Related Experiment Video
Updated: Apr 18, 2026

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Long-term Continuous EEG Monitoring in Small Rodent Models of Human Disease Using the Epoch Wireless Transmitter System
Published on: July 21, 2015
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Super multi-channel recording systems with UWB wireless transmitter for BMI
Summary
A new 4096-channel system for Brain-Machine Interfaces (BMI) uses flexible electrodes and Ultra Wide Band (UWB) wireless transmission for high-accuracy, low-invasive clinical applications. Successful phantom testing demonstrates its potential for advanced neural recording.
Area of Science:
- Biomedical Engineering
- Neuroscience
- Signal Processing
Background:
- Developing advanced Brain-Machine Interface (BMI) systems is crucial for clinical applications requiring high accuracy and minimal invasiveness.
- Existing systems often face limitations in channel count, signal fidelity, or wireless transmission capabilities.
- Electrocorticogram (ECoG) recordings offer a promising avenue for high-resolution neural signal acquisition.
Purpose of the Study:
- To develop a super multi-channel recording system for low-invasive and high-accuracy Brain-Machine Interface (BMI) applications.
- To integrate a high-density, flexible electrode array with a high-channel-count wireless transmission system.
- To evaluate the performance of the developed system, particularly its wireless data transmission capabilities.
Main Methods:
- Development of a 4096-channel Electrocorticogram (ECoG) recording system.
- Design of a high-density, flexible electrode array utilizing a Parylene-C substrate with 32-channel recording units.
- Integration of an Ultra Wide Band (UWB) wireless system for signal amplification and external transmission.
- Performance evaluation using a body phantom system to test UWB wireless transmission.
Main Results:
- Successful development of a 4096-channel ECoG recording system.
- Creation of a flexible, high-density electrode array suitable for high-channel count applications.
- Demonstration of successful Ultra Wide Band (UWB) wireless signal transmission in a body phantom system.
- The system enables amplification and external transmission of ECoG signals.
Conclusions:
- The developed super multi-channel system, incorporating flexible electrodes and UWB wireless technology, shows significant promise for low-invasive, high-accuracy BMI clinical applications.
- The successful phantom testing validates the feasibility of wireless ECoG signal transmission for advanced neural interfaces.
- This technology advancement could pave the way for more sophisticated and practical BMI devices in the future.

