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Recent Developments and Implementations of Conductive Polymer-Based Flexible Devices in Sensing Applications.

Vinh Van Tran1, Sanghyuck Lee2, Daeho Lee1

  • 1Laser and Thermal Engineering Laboratory, Department of Mechanical Engineering, Gachon University, Seongnam 13120, Korea.

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Conductive polymers offer promising properties for flexible sensors used in health and environmental monitoring. This review explores their synthesis, fabrication, and application potential for advanced wearable electronics.

Keywords:
conductive polymersflexible sensorsprinting techniquessolution processing

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Area of Science:

  • Materials Science
  • Polymer Chemistry
  • Sensor Technology

Background:

  • Flexible sensing devices are crucial for medical, environmental, and healthcare applications.
  • Conductive polymers exhibit desirable flexibility, light weight, and non-toxicity for advanced electronics.
  • Optimizing electrical and mechanical properties is key to enhancing sensor performance.

Purpose of the Study:

  • To review promising strategies for fabricating conductive polymer-based flexible sensors.
  • To discuss the properties, synthesis, and deposition techniques of key conductive polymers.
  • To evaluate potential applications in environmental and human health monitoring.

Main Methods:

  • Review of scientific literature on conductive polymers and flexible sensor fabrication.
  • Analysis of synthesis methods, structural properties, and conductivity of conductive polymers.
  • Evaluation of solution-based deposition and patterning technologies for thin film fabrication.

Main Results:

  • Conductive polymers present excellent characteristics for flexible, stretchable, and wearable electronic devices.
  • Various synthesis methods and deposition techniques are available for fabricating conductive polymer thin films.
  • These sensors show significant potential for real-time environmental and human health monitoring.

Conclusions:

  • Understanding conductive polymer properties and fabrication processes is vital for developing effective flexible sensors.
  • Further research into synthesis and patterning technologies will advance conductive polymer-based sensor applications.
  • Flexible sensors fabricated from conductive polymers are poised to revolutionize monitoring in diverse fields.