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Related Concept Videos

Magnetic Field Due to Two Straight Wires01:18

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Updated: Aug 11, 2025

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A flexible 8.5 MHz litz wire receive array for field-cycling imaging.

Robert S Stormont1,2, Gareth R Davies1, P James Ross1

  • 1Aberdeen Biomedical Imaging Centre, School of Medicine, Medical Sciences & Nutrition, University of Aberdeen, Aberdeen AB25 2ZD, United Kingdom.

Physics in Medicine and Biology
|February 7, 2023
PubMed
Summary

This study developed a flexible, 6-channel low-frequency MRI array coil to improve signal-to-noise ratio (SNR) by minimizing losses. The optimized coil design and electronics enable adaptable imaging for diverse anatomies in field-cycling MRI studies.

Keywords:
RF Coilarrayflexiblelitzlow-fieldnoise figuresignal-to-noise

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Area of Science:

  • Magnetic Resonance Imaging (MRI)
  • Coil Design and Optimization
  • Low-Frequency Applications

Background:

  • Low-frequency coils face significant signal-to-noise ratio (SNR) degradation due to loop and component losses.
  • Minimizing these losses is crucial for effective low-field MRI, where SNR is often a limiting factor.
  • Array coils offer potential for enhanced SNR, coverage, and imaging speed if inter-loop interactions are managed.

Purpose of the Study:

  • To investigate methods for characterizing and preserving SNR in a low-frequency coil array.
  • To develop a geometrically conforming array coil for rapid, no-tune application across various anatomies.
  • To optimize low-noise preamplifiers and interfacing electronics for a 6-channel flex array coil.

Main Methods:

  • Construction and loss characterization of single and multi-turn litz wire loops (16.2 cm diameter).
  • Acquisition and characterization of low-noise preamplifiers and development of interfacing electronics.
  • Implementation of a bench-level SNR test to evaluate tuning and loading effects on individual coils.

Main Results:

  • Ultra-fine strand litz wire demonstrated lower losses and provided necessary mechanical flexibility compared to solid wire.
  • Single-turn loops showed dominant losses, while 2 and 3-turn loops exhibited body loss dominance under specific loading.
  • A 6-channel flex array coil (3 anterior, 3 posterior) was constructed, conforming to anatomies and yielding consistent volunteer study results.

Conclusions:

  • Body loss dominance was achieved with 16.2 cm loops at 8.5 MHz, demonstrating optimized SNR preservation.
  • Low-noise interfacing electronics were developed and tested, characterizing SNR penalties related to tuning and loading.
  • The resulting flexible 6-channel array coil supports field-cycling MRI studies requiring adaptable and quickly deployable coils.