MRS Meetings and Events

 

SB06.09.06 2024 MRS Spring Meeting

Multi Electrophysiological Signal Collecting E-Textile System by Sponge Electrode

When and Where

Apr 25, 2024
5:00pm - 7:00pm

Flex Hall C, Level 2, Summit

Presenter

Co-Author(s)

Chansoo Kim1,Junyi Zhao1,Chuan Wang1

Washington University in St. Louis1

Abstract

Chansoo Kim1,Junyi Zhao1,Chuan Wang1

Washington University in St. Louis1
Wearable electrophysiological signal sensors are essential for long-term health monitoring applications, and these electrodes lead us to pre-diagnose lots of diseases such as a cardiac disorder and muscle or nerve disorders before the diseases move to more dangerous step. However, most of the reported wearable sensors have collected signals individually or integrated into patch for multi-signal collection. As a result, the practical implementation is hampered by challenges such as process complexity, durability, and user experience.<br/>Here, we introduce an interesting approach for long-term and multi-electrophysiologic signal collecting electrode by E-textile system. This system is composed of simply screen printed textile electrodes with Poly(3,4-ethylenedioxythiophene)polystyrenesulfonate (PEDOT:PSS) and carbon black mixed conductive PDMS sponge electrode. The porous structure of soft and conductive sponge electrode provides pressure sensitivity by changing the void (air gap) structure inside of the sponge. So, it shows sensitive resistance and capacitance change under small pressure changes (Under 300 Pa).<br/>For the electrophysiological signals, the sponge electrode can drastically increase the contact area between skin and electrode in water and gel condition. In addition, it also keeps the water or gel longer time compared to the planner electrode. So, to overcome the hydrophilicity of PDMS and carbon black, and maximize the absorption of water or gel into the sponge electrode, layer-by-layer (LbL) coating is utilized with poly-L-lysine.<br/>Eventually, we achieve 1.2×10<sup>4</sup> Ω*cm<sup>2</sup> skin contact impedance and 30 dB signal-to-noise ratio (SNR) for the electrocardiogram (ECG) and electromyography (EMG). Furthermore, the carbon black sponge electrode demonstrates better wet condition stability compared to other coated sponge electrodes. Finally, we utilized this E-textile system for the patient study to collect uterine contraction signals and predict childbirth (Washington University Institutional Review Board, IRB 201612140). We strongly believe that this E-textile system will lead to a new opportunity for stable long-term electrophysiologic signal collecting applications.

Keywords

porosity

Symposium Organizers

Neel Joshi, Northeastern University
Eleni Stavrinidou, Linköping University
Bozhi Tian, University of Chicago
Claudia Tortiglione, Istituto di Scienze Applicate e Sistemi Intelligenti

Symposium Support

Bronze
Cell Press

Session Chairs

Eleni Stavrinidou
Claudia Tortiglione

In this Session

SB06.09.01
3D-Printed Flexible Wearable Microfluidic Biosensor Array with Colorimetric Sensing and Sweat Rate Evaluation

SB06.09.02
Force-Triggered Self-Destructive Hydrogels

SB06.09.03
Label-Free Laser-Induced Ni/AuNPs Micropore Reusable Electronic Sensor for Rapid Bacteria Detection and Quantification

SB06.09.04
Pushing the Limit of Self-Assembly Ultrashort Peptides Minimum Gelation Concentration for Advanced Biomedical Applications

SB06.09.05
Engineering Cellular Alignment in Contractile Cardiac Tissues Using Coherent Light Biofabrication

SB06.09.06
Multi Electrophysiological Signal Collecting E-Textile System by Sponge Electrode

SB06.09.07
Colorimetric and Photothermal Dual-Mode Apta-Sensor for Selective Detection of Kanamycin Using Chitosan-Stabilized Platinum Nanozymes

SB06.09.08
Nanocarrier Incorporating Fucoidan/Chitosan for Co-Encapsulation of TMB, Glucose Oxidase and Prussian Blue: Applications in Chemotherapy, Photothermal Therapy and Glucose Starvation Treatment

SB06.09.10
A Conformal Second Skin for Long-Term Electrophysiology Monitoring of Plants

SB06.09.11
A Fibrous Matrix Immobilized with Milk Exosomes for Improved Wound Healing

View More »

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