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Materials-Driven Soft Wearable Bioelectronics for Connected Healthcare.

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Soft wearable bioelectronic sensors are crucial for connecting human health to the Internet of Things (IoT), enabling continuous health monitoring and personalized medicine. These advanced sensors bridge the gap between rigid electronics and the body's soft, curvilinear nature.

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Area of Science:

  • Bioelectronics
  • Materials Science
  • Internet of Things (IoT)

Background:

  • The human body's soft, curvilinear nature is incompatible with traditional rigid electronics, hindering the integration of biological systems with the Internet of Things (IoT).
  • Existing healthcare systems lack seamless connectivity, preventing real-time health monitoring and personalized interventions.
  • The development of soft, conformal biosensors is essential to bridge the gap between electronics and biology for connected healthcare.

Purpose of the Study:

  • To review the historical development and future trends of connected healthcare.
  • To explore novel materials, particularly low-dimensional nanomaterials, for designing soft bioelectronic sensors.
  • To discuss the integration of these sensors with wearable energy solutions, machine learning, and telecommunication for comprehensive healthcare systems.

Main Methods:

  • Review of historical healthcare trends and connected healthcare advancements.
  • Analysis of low-dimensional nanomaterials, their properties, synthesis (top-down, bottom-up), and fabrication methods for bioelectronic sensors.
  • Discussion of wearable energy harvesting, machine learning algorithms, artificial intelligence, and telecommunication technologies.

Main Results:

  • Identification of key material types and attributes for soft bioelectronic sensor design.
  • Summary of synthesis and fabrication approaches for advanced bioelectronic materials.
  • Overview of progress in wearable energy solutions and back-end data processing for healthcare applications.

Conclusions:

  • Soft wearable bioelectronic systems represent a significant advancement towards realizing connected healthcare.
  • Integration of these systems in preclinical and clinical settings demonstrates their real-world applicability.
  • Further research into remaining challenges and opportunities is crucial for the widespread adoption of connected healthcare.