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Ordered nanoparticle arrays interconnected by molecular linkers: electronic and optoelectronic properties. | LitMetric

AI Article Synopsis

  • Arrays of metal nanoparticles in an organic matrix have unique electronic and optoelectronic properties, making them a hot topic of research.
  • By using these nanoparticle arrays as templates for single molecules, researchers can control electronic behavior by varying factors like material, size, and spacing between the nanoparticles.
  • The study of hexagonal nanoparticle arrays not only opens up possibilities for practical applications like switching devices and sensors but also provides a platform for exploring collective plasmon resonance effects.

Article Abstract

Arrays of metal nanoparticles in an organic matrix have attracted a lot of interest due to their diverse electronic and optoelectronic properties. Recent work demonstrates that nanoparticle arrays can be utilized as a template structure to incorporate single molecules. In this arrangement, the nanoparticles act as electronic contacts to the molecules. By varying parameters such as the nanoparticle material, the matrix material, the nanoparticle size, and the interparticle distance, the electronic behavior of the nanoparticle arrays can be substantially tuned and controlled. Furthermore, via the excitation of surface plasmon polaritons, the nanoparticles can be optically excited and electronically read-out. The versatility and possible applications of well-ordered nanoparticle arrays has been demonstrated by the realization of switching devices triggered optically or chemically and by the demonstration of chemical and mechanical sensing. Interestingly, hexagonal nanoparticle arrays may also become a useful platform to study the physics of collective plasmon resonances that can be described as Dirac-like bosonic excitations.

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Source
http://dx.doi.org/10.1039/c4cs00225cDOI Listing

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