arXiv · 1305.6359
Characterizing the rate and coherence of single-electron tunneling between two dangling bonds on the surface of silicon
Abstract
We devise a scheme to characterize tunneling of an excess electron shared by a pair of tunnel-coupled dangling bonds on a silicon surface -- effectively a two-level system. Theoretical estimates show that the tunneling should be highly coherent but too fast to be measured by any conventional techniques. Our approach is instead to measure the time-averaged charge distribution of our dangling-bond pair by a capacitively coupled atomic-force-microscope tip in the presence of both a surface-parallel electrostatic potential bias between the two dangling bonds and a tunable midinfrared laser capable of inducing Rabi oscillations in the system. With a nonresonant laser, the time-averaged charge distribution in the dangling-bond pair is asymmetric as imposed by the bias. However, as the laser becomes resonant with the coherent electron tunneling in the biased pair the theory predicts that the time-averaged charge distribution becomes symmetric. This resonant symmetry effect should not only reveal the tunneling rate, but also the nature and rate of decoherence of single-electron dynamics in our system.
Explore related subjects
Keep this discovery
Zahra Shaterzadeh-Yazdi, Lucian Livadaru, Marco Taucer, Josh Mutus, Jason Pitters, Robert A. Wolkow, Barry C. Sanders. 2013-05-28. Characterizing the rate and coherence of single-electron tunneling between two dangling bonds on the surface of silicon. https://doi.org/10.1103/physrevb.89.035315
Cite the original work for its findings. Save a collection to share your selection of sources.