TY - JOUR
T1 - A Hierarchical Contact-Electrification Interface Based on Gradient Micro-/Nanostructured Hydrogel for Cardiovascular Disease Monitoring
AU - Gao, Zhenqiu
AU - Zhang, Liming
AU - Lei, Hao
AU - Liu, Yina
AU - Gu, Haicheng
AU - Xie, Lingjie
AU - Lu, Bohan
AU - Ji, Haifeng
AU - Wen, Zhen
AU - Sun, Xuhui
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025/5/20
Y1 - 2025/5/20
N2 - Accurate monitoring of pulses is essential for assessing cardiovascular health. However, the specificity of the pulse wave depends on prestress applied to a wearable sensor. Here, we introduce a progressive contact area compensation strategy, which greatly extends the detection range of the sensor’s high-sensitivity region. It features a hierarchical flower surface structure and a gradient micro-/nanostructured hydrogel as the dielectric layer, compensating for the output decrease resulting from pressure hardening by gradually increasing the contact area between the contact-electrification interfaces. Consequently, the gradient micro-/nanostructured hydrogel, fabricated via electric field induction, enables the sensor’s high-sensitivity region to reach 1.1-52.2 kPa, a 5-fold improvement over that of comparable sensors. By integrating prestress adaptive units, signal processing modules, and a peak seeking algorithm, we develop a wireless wristband for continuous monitoring of cardiovascular status and blood pressure. Importantly, a preliminary 10 day blood pressure test on 22 volunteers showed an error margin of less than ±5 mm Hg, demonstrating its potential as a cardiovascular health product.
AB - Accurate monitoring of pulses is essential for assessing cardiovascular health. However, the specificity of the pulse wave depends on prestress applied to a wearable sensor. Here, we introduce a progressive contact area compensation strategy, which greatly extends the detection range of the sensor’s high-sensitivity region. It features a hierarchical flower surface structure and a gradient micro-/nanostructured hydrogel as the dielectric layer, compensating for the output decrease resulting from pressure hardening by gradually increasing the contact area between the contact-electrification interfaces. Consequently, the gradient micro-/nanostructured hydrogel, fabricated via electric field induction, enables the sensor’s high-sensitivity region to reach 1.1-52.2 kPa, a 5-fold improvement over that of comparable sensors. By integrating prestress adaptive units, signal processing modules, and a peak seeking algorithm, we develop a wireless wristband for continuous monitoring of cardiovascular status and blood pressure. Importantly, a preliminary 10 day blood pressure test on 22 volunteers showed an error margin of less than ±5 mm Hg, demonstrating its potential as a cardiovascular health product.
KW - blood pressure
KW - cardiovascular health
KW - progressive contact area compensation
KW - pulse wave
KW - wearable pressure sensor
UR - http://www.scopus.com/inward/record.url?scp=105004589062&partnerID=8YFLogxK
U2 - 10.1021/acsnano.5c00313
DO - 10.1021/acsnano.5c00313
M3 - Article
C2 - 40322834
AN - SCOPUS:105004589062
SN - 1936-0851
VL - 19
SP - 18301
EP - 18312
JO - ACS Nano
JF - ACS Nano
IS - 19
ER -