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Communications Engineering· 2026Q1

Electronics-free, ultra-low-power, wearable sensor chip for high-frequency electromagnetic field detection

Abdul Mohizin, Léon Abelmann, Baeckkyoung Sung

Short summary

A novel, electronics-free liquid crystal (LC) microdevice detects high-frequency electromagnetic fields (EMFs) using only ambient light and a magnetothermal mechanism, visible to the naked eye.

AI-generated from the title and abstract; the full text is not read.

Key points

  • Developed an electronics-free, ultra-low-power wearable sensor chip for high-frequency EMF detection.
  • The sensor utilizes a magnetically hybridized liquid crystal (LC) microdevice with embedded ferromagnetic wires.
  • It operates via a magnetothermal mechanism, responding to EMFs with an optical signal visible to the naked eye.
  • The device requires no external power supply, functioning solely on ambient light.

AI-generated from the title and abstract; the full text is not read.

Abstract

High-frequency electromagnetic fields (EMFs) are increasingly recognized either as environmental risk factors or as tools for electromagnetic attacks, which are difficult to detect in situ. Existing high-frequency EMF sensors face significant limitations related to structural simplicity, integration with mobile technology, and low energy consumption. To address these challenges, we propose a novel sensor concept based on a magnetically hybridized liquid crystal (LC) microdevice. The hybrid LC chip is designed to exhibit an optical response to external radio-frequency fields without the need for electronic components or an external power supply, relying solely on ambient light. Both sides of the chip are covered with polymer-based crossed polarizer films. The chip is filled with flexible matrices containing thermotropic LCs, such as the rod-like 4-cyano-4'-pentylbiphenyl, into which a network of thin ferromagnetic wires is embedded. The resulting field-responsive LC microdisplay operates via a simple magnetothermal mechanism, and its optical response is sufficiently strong to be visible to the naked eye.

The authors' abstract, as published at the source. Communications Engineering, 2026 · DOI ↗

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Field: Electronic, Optical and Magnetic Materials

Electronic, Optical and Magnetic MaterialsMaterials Science