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Systematic experimental study of quantum interference effects in anthraquinoid molecular wires.
Carlotti, Marco; Soni, Saurabh; Qiu, Xinkai; Sauter, Eric; Zharnikov, Michael; Chiechi, Ryan C.
Afiliação
  • Carlotti M; Zernike Institute for Advanced Materials , Nijenborgh 4 , 9747 AG Groningen , The Netherlands . Email: r.c.chiechi@rug.nl.
  • Soni S; Stratingh Institute for Chemistry , University of Groningen , Nijenborgh 4 , 9747 AG Groningen , The Netherlands.
  • Qiu X; Zernike Institute for Advanced Materials , Nijenborgh 4 , 9747 AG Groningen , The Netherlands . Email: r.c.chiechi@rug.nl.
  • Sauter E; Stratingh Institute for Chemistry , University of Groningen , Nijenborgh 4 , 9747 AG Groningen , The Netherlands.
  • Zharnikov M; Zernike Institute for Advanced Materials , Nijenborgh 4 , 9747 AG Groningen , The Netherlands . Email: r.c.chiechi@rug.nl.
  • Chiechi RC; Stratingh Institute for Chemistry , University of Groningen , Nijenborgh 4 , 9747 AG Groningen , The Netherlands.
Nanoscale Adv ; 1(5): 2018-2028, 2019 May 01.
Article em En | MEDLINE | ID: mdl-31304460
In order to translate molecular properties in molecular-electronic devices, it is necessary to create design principles that can be used to achieve better structure-function control oriented toward device fabrication. In molecular tunneling junctions, cross-conjugation tends to give rise to destructive quantum interference effects that can be tuned by changing the electronic properties of the molecules. We performed a systematic study of the tunneling charge-transport properties of a series of compounds characterized by an identical cross-conjugated anthraquinoid molecular skeleton but bearing different substituents at the 9 and 10 positions that affect the energies and localization of their frontier orbitals. We compared the experimental results across three different experimental platforms in both single-molecule and large-area junctions and found a general agreement. Combined with theoretical models, these results separate the intrinsic properties of the molecules from platform-specific effects. This work is a step towards explicit synthetic control over tunneling charge transport targeted at specific functionality in (proto-)devices.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2019 Tipo de documento: Article