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Published on: May 11, 2014
Ultra-Wideband Magneto-Optic B-Field Sensor
Dong Ho Wu1, Aaron M Dougherty1
1Naval Research Laboratory, Washington, DC 20375, USA.
Sensors (Basel, Switzerland)
|August 13, 2026
Summary
This study introduces a novel magneto-optic B-field probe for non-intrusive magnetic field detection. This ultra-wideband sensor offers high dynamic range and vector-sensing capabilities for diverse applications.
Area of Science:
- Physics
- Electrical Engineering
- Materials Science
Background:
- Traditional magnetic field sensors often lack non-intrusive capabilities or ultra-wideband frequency response.
- Extreme dynamic range is a critical requirement for advanced magnetic field sensing applications.
Purpose of the Study:
- To develop a compact, non-intrusive magneto-optic B-field probe.
- To achieve ultra-wideband frequency response (DC to 2 GHz) with an extreme dynamic range exceeding 100 dB.
- To enable intrinsic vector-field sensing for magnetic field direction, amplitude, and phase.
Main Methods:
- Utilized magneto-optic materials for non-intrusive magnetic field detection.
- Designed a compact probe with a frequency bandwidth from DC to 2 GHz.
- Employed different magneto-optic materials to achieve a dynamic range significantly exceeding 100 dB.
Main Results:
- Demonstrated a magneto-optic B-field probe with negligible perturbation to the measured field.
- Achieved an ultra-wideband frequency response from DC to 2 GHz.
- Exceeded 100 dB dynamic range and provided intrinsic vector-field sensing capabilities.
Conclusions:
- The developed magneto-optic probe offers a unique combination of compactness, high sensitivity, room-temperature operation, and wide dynamic range.
- Its vector-sensing capability across a broad frequency range makes it suitable for RF/microwave testing, low-frequency applications, and biomedical uses.
- This technology represents a significant advancement in magnetic field sensing.

