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This page contains all of the posts and discussion on MemeStreams referencing the following web page: Self-assembled monolayer organic field-effect transistors. You can find discussions on MemeStreams as you surf the web, even if you aren't a MemeStreams member, using the Threads Bookmarklet.

Self-assembled monolayer organic field-effect transistors
by Jeremy at 9:58 pm EDT, Oct 18, 2001

Researchers from Lucent's Bell Labs repeort on the latest progress towards molecular-scale electronics. The article appears in the October 18 issue of _Nature_.

"The use of individual molecules as functional electronic devices was proposed in 1974 (ref. 1). Since then, advances in the field of nanotechnology have led to the fabrication of various molecule devices and devices based on monolayer arrays of molecules. Single molecule devices are expected to have interesting electronic properties, but devices based on an array of molecules are easier to fabricate and could potentially be more reliable. However, most of the previous work on array-based devices focused on two-terminal structures: demonstrating, for example, negative differential resistance, rectifiers, and re-configurable switching. It has also been proposed that diode switches containing only a few two-terminal molecules could be used to implement simple molecular electronic computer logic circuits. However, three-terminal devices, that is, transistors, could offer several advantages for logic operations compared to two-terminal switches, the most important of which is 'gain'?the ability to modulate the conductance. Here, we demonstrate gain for electronic transport perpendicular to a single molecular layer ( ~ 10?20 angstroms) by using a third gate electrode. Our experiments with field-effect transistors based on self-assembled monolayers demonstrate conductance modulation of more than five orders of magnitude. In addition, inverter circuits have been prepared that show a gain as high as six. The fabrication of monolayer transistors and inverters might represent an important step towards molecular-scale electronics."


 
 
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