Molecularly inherent voltage-controlled conductance switching

Blum, Amy Szuchmacher ; Kushmerick, James G. ; Long, David P. ; Patterson, Charles H. ; Yang, John C. ; Henderson, Jay C. ; Yao, Yuxing ; Tour, James M. ; Shashidhar, Ranganathan ; Ratna, Banahalli R. (2005) Molecularly inherent voltage-controlled conductance switching Nature Materials, 4 . pp. 167-172. ISSN 1476-1122

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Official URL: http://www.nature.com/nmat/journal/v4/n2/abs/nmat1...

Related URL: http://dx.doi.org/10.1038/nmat1309

Abstract

Molecular electronics has been proposed as a pathway for high-density nanoelectronic devices. This pathway involves the development of a molecular memory device based on reversible switching of a molecule between two conducting states in response to a trigger, such as an applied voltage. Here we demonstrate that voltage-triggered switching is indeed a molecular phenomenon by carrying out studies on the same molecule using three different experimental configurations-scanning tunnelling microscopy, crossed-wire junction, and magnetic-bead junction. We also demonstrate that voltage-triggered switching is distinctly different from stochastic switching, essentially a transient (time-dependent) phenomenon that is independent of the applied voltage.

Item Type:Article
Source:Copyright of this article belongs to Nature Publishing Group.
ID Code:49492
Deposited On:20 Jul 2011 09:53
Last Modified:20 Jul 2011 09:53

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