Optical trap for two-dimensional excitons
ORAL
Abstract
For its potential optical controllability as quantum degrees of freedom, the exciton in two-dimensional system has attracted much attentions. In this presentation, we propose an optical trapping technique for the exciton. Exploiting the energy shift mechanism of excitonic system coupled to the electromagnetic field, spatial confinement potential can be implemented. The dimensionality and symmetry of the potential can be dynamically tunable. We performed an ab initio calculation of the excitonic states in graphane, a two-dimensional wide gap semiconductor with D3d symmetry, based on GW+BSE method by using BerkeleyGW package. The lowest excitonic state belongs to Eu representation, followed by Eg and A2g excitons of which energy levels are 500meV and 650meV apart from Eu exciton, respectively. Two- and three-level systems can be implemented by coupling these levels with optical fields. We will report the possible depth and polarization dependency of the potential by applying nearly infrared laser light.
*This work is supported by a NEDO project “Development of advanced laser processing with intelligence based on high-brightness and high-efficiency laser technologies (TACMI project) and the use of the Supercomputer Center facilities, the ISSP the University of Tokyo.
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Presenters
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Hiroki Katow
- AIST