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An integrated portable bio-monitoring system based on tough hydrogels for comprehensive detection of physiological activities

  • Congcong Yang
  • , Chenchen Ji*
  • , Fengjiao Guo
  • , Chunjiang Jin
  • , Hongyu Mi*
  • , Zhongchang Wang*
  • *Corresponding author for this work
  • Xinjiang University
  • International Iberian Nanotechnology Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

Advanced soft ion-conducting hydrogels have been developed rapidly in the integrated portable health monitoring equipment due to their higher sensitivity, sensory traits, tunable conductivity, and stretchability for physiological activities and personal healthcare detection. However, traditional hydrogel conductors are normally susceptible to large deformation and strong mechanical stress, which leads to inferior electro-mechanical stability for real application scenarios. Herein, a strong ionically conductive hydrogel (poly(vinyl alcohol)-boric acid-glycerol/sodium alginate-calcium chloride/electrolyte ions (PBG/SC/EI)) was designed by engineering the covalently and ionically crosslinked networks followed by the salting-out effect to further enhance the mechanical strength and ionic conductivity of the hydrogel. Owing to the collective effects of the energy-dissipation mechanism and salting-out effect, the designed PBG/SC/EI with excellent structural integrity and robustness exhibits exceptional mechanical properties (elongation at break for 559.1% and tensile strength of 869.4 kPa) and high ionic conductivity (1.618 S·m−1). As such, the PBG/SC/EI strain sensor features high sensitivity (gauge factor = 2.29), which can effectively monitor various kinds of human motions (joint motions, facial micro-expression, faint respiration, and voice recognition). Meanwhile, the hydrogel-based Zn∥MnO2 battery delivers a high capacity of 267.2 mAh·g−1 and a maximal energy density of 356.8 Wh·kg−1 associated with good cycle performance of 71.8% capacity retention after 8000 cycles. Additionally, an integrated bio-monitoring system with the sensor and Zn∥MnO2 battery can accurately identify diverse physiological activities in a real-time and noninvasive way. This work presents a feasible strategy for designing high-performance conductive hydrogels for highly-reliable integrated bio-monitoring systems with excellent practicability.[Figure not available: see fulltext.]

Original languageEnglish
Pages (from-to)321-332
Number of pages12
JournalNano Research
Volume17
Issue number1
DOIs
StatePublished - Jan 2024
Externally publishedYes

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Ionically conductive hydrogel
  • Zn-based battery
  • human motion monitoring
  • integrated bio-monitoring system
  • strain sensor

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