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Nature of the enhanced resonant modes in one-dimensional photonic random dimer systems

H Khalfoun1,2, M Bouamoud3, S Bentata4, L Henrard1 and C Vandenbem1

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The propagation of light in a one-dimensional multilayer stack is examined for a disordered system with short range correlation. As known in the random dimer model, pairing the defect elements at random breaks down the Anderson localization and opens a frequency window of extended propagating modes around the predicted conventional dimer resonance. By dealing with host and defect layers with identical phase thicknesses at both host and defect principal standing resonances, we demonstrate the existence of a new ballistic-like regime at an additional standing commuting resonance.

Moreover, by suitably tuning the host standing and conventional defect dimer resonances relative to each other, the transmission responses are both turned into a ballistic transmission regime. By scaling the transmission coefficient over the system length within the resonance window, we analyse the nature of the propagating modes, i.e. ballistic or diffusive. Beyond the resonance, quantitative views on the different transmission regimes and their related phase transitions are examined, pointing out the possibility of designing attractive ballistic resonant optical devices with adjustable transmission responses.


PACS

78.40.Pg Disordered solids

78.67.Pt Multilayers; superlattices

42.70.Qs Photonic bandgap materials

Subjects

Condensed matter: electrical, magnetic and optical

Optics, quantum optics and lasers

Nanoscale science and low-D systems

Dates

Issue 12 (December 2009)

Received 15 April 2009, accepted for publication 3 September 2009

Published 30 September 2009



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