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      Exploiting plasmon-induced hot electrons in molecular electronic devices.

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          Abstract

          Plasmonic nanostructures can induce a number of interesting responses in devices. Here we show that hot electrons can be extracted from plasmonic particles and directed into a molecular electronic device, which represents a new mechanism of transfer from light to electronic transport. To isolate this phenomenon from alternative and sometimes simultaneous mechanisms of plasmon-exciton interactions, we designed a family of hybrid nanostructure devices consisting of Au nanoparticles and optoelectronically functional porphyin molecules that enable precise control of electronic and optical properties. Temperature- and wavelength-dependent transport measurements are analyzed in the context of optical absorption spectra of the molecules, the Au particle arrays, and the devices. Enhanced photocurrent associated with exciton generation in the molecule is distinguished from enhancements due to plasmon interactions. Mechanisms of plasmon-induced current are examined, and it is found that hot electron generation can be distinguished from other possibilities.

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          Author and article information

          Journal
          ACS Nano
          ACS nano
          American Chemical Society (ACS)
          1936-086X
          1936-0851
          May 28 2013
          : 7
          : 5
          Affiliations
          [1 ] Department of Materials Science & Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
          Article
          10.1021/nn401071d
          23550717
          9af568ad-1eab-4e06-b9a6-f770276a3fce
          History

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