Title :
Photonic graphene: Broken PT-symmetry, strain, and optical tachyons
Author :
Szameit, Alexander ; Rechtsman, Mikael C. ; Bahat-Treidel, Omri ; Segev, Mordechai
Author_Institution :
Phys. Dept., Technion - Israel Inst. of Technol., Haifa, Israel
Abstract :
Honeycomb photonic lattices share not only many common features with electronic grapheme (a monolayer of carbon atoms arranged in a honeycomb geometry), but can be used to explore phenomena far beyond the original electronic system. Of particular interest are complex gain/loss systems, which, under special conditions, may exhibit complex, but PT-symmetric, Hamiltonians. PT-symmetric systems are characterized by a complex potential, which has neither parity symmetry nor time-reversal symmetry, but is nevertheless symmetric in the product of both. Under these conditions, the eigenvalues of the Hamiltonian are real, in spite of the fact that the potential is complex. Recently, such systems were introduced into the domain of optics. Their simplest realization occurs for two coupled identical waveguides, one with gain and the other with loss, such that the real part of the refractive index is symmetric whereas the imaginary counterpart is anti-symmetric. This realization was recently demonstrated in experiments. Adding gain/loss to a regular photonic honeycomb lattice can never result in PT-symmetry. However, this unique system can support the formation of optical tachyons - a photonic version of hypothetical particles with imaginary mass and a group velocity exceeding the vacuum speed of light. Nevertheless, applying a strain to the honeycomb lattice may restore PT-symmetry, in particular in the most interesting region of the band structure: the Dirac regime.
Keywords :
band structure; graphene; honeycomb structures; monolayers; photonic band gap; refractive index; C; Dirac regime; Honeycomb photonic lattices; band structure; broken PT-symmetry; eigenvalues; electronic grapheme; gain-loss system; group velocity; monolayers; optical tachyons; parity symmetry; photonic graphene; refractive index; time-reversal symmetry; Photonics;
Conference_Titel :
Lasers and Electro-Optics Europe (CLEO EUROPE/EQEC), 2011 Conference on and 12th European Quantum Electronics Conference
Conference_Location :
Munich
Print_ISBN :
978-1-4577-0533-5
Electronic_ISBN :
Pending
DOI :
10.1109/CLEOE.2011.5943278