Title :
Conductive Polymer Foam Surface Improves the Performance of a Capacitive EEG Electrode
Author :
Hyun Jae Baek ; Hong Ji Lee ; Yong Gyu Lim ; Kwang Suk Park
Author_Institution :
Grad. Program in Bioeng., Seoul Nat. Univ., Seoul, South Korea
Abstract :
In this paper, a new conductive polymer foam-surfaced electrode was proposed for use as a capacitive EEG electrode for nonintrusive EEG measurements in out-of-hospital environments. The current capacitive electrode has a rigid surface that produces an undefined contact area due to its stiffness, which renders it unable to conform to head curvature and locally isolates hairs between the electrode surface and scalp skin, making EEG measurement through hair difficult. In order to overcome this issue, a conductive polymer foam was applied to the capacitive electrode surface to provide a cushioning effect. This enabled EEG measurement through hair without any conductive contact with bare scalp skin. Experimental results showed that the new electrode provided lower electrode-skin impedance and higher voltage gains, signal-to-noise ratios, signal-to-error ratios, and correlation coefficients between EEGs measured by capacitive and conventional resistive methods compared to a conventional capacitive electrode. In addition, the new electrode could measure EEG signals, while the conventional capacitive electrode could not. We expect that the new electrode presented here can be easily installed in a hat or helmet to create a nonintrusive wearable EEG apparatus that does not make users look strange for real-world EEG applications.
Keywords :
bioelectric potentials; biomedical electrodes; conducting polymers; electroencephalography; medical signal processing; polymer foams; skin; EEG signal measurement; capacitive EEG electrode performance; conductive polymer foam surface; conventional resistive methods; correlation coefficients; electrode-skin impedance; head curvature; nonintrusive EEG measurements; nonintrusive wearable EEG apparatus; out-of-hospital environments; rigid surface; scalp skin; signal-to-error ratio; signal-to-noise ratio; stiffness; undefined contact area; voltage gain; Electrodes; Electroencephalography; Impedance; Polymers; Scalp; Surface impedance; Surface topography; Biomedical electrodes; capacitive sensors; electroencephalography (EEG); polymer foams; Adult; Clothing; Electrodes; Electroencephalography; Equipment Design; Equipment Failure Analysis; Hair; Humans; Male; Polymers; Signal Processing, Computer-Assisted; Signal-To-Noise Ratio; Surface Properties;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2012.2215032