Anomalous Microwave Absorption Hysteresis in Ultrathin MXene Films with Confined Water

Abstract MXenes, a family of two-dimensional (2D) transition-metal carbides, nitrides, and carbonitrides, are promising materials for electromagnetic interference (EMI) shielding due to their electronic conductivity, tunable surface functionalization, and adjustable interlayer spacing. In many practical environments, MXene films host water molecules between the carbide or nitride nanosheets. However, the influence of confined water on their microwave absorption remains unclear. Here, we investigate the role of water confinement in governing microwave absorption in Ti3C2Tx MXene films. In situ humidity-dependent measurements reveal that protonated films exhibit a 56% increase in absorption even without measurable changes in interlayer spacing. In contrast, Li+-intercalated films, which undergo interlayer swelling upon water uptake, show a 167% increase in absorption. The observed enhancement in microwave absorption upon water uptake is approximately 4 orders of magnitude larger than what would be expected from the increase in bulk water content alone. These changes indicate that water confined within MXene films produces microwave absorption behavior, unlike that of conventional microwave shielding materials where impedance matching is achieved by varying material thickness. The results clarify the role of confined water in EMI absorption in MXenes and indicate that water confinement can serve as a tunable parameter for engineering high-performance EMI shielding materials.

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Publication Details

Journal
ACS Nano
Published
2026-09-24
DOI
https://doi.org/10.1021/acsnano.6c07970
Primary Topic
Electromagnetic wave absorption materials
Type
article
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article

Anomalous Microwave Absorption Hysteresis in Ultrathin MXene Films with Confined Water

Yuan Zhang, Yury G. Gogotsi, Teng Zhang, Changhoon Park et al.
ACS Nano
Electromagnetic wave absorption materials
article

Anomalous Microwave Absorption Hysteresis in Ultrathin MXene Films with Confined Water

Yuan Zhang, Yury G. Gogotsi, Teng Zhang, Changhoon Park, Jongyoun Kim, Gary Friedman, Jamal Al Hourani, James FitzPatrick
article en

Abstract

Abstract MXenes, a family of two-dimensional (2D) transition-metal carbides, nitrides, and carbonitrides, are promising materials for electromagnetic interference (EMI) shielding due to their electronic conductivity, tunable surface functionalization, and adjustable interlayer spacing. In many practical environments, MXene films host water molecules between the carbide or nitride nanosheets. However, the influence of confined water on their microwave absorption remains unclear. Here, we investigate the role of water confinement in governing microwave absorption in Ti3C2Tx MXene films. In situ humidity-dependent measurements reveal that protonated films exhibit a 56% increase in absorption even without measurable changes in interlayer spacing. In contrast, Li+-intercalated films, which undergo interlayer swelling upon water uptake, show a 167% increase in absorption. The observed enhancement in microwave absorption upon water uptake is approximately 4 orders of magnitude larger than what would be expected from the increase in bulk water content alone. These changes indicate that water confined within MXene films produces microwave absorption behavior, unlike that of conventional microwave shielding materials where impedance matching is achieved by varying material thickness. The results clarify the role of confined water in EMI absorption in MXenes and indicate that water confinement can serve as a tunable parameter for engineering high-performance EMI shielding materials.

ACS Nano
Drexel University (US)
Clean water and sanitation
Openalex Percentile: Top 29%
Electromagnetic wave absorption materials
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Anomalous Microwave Absorption Hysteresis in Ultrathin MXene Films with Confined Water — Yuan Zhang, Yury G. Gogotsi, et al. · ACS Nano (2026) | TGRS Research Map | TGRS