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March 13, 2026Advanced Materials Technologies0 citationsOpen Access

Chemically Doped Conductive Polymers for Wearable Health Monitoring

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MZMengdi ZuoJSJian SongHHHong Hu

Key Points

  • To summarize recent enhancements in chemically doped conductive polymers for wearable health monitoring applications.
  • Systematic review of chemical doping strategies in conductive polymers.
  • Analysis of piezoresistive and chemiresistive sensor mechanisms.
  • Discussion of fabrication methods including printed electronics and fiber-spinning technologies.
  • Examination of integration with wireless communication and power supply for wearables.
  • Improved electrical conductivity and mechanical flexibility of conductive polymers through chemical doping.
  • Development of high-performance flexible sensors for monitoring physiological signals and environmental hazards.
  • Integration of sensing elements in complete wearable systems, enabling personalized health management.

Abstract

ABSTRACT Chemically doped conductive polymers are a class of “synthetic metals” that combine metal‐level electrical conductivity with intrinsic mechanical flexibility, and they are emerging as core materials for wearable health‐monitoring technologies. This review systematically summarizes recent advances in the field, focusing on chemical doping strategies—including small‐molecule dopants, ionic liquids, and polymeric dopants—that effectively overcome the intrinsic conductivity limitations of conductive polymers while simultaneously improving mechanical compliance and environmental stability. Enabled by these material innovations, high‐performance flexible sensors based on piezoresistive and chemiresistive mechanisms have been developed, allowing in situ, high‐fidelity monitoring of physiological signals such as electrocardiography, electromyography, and joint motion, as well as environmental hazards including toxic gases and ultraviolet radiation. From a fabrication perspective, printed electronics and fiber‐spinning technologies provide scalable and low‐cost routes for producing flexible devices and electronic textiles. Furthermore, through flexible hybrid electronics, sensing elements have been successfully integrated with wireless communication and power supply modules to form complete wearable systems. Although challenges remain in long‐term stability, reproducibility, and large‐scale manufacturing, the integration of doping engineering with artificial intelligence and self‐powered technologies is accelerating the evolution of chemically doped conductive polymers toward multimodal sensing, intelligent data analysis, and personalized health management, highlighting their substantial potential.

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Cite This Study

Zuo et al. (2026) studied this question.

synapsesocial.com/papers/69b3ab5e02a1e69014ccc267https://doi.org/10.1002/admt.202502209
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