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Electrically conductive nanomaterials: transformative applications in biomedical engineering-a review.

Oindrila Banik1, Amol Lalchand Salve1, Prasoon Kumar2

  • 1Opto-Biomedical Microsystems Laboratory, Department of Biotechnology and Medical Engineering, National Institute of Technology, Rourkela, Odisha, India.

Nanotechnology
|October 10, 2024
PubMed
Summary

Conductive nanomaterials offer exceptional properties for advanced bioelectronics and healthcare innovations. This review explores their applications in biosensors, tissue engineering, and drug delivery for global health improvements.

Keywords:
bioelectronicsconductive nanoparticleselectroactive nano biomaterialssmart biomaterialstissue engineering

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Area of Science:

  • Materials Science
  • Biomedical Engineering
  • Nanotechnology

Background:

  • Nanotechnology advancements have significantly impacted scientific fields.
  • Nanomaterials (carbon-based, metallic, 2D materials like MXenes) possess exceptional electrical conductivity, mechanical strength, and stability.
  • These properties enable the development of efficient, miniaturized, and versatile devices.

Purpose of the Study:

  • To review the significance and applications of conductive nanomaterials.
  • To highlight their unique characteristics due to conductivity, size, and shape.
  • To explore their transformative potential in material science and biomedical engineering.

Main Methods:

  • Literature review of recent advancements in nanotechnology and conductive nanomaterials.
  • Analysis of material properties including electrical conductivity, mechanical strength, and chemical stability.
  • Exploration of applications in bioelectronics, tissue engineering, and drug delivery.

Main Results:

  • Conductive nanomaterials are crucial for creating advanced bioelectronic devices.
  • Applications include biosensors, tissue engineering scaffolds (cardiac, skeletal, nerve, bone), wound healing, and drug delivery systems.
  • These materials show promise in biosensing probes and medical imaging.

Conclusions:

  • Conductive nanomaterials offer a transformative platform for innovation in healthcare.
  • Their unique properties pave the way for improved biosensing, regenerative medicine, and targeted therapies.
  • This review underscores their global contribution to advancing the healthcare system.