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Liquid crystal electro-optical transducers for electrophysiology sensing applications
Amr Al Abed1, Yuan Wei1,2, Reem M Almasri1
1Graduate School of Biomedical Engineering, UNSW, Sydney, NSW 2052, Australia.
Journal of Neural Engineering
|October 10, 2022
Summary
This study introduces a novel optrode using liquid crystals to convert bioelectric signals into light, overcoming electronic limitations in electrophysiology. This innovation enables high-bandwidth optical interfaces for miniature neural and cardiac devices.
Area of Science:
- Biomedical Engineering
- Optoelectronics
- Neuroscience
Background:
- Electrophysiology traditionally uses electronic electrodes and wires for bioelectric signal sensing and transmission.
- Current electronic methods face limitations in bandwidth, signal conditioning, and channel count, especially for invasive or miniature devices.
Purpose of the Study:
- To demonstrate an alternative approach for sensing and transmitting electrophysiological signals using light instead of electronics.
- To develop a microscale, passive, fluorophore-free optrode based on liquid crystal birefringence.
Main Methods:
- Development of a microscale optrode utilizing the birefringence property of liquid crystals.
- Testing the optrode's linearity, relative responsivity, and bandwidth for electrophysiology signal transduction.
- Fabrication of multi-optrode arrays to demonstrate miniaturization potential.
Main Results:
- Optrodes exhibited high linearity (99.4 ± 0.5%), suitable relative responsivity (57 ± 12%V⁻¹), and a bandwidth of 11.1 ± 0.7 kHz.
- Successfully captured rabbit cardiac sinoatrial electrograms and sciatic nerve action potentials.
- Demonstrated fabrication of multi-optrode arrays with automated interface matching.
Conclusions:
- Liquid crystal optrodes offer a viable method for converting bioelectric signals to the optical domain.
- This technology can enable high-bandwidth optical interfaces for ultra-miniature neural and cardiac applications.
- The approach paves the way for integrating optical telecommunications in clinical diagnostics and research.

