Title :
Deflection of slow light in a Stern-Gerlach magnetic field
Author :
Karpa, Leon ; Weitz, Martin
Author_Institution :
Univ. Bonn, Bonn
Abstract :
Electromagnetically induced transparency allows for light transmission through dense atomic media by means of quantum interference of absorption amplitudes. Media exhibiting electromagnetically induced transparency have interesting properties, such as very slow group velocities. Associated with the slow light propagation are quasiparticles, so-called dark polaritons, which are mixtures of a photonic and an atomic contribution. Here, we demonstrate that these excitations behave as particles with a nonzero magnetic moment, which is in clear contrast to the properties of a free photon. It is found that circularily polarized light passing through a rubidium gas cell under the conditions of electromagnetically induced transparency is deflected by a small magnetic field gradient. The deflection angle is proportional to the propagation time of an optical pulse through the cell. The observed beam deflection can be understood by assuming that dark state polaritons have an effective magnetic moment. This is attributed to the spin wave contribution that develops upon entry of light into the medium. Our experiment can be described in terms of a Stern-Gerlach experiment for the dark polaritons.
Keywords :
light polarisation; magnetic moments; magneto-optical effects; polaritons; radiation pressure; rubidium; self-induced transparency; Rb; Stern-Gerlach magnetic field; beam deflection; dark state polaritons; electromagnetically induced transparency; free photon; light polarization; magnetic field gradient; nonzero magnetic moment; optical pulse; rubidium gas cell; slow light deflection; spin wave; Electromagnetic interference; Electromagnetic propagation; Electromagnetic wave absorption; Electromagnetic wave polarization; Magnetic fields; Magnetic moments; Magnetic properties; Optical polarization; Optical propagation; Slow light;
Conference_Titel :
Lasers and Electro-Optics, 2007 and the International Quantum Electronics Conference. CLEOE-IQEC 2007. European Conference on
Conference_Location :
Munich
Print_ISBN :
978-1-4244-0931-0
Electronic_ISBN :
978-1-4244-0931-0
DOI :
10.1109/CLEOE-IQEC.2007.4386895