Maxwell+TDDFT multiscale simulation for optical response of nanomaterials
ORAL
Abstract
We have been developing a novel multiscale simulation method which combines the time-dependent density functional theory (TDDFT)-based first principles electron dynamics and finite-difference-time-domain (FDTD)-based electromagnetic calculations. We apply this method to light propagation / scattering problem by semiconducting silicon nanoparticles and nanodimer structures with the length scale at a few hundred nanometer, which are often used as building block of optical devices. Under an irradiation of an intense femtosecond laser pulse (I > 1010 W/cm2), carrier excitations by multiphoton processes take place due to the enhanced light field at the focalspot / hotspot. Thus, this method offers a useful tool to analyze optical nonlinearity at nanostructures in the first principles level.
*This work was supported in part by MEXT as a social and scientific priority issue (Creation of new functional devices and high-performance materials to support next-generation industries; CDMSI) to be tackled by using post-K computer.
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Presenters
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Mitsuharu Uemoto
- University of Tsukuba