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Developments and Future Directions in Stretchable Display Technology: Materials, Architectures, and Applications.

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Summary

This review explores advances in stretchable display technology, focusing on materials, engineering, and integration for flexible electronics. Future research aims to overcome manufacturing and performance challenges for robust, scalable systems.

Keywords:
artificial intelligence integrationdurable encapsulationenergy-autonomous systemsflexible electronicshigh-resolution displayssoft roboticsstretchable displayswearable healthcare

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Area of Science:

  • Materials Science
  • Electronics Engineering
  • Applied Physics

Background:

  • Stretchable display technology is crucial for next-generation flexible electronics.
  • Applications span wearable healthcare, smart textiles, implantable devices, and soft robotics.

Purpose of the Study:

  • To systematically review recent advances in stretchable display technology.
  • To highlight breakthroughs in materials, device architecture, and integration strategies.
  • To identify challenges and future research directions.

Main Methods:

  • Focus on intrinsic stretchable materials and wavy surface engineering.
  • Examination of hybrid integration strategies for device components.
  • Analysis of device architectures, energy systems, and encapsulation techniques.

Main Results:

  • Breakthroughs in device architectures, energy-autonomous systems, and durable encapsulation.
  • Development of high-resolution displays maintaining brightness and color fidelity under strain.
  • Integration of artificial intelligence for intelligent sensing and human-machine interfaces.

Conclusions:

  • Significant progress in mechanical reliability, optical performance, and sustainability.
  • Challenges remain in large-scale manufacturing, miniaturization, and performance trade-offs.
  • Future research should focus on multifunctional, robust, and scalable stretchable display systems.