Design and validation of a mechanically flexible and ultra-lightweight high-density diffuse optical tomography system

Hubin Zhao1,2, Elisabetta M Frijia1, Ernesto Vidal Rosas1

  • 1University College London, DOT-HUB, Department of Medical Physics and Biomedical Engineering, Biomedical Optics Research Laboratory, London, United Kingdom.

Neurophotonics
|March 29, 2021
PubMed

Insights

Researchers developed an ultra-lightweight, flexible high-density diffuse optical tomography (HD-DOT) system for neonatal brain imaging. This cot-side technology offers improved practicality and effectiveness for monitoring vulnerable infants.

Area of Science:

  • Biomedical Engineering
  • Medical Imaging
  • Neuroscience

Background:

  • Neonates are highly vulnerable to brain injury, with critical risks in the early postnatal period.
  • Existing functional neuroimaging technologies are difficult to use for repeated, long-duration cot-side monitoring.
  • Improved understanding of perinatal neurological injury requires accessible, longitudinal neuroimaging at the bedside.

Purpose of the Study:

  • To develop a modular, high-density diffuse optical tomography (HD-DOT) system tailored for neonatal applications.
  • To create an ultra-lightweight, low-profile, and mechanically flexible device for cot-side use.
  • To validate the system's imaging performance using an anatomically accurate dynamic phantom.

Main Methods:

  • Utilized advanced 10-layer rigid-flexible printed circuit board technology for compact and flexible DOT modules.
  • Implemented dual-hexagon and triple-hexagon module layouts with board-to-board connectors for versatile configurations.
  • Constructed an electrically switchable, anatomically accurate dynamic phantom using epoxy resin, thermochromic dyes, and 3D-printed molds.

Main Results:

  • A sensorimotor system configuration achieved 36 sources, 48 detectors, and over 700 DOT channels per wavelength.
  • The system weighs only 70g and can conform to the infant scalp.
  • Phantom validation showed a 3-6 mm cortical localization error and 10-12 mm lateral resolution.

Conclusions:

  • The developed HD-DOT system is ultra-lightweight, low-profile, flexible, and offers excellent imaging performance.
  • This technology significantly enhances the practicality and effectiveness of neonatal functional neuroimaging at the cot-side.
  • It holds promise for improving the understanding and management of neurological conditions in newborns.

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