An All-Electric Single-Molecule Motor

Many types of molecular motors have been proposed and synthesized in recent years, displaying different kinds of motion, and fueled by different driving forces such as light, heat, or chemical reactions. We propose a new type of molecular motor based on electric field actuation and electric current...

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Veröffentlicht in:arXiv.org 2010-10
Hauptverfasser: Seldenthuis, Johannes S, Prins, Ferry, Thijssen, Joseph M, Herre S J van der Zant
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Prins, Ferry
Thijssen, Joseph M
Herre S J van der Zant
description Many types of molecular motors have been proposed and synthesized in recent years, displaying different kinds of motion, and fueled by different driving forces such as light, heat, or chemical reactions. We propose a new type of molecular motor based on electric field actuation and electric current detection of the rotational motion of a molecular dipole embedded in a three-terminal single-molecule device. The key aspect of this all-electronic design is the conjugated backbone of the molecule, which simultaneously provides the potential landscape of the rotor orientation and a real-time measure of that orientation through the modulation of the conductivity. Using quantum chemistry calculations, we show that this approach provides full control over the speed and continuity of motion, thereby combining electrical and mechanical control at the molecular level over a wide range of temperatures. Moreover, chemistry can be used to change all key parameters of the device, enabling a variety of new experiments on molecular motors.
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subjects Actuation
Chemical reactions
Chemical synthesis
Dipoles
Electric fields
Electrical resistivity
Mathematical analysis
Molecular motors
Motion perception
Organic chemistry
Physics - Materials Science
Physics - Mesoscale and Nanoscale Physics
Physics - Statistical Mechanics
Quantum chemistry
title An All-Electric Single-Molecule Motor
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