Title :
Polariton propagation in semiconductors
Author :
Schneider, H.C. ; Jahnke, F. ; Koch, S.W. ; Tignon, J. ; Hasche, T. ; Chemla, D.S.
Author_Institution :
Dept. of Phys. & Mater. Sci., Marburg Univ., Germany
Abstract :
Summary form only given. Exciton wavefunctions are sensitive to the confinement by sample surfaces, which makes the optical response of a slab very different from that of the infinitely extended medium. This complicated coupling between microscopic exciton polarization and macroscopic optical field has led to a variety of theoretical approaches over 40 years, which either start from a macroscopic approximation or which reduce the full complexity of computing the bulk exciton states by using simplified models or approximations. To address this problem in a direct way, we compute the coupled dynamics of the exciton wavefunction and the propagating electromagnetic field. Within this microscopic treatment we use the correct quantum-mechanical boundary condition for the exciton wavefunction, and no need for additional boundary conditions for the macroscopic polarization arises. The numerical calculations presented here require massively parallel techniques on present-day supercomputers.
Keywords :
approximation theory; excitons; light polarisation; light propagation; polaritons; quantum theory; bulk exciton states; exciton wavefunction; exciton wavefunctions; macroscopic approximation; macroscopic optical field; microscopic exciton polarization; microscopic treatment; optical response; polariton propagation; propagating electromagnetic field; quantum-mechanical boundary condition; sample surfaces; semiconductor; slab; Boundary conditions; Excitons; Optical coupling; Optical microscopy; Optical polarization; Optical propagation; Optical sensors; Optical surface waves; Slabs; Surface waves;
Conference_Titel :
Quantum Electronics and Laser Science Conference, 2000. (QELS 2000). Technical Digest
Conference_Location :
San Francisco, CA, USA
Print_ISBN :
1-55752-608-7