arXiv · 1605.04255
Engineering and Manipulating Exciton Wave Packets
Abstract
When a semiconductor absorbs light, the resulting electron-hole superposition amounts to a uncontrolled quantum ripple that eventually degenerates into diffusion. If the conformation of these excitonic superpositions could be engineered, though, they would constitute a new means of transporting information and energy. We show that properly designed laser pulses can be used to create such excitonic wave packets. They can be formed with a prescribed speed, direction and spectral make-up that allows them to be selectively passed, rejected or even dissociated using superlattices. Their coherence also provides a handle for manipulation using active, external controls. Energy and information can be conveniently processed and subsequently removed at a distant site by reversing the original procedure to produce a stimulated emission. The ability to create, manage and remove structured excitons comprises the foundation for opto-excitonic circuits with application to a wide range of quantum information, energy and light-flow technologies. The paradigm is demonstrated using both Tight-Binding and Time-Domain Density Functional Theory simulations.
Explore related subjects
Keep this discovery
Xiaoning Zang, Simone Montangero, Lincoln D. Carr, Mark T. Lusk. 2016-05-13. Engineering and Manipulating Exciton Wave Packets. https://doi.org/10.1103/physrevb.95.195423
Cite the original work for its findings. Save a collection to share your selection of sources.