Ultrafast dynamics of photoexcited Hot carrier generation and injection in AgNWs@TiO2@GNS nanostructures
LI, Yiwen
The Institute of Applied Physics and Materials Engineering
Department of Electrical and Electronic Engineering [Shenzhen]
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The Institute of Applied Physics and Materials Engineering
Department of Electrical and Electronic Engineering [Shenzhen]
LI, Yiwen
The Institute of Applied Physics and Materials Engineering
Department of Electrical and Electronic Engineering [Shenzhen]
< Leer menos
The Institute of Applied Physics and Materials Engineering
Department of Electrical and Electronic Engineering [Shenzhen]
Idioma
en
Article de revue
Este ítem está publicado en
Journal of Physical Chemistry C. 2018, vol. 122, n° 26, p. 14857-14864
American Chemical Society
Resumen en inglés
The generation and injection of hot electrons in plasmonic nanostructures have received a wide-range potential application in the next generation of ultrafast nanophotonics as well as energy harvesting, storage and conversion. ...Leer más >
The generation and injection of hot electrons in plasmonic nanostructures have received a wide-range potential application in the next generation of ultrafast nanophotonics as well as energy harvesting, storage and conversion. In many cases, the energetic carriers with high energy beyond Fermi level are desirable for photochemical reactions due to the tremendous efficient hot electron injection. However, directly electron–electron scattering lifetime observations have few reported and hot electrons generally suffer from a low generation efficiency in conventional plasmonic nanostructures. This paper reports on the fabrication of hybrid AgNWs@TiO2@Au core–shell nanostructures and the investigation of the ultrafast dynamics of their energetic carriers based on interband and intraband excitations through transient absorption spectroscopy measurements. Finally, the different electronic transition processes are discussed in terms of ultrafast decay response, which is necessary to design proper nanostructures aimed at efficient hot electron injection.< Leer menos
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