Thermoplasmonics. Heating Metal Nanoparticles Using Light

Par : Guillaume Baffou
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  • Nombre de pages290
  • PrésentationRelié
  • FormatGrand Format
  • Poids0.841 kg
  • Dimensions19,2 cm × 25,4 cm × 2,0 cm
  • ISBN978-1-108-41832-4
  • EAN9781108418324
  • Date de parution19/10/2017
  • ÉditeurCambridge University Press

Résumé

Plasmonics is an important branch of optics concerned with the interaction of metals with light. Under appropriate illumination, metal nanoparticles can exhibit enhanced light absorption, becoming nanosources of heat that can be precisely controlled. This book provides an overview of the exciting new field of thermoplasmonics and a detailed discussion of its theoretical underpinnings in nanophotonics.
This topic has developed rapidly in the last decade, and is now a highly active area of research due to countless applications in nanoengineering and nanomedicine. These important applications include photothermal cancer therapy, drug and gene delivery, nanochemistry and photothermal imaging. This timely and self-contained text is suited to all researchers and graduate students working in plasmonics, nano-optics and thermal-induced processes at the nano scale.
Plasmonics is an important branch of optics concerned with the interaction of metals with light. Under appropriate illumination, metal nanoparticles can exhibit enhanced light absorption, becoming nanosources of heat that can be precisely controlled. This book provides an overview of the exciting new field of thermoplasmonics and a detailed discussion of its theoretical underpinnings in nanophotonics.
This topic has developed rapidly in the last decade, and is now a highly active area of research due to countless applications in nanoengineering and nanomedicine. These important applications include photothermal cancer therapy, drug and gene delivery, nanochemistry and photothermal imaging. This timely and self-contained text is suited to all researchers and graduate students working in plasmonics, nano-optics and thermal-induced processes at the nano scale.