Related Experiment Video
Updated: Jan 30, 2026

Development of a 3D Graphene Electrode Dielectrophoretic Device
Published on: June 22, 2014
Simulating the Nanomechanical Response of Cyclooctatetraene Molecules on a Graphene Device
Sehoon Oh1,2, Michael F Crommie1,2,3, Marvin L Cohen1,2
1Department of Physics , University of California at Berkeley , Berkeley , California 94720 , United States.
Abstract:
We investigate the atomic and electronic structures of cyclooctatetraene (COT) molecules on graphene and analyze their dependence on external gate voltage using first-principles calculations. The external gate voltage is simulated by adding or removing electrons using density functional theory calculations. This allows us to investigate how changes in carrier density modify the molecular shape, orientation, adsorption site, diffusion barrier, and diffusion path. For increased hole doping, COT molecules gradually change their shape to a more flattened conformation and the distance between the molecules and graphene increases while the diffusion barrier drastically decreases. For increased electron doping, an abrupt transition to a planar conformation at a carrier density of -8 × 1013 e/cm2 is observed. These calculations imply that the shape and mobility of adsorbed COT molecules can be controlled by externally gating graphene devices.
Related Concept Videos
Molecules and Compounds
Behavior of Gas Molecules: Molecular Diffusion, Mean Free Path, and Effusion
Responses to Heat and Cold Stress
Non-ohmic Devices
Consider a simple circuit consisting of a battery, a diode, and a resistor. A...
Mnemonic Devices
Acronyms
Acronyms are created by using the initial letters of a series of words to form a new word or phrase. This approach condenses complex information into a single, memorable entity. For example,...
Types of Signaling Molecules

