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May 30, 2025

MXene offers exceptional high-frequency EMI shielding

Synthesis and characterizations of XSS MAX phases. Credit: Advanced Materials (2025). DOI: 10.1002/adma.202502443
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Synthesis and characterizations of XSS MAX phases. Credit: Advanced Materials (2025). DOI: 10.1002/adma.202502443

A research team has reported the successful synthesis of high-purity, tunable nitrogen (N)-substituted MAX precursors and the resultant MXene two-dimensional (2D) materials—a first in the world.

were published in Advanced Materials.

MXenes are a class of 2D nanomaterials, composed of alternating metal and carbon layers, renowned for their exceptional and versatile chemical design potential, earning them the label of "dream materials" for future applications.

Notably, MXenes have garnered attention as ultrathin, lightweight electromagnetic interference (EMI) shielding materials capable of blocking signals in the sub-terahertz (sub-THz) range. Unlike traditional metallic shields, which are heavy, prone to corrosion, and exhibit performance degradation at , MXenes offer superior high-frequency shielding while maintaining minimal thickness and weight.

Until now, most MXenes have been based on carbon (C). However, suggested that substituting N for C atoms could further enhance their physical and chemical properties.

Challenges in synthesis prevented realization, until this effort, jointly led by Professor Soon-Yong Kwon from the Graduate School of Semiconductor Materials and Devices Engineering, and Professors EunMi Choi and Gangil Byun from the Department of Electrical Engineering at UNIST, in collaboration with Professor Gun-Do Lee at Seoul National University, which successfully replaced portions of the carbon in MAX precursors with N, developed a novel titanium-based MAX precursor process, and produced MXene with record-high performance.

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Remarkably, the N-substituted MXene films, with a thickness of only one-tenth that of a (approximately 5–10 micrometers), demonstrate an electrical conductivity of 35,000 S/cm—the highest reported among MXene materials to date. This translates to exceptional EMI shielding capabilities.

The new process allows over the degree of N substitution from 0% to nearly 100%, while maintaining a single-crystal structure free of impurities. This tunability enables the fine adjustment of MXene's electromagnetic properties, optimizing electromagnetic wave reflection and absorption for various applications.

Professor Kwon stated, "N-substituted MXenes represent a groundbreaking advancement in next-generation electromagnetic shielding technology. They have the potential to significantly reduce electromagnetic interference across a wide range of fields—from and automotive or aerospace electronic systems to advanced communication infrastructure."

More information: Ju‐Hyoung Han et al, Ultrahigh Conductive MXene Films for Broadband Electromagnetic Interference Shielding, Advanced Materials (2025).

Journal information: Advanced Materials

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Nitrogen-substituted MXenes, synthesized from high-purity, tunable MAX precursors, exhibit record-high electrical conductivity of 35,000 S/cm and exceptional high-frequency electromagnetic interference (EMI) shielding at sub-THz ranges. The process enables precise N substitution (0–100%) while maintaining single-crystal purity, allowing fine-tuning of electromagnetic properties for advanced applications.

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