigation and optoelectronic applications has highlighted the need for materials with optimized electromagnetic absorption and tailored surface properties. A significant challenge is enhancing electromagnetic wave absorption while controlling interfacial wettability to enable practical deployment in diverse environments. This study addresses these issues by synthesizing MWCNT/CoMn2O4/PVA metacomposites (MCP1-MCP5) with MWCNT weight fractions from 0.011 to 0.166 using in situ polymerization, followed by characterization via FESEM, BET/BJH, and electromagnetic testing (0-100 MHz). Results demonstrate that MCP3 (0.044 MWCNT) achieves the lowest reflection loss (∼-32.908 dB at 10 MHz, 1 mm thickness) 78 and a contact angle of ∼39°, indicating moderate wettability. MCP5 (0.166 MWCNT) exhibits an AC conductivity of 8.8 × 10-3 at 100 MHz, enhancing absorption through improved conductive losses. These findings reveal percolation-driven tunability, positioning these metacomposites as promising candidates for EMI absorption and surface-engineered optoelectronic applications.
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