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Photoinduced Electron Transfer from the Inorganic Core to the Organic Shell of Hybrid Core–Shell Nanoparticles: Impedance Spectroscopy
Author(s) -
Guchhait Asim,
Pal Amlan J.
Publication year - 2012
Publication title -
chemistry – an asian journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.18
H-Index - 106
eISSN - 1861-471X
pISSN - 1861-4728
DOI - 10.1002/asia.201101008
Subject(s) - dielectric spectroscopy , materials science , nanoparticle , photoinduced charge separation , photocurrent , photoinduced electron transfer , electron transfer , dielectric , spectroscopy , exciton , resistive touchscreen , electron , shell (structure) , chemical physics , nanotechnology , optoelectronics , chemistry , photochemistry , photocatalysis , electrode , artificial photosynthesis , composite material , physics , electrochemistry , biochemistry , quantum mechanics , engineering , electrical engineering , catalysis
In hybrid core–shell nanoparticles with inorganic nanocrystals in the core and organic molecules in the shell, photoinduced electron transfer occurs from the core to the shell. This leads to exciton dissociation through an ultrafast electron‐transfer process that results in charge separation and finally photocurrent in the external circuit in devices based on such core–shell nanoparticles. In this work, we have fabricated and characterized sandwiched devices based on a series of core–shell systems. From impedance spectroscopy, we have observed that photoinduced charge separation in core–shell systems is associated with a decrease in the device resistance and an increase in the dielectric constant of the active material. In the series of core–shell systems, we have observed a one‐to‐one correlation between the photoinduced electron‐transfer process and the changes in resistive and dielectric parameters upon illumination.
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