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Molecularly Imprinted Nanomaterials for Sensor Applications.

Muhammad Irshad1, Naseer Iqbal2, Adnan Mujahid3

  • 1Institute of Chemistry, University of the Punjab, Quaid-e-Azam Campus, Lahore 54590, Pakistan. leo_star126@yahoo.com.

Nanomaterials (Basel, Switzerland)
|March 29, 2017
PubMed
Summary

Molecular imprinting creates synthetic materials that mimic antibody-antigen interactions for highly specific analyte detection. These imprinted nanomaterials offer rapid analysis in various sensor systems.

Keywords:
molecularly imprinted polymersnanomaterialsnanotechnologysensors

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Area of Science:

  • Materials Science
  • Analytical Chemistry
  • Nanotechnology

Background:

  • Molecular imprinting technology synthetically replicates antibody-antigen interactions.
  • Molecularly imprinted polymers and nanomaterials exhibit superior recognition capabilities.
  • Imprinted nanostructured materials offer large surface area and rapid, specific analyte analysis via template-driven cavities.

Purpose of the Study:

  • To provide an overview of nanostructured imprinted materials.
  • To discuss recent developments in imprinted nanomaterials for sensor systems.
  • To explore future perspectives and applications in chemical sensing.

Main Methods:

  • Review of molecular imprinting principles.
  • Analysis of nanostructured imprinted materials.
  • Discussion of various sensor systems (electrochemical, optical, mass-sensitive).

Main Results:

  • Imprinted nanomaterials demonstrate excellent recognition and selectivity for target analytes.
  • These materials are applicable in separation science, environmental analysis, and biosensing.
  • Recent advancements focus on integrating imprinted nanomaterials into diverse sensor platforms.

Conclusions:

  • Nanostructured imprinted materials are promising for advanced chemical sensor development.
  • Future applications include enhanced environmental monitoring and biochemical assays.
  • Continued research will refine their use in nanotechnology and artificial receptor fabrication.