TY - JOUR
T1 - Hybrid microstructure-based stretchable biosensors for multi-physiological signal sensing
AU - Han, Fei
AU - Li, Hanfei
AU - Huang, Laixin
AU - Zhou, Xiaomeng
AU - Su, Rui
AU - Ye, Huaiyu
AU - Li, Fei
AU - Zhang, Guoqi
AU - Liu, Zhiyuan
AU - More Authors, null
PY - 2024
Y1 - 2024
N2 - Wearable biosensors provide continuous, real-time physiological monitoring of biochemical markers in biofluids such as sweat, tears, saliva, and interstitial fluid. However, achieving high stretchability and stable biochemical signal monitoring remains challenging. Here, we propose a hybrid microstructure (HMS) strategy to fabricate highly stretchable multifunctional biosensors capable of detecting sweat electrolyte concentrations, pH levels, and surface electromyography (EMG) signals. By integrating a HMS, stable conductivity under large strains is ensured. Stretching tests up to 5000 cycles demonstrated the electrodes’ stretchable stability and reliability. The high-performance electrodes were used for EMG monitoring on human skin. Additionally, active materials were coated onto the stretchable electrodes to create multifunctional sweat sensors capable of monitoring pH as well as calcium, sodium, and potassium ions (Ca2+, Na+, K+). The electrodes reliably maintained their functionality under 60 % strain, providing new insights into the fabrication of stable, highly stretchable biosensors.
AB - Wearable biosensors provide continuous, real-time physiological monitoring of biochemical markers in biofluids such as sweat, tears, saliva, and interstitial fluid. However, achieving high stretchability and stable biochemical signal monitoring remains challenging. Here, we propose a hybrid microstructure (HMS) strategy to fabricate highly stretchable multifunctional biosensors capable of detecting sweat electrolyte concentrations, pH levels, and surface electromyography (EMG) signals. By integrating a HMS, stable conductivity under large strains is ensured. Stretching tests up to 5000 cycles demonstrated the electrodes’ stretchable stability and reliability. The high-performance electrodes were used for EMG monitoring on human skin. Additionally, active materials were coated onto the stretchable electrodes to create multifunctional sweat sensors capable of monitoring pH as well as calcium, sodium, and potassium ions (Ca2+, Na+, K+). The electrodes reliably maintained their functionality under 60 % strain, providing new insights into the fabrication of stable, highly stretchable biosensors.
KW - Hybrid microstructure
KW - Multifunctional sweat sensors
KW - Stretchable biosensors
KW - Stretchable electrode
KW - Wearable electronics
UR - http://www.scopus.com/inward/record.url?scp=85210099556&partnerID=8YFLogxK
U2 - 10.1016/j.esci.2024.100327
DO - 10.1016/j.esci.2024.100327
M3 - Article
AN - SCOPUS:85210099556
SN - 2667-1417
VL - 5
JO - eScience
JF - eScience
IS - 2
M1 - 100327
ER -