Dependence of Frequency Shift of Depolarized Guided Acoustic Wave Brillouin Scattering in Photonic Crystal Fibers
Journal of Lightwave Technology, Vol. 29, Issue 2, pp. 200-208 (2011)
Acrobat PDF (1466 KB)
Abstract
We study through experiment, calculation and simulation the frequency dependence of depolarized GAWBS observed in four different photonic crystal fibers and extend the results to others through simulation. In two of the fibers studied, high frequency modes (>1 GHz) are observed in addition to the usual lower frequency torsional radial (TR) modes. The acoustic modes responsible for GAWBS are characterized through a combination of simulations and experiments. The calculations are done using the silica rod approximation, which is valid for PCFs with a low to intermediate air-fill fraction or with a very high air-filling fraction. Further simulations extend the range of photonic crystal fibers in which acoustic modes can be characterized. These are used to study the dependence of the acoustic mode frequency on key fiber parameters such as the ratio of air to silica across the whole cross section (κ) and the lattice pitch (Λ).
© 2010 IEEE
Citation
John E. McElhenny, Radha K. Pattnaik, and Jean Toulouse, "Dependence of Frequency Shift of Depolarized Guided Acoustic Wave Brillouin
Scattering in Photonic Crystal Fibers," J. Lightwave Technol. 29, 200-208 (2011)
http://www.opticsinfobase.org/jlt/abstract.cfm?URI=jlt-29-2-200
You do not have subscription access to this journal. Citation lists with outbound citation links are available to subscribers only. You may subscribe either as an OSA member, or as an authorized user of your institution.
Contact your librarian or system administrator
or
Log in to access OSA Member Subscription
You do not have subscription access to this journal. Cited by links are available to subscribers only. You may subscribe either as an OSA member, or as an authorized user of your institution.
Contact your librarian or system administrator
or
Log in to access OSA Member Subscription





OSA is a member of 