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Related Concept Videos

Mesh Analysis for AC Circuits01:12

Mesh Analysis for AC Circuits

In the domain of radio communication, the significance of impedance matching must be considered. It is crucial to ensure the efficient transmission of signals between radio transmitters and receivers. Achieving this balance involves using impedance-matching circuits, with one fundamental configuration comprising a resistor, capacitor, and inductor.
The process of harmonizing these impedances begins with a clear understanding of the input and output signals. Once these signals are known, the...

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Scalable Solution-processed Fabrication Strategy for High-performance, Flexible, Transparent Electrodes with Embedded Metal Mesh
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Conformal, transparent, and efficient MXene grid antennas for flexible wireless electronics.

Hengpei Su1, Qiang Xiao2, Rui Jia1

  • 1College of Materials Science & Engineering, Sichuan University, Chengdu, Sichuan 610065, China.

Science Advances
|June 12, 2026
PubMed
Summary

Researchers developed the first Ti3C2Tx MXene transparent conductive film (TCF) antenna. This breakthrough merges conformal transparency and high electromagnetic performance for next-generation imperceptible Internet of Things (IoT) wireless systems.

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Area of Science:

  • Materials Science
  • Electrical Engineering
  • Nanotechnology

Background:

  • Next-generation Internet of Things (IoT) wireless electronics demand antennas that are conformal, transparent, and electromagnetically efficient.
  • Achieving all three attributes simultaneously presents a significant challenge, often referred to as an 'impossible trinity'.

Purpose of the Study:

  • To realize the first Ti3C2Tx MXene-based conformal, transparent, and high-performance antenna.
  • To demonstrate the versatility of MXene transparent conductive films (TCFs) in various IoT applications.

Main Methods:

  • An optimized nanoimprint lithography-blading technique was employed to create MXene grid TCFs.
  • The performance of the MXene TCF was evaluated based on sheet resistance, transmittance, and flexibility.
  • Two representative IoT scenarios were used to demonstrate the antenna's functionality: a wireless wearable device and a digital coding metasurface.

Main Results:

  • The nanoimprinted MXene grid TCF achieved a low sheet resistance of 4.32 ohms per square with high transmittance (~89.1%) and flexibility.
  • A quasi-transparent wireless wearable device using an MXene transparent dipole antenna enabled long-distance communication (>30 meters).
  • An MXene-based digital coding metasurface maintained high-quality wireless communication with a low bit error rate (~0.15%) even when curved.

Conclusions:

  • Ti3C2Tx MXene serves as a versatile platform for merging conformal transparency and high electromagnetic performance.
  • This technology paves the way for next-generation imperceptible IoT wireless systems.
  • The developed MXene TCF technology addresses the 'impossible trinity' challenge in antenna design.