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Extremely low material loss and dispersion flattened TOPAS based circular porous fiber for long distance terahertz wave transmission

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dc.creator Islam, Saiful
dc.creator Sultana, Jakeya
dc.creator Rana, Sohel
dc.creator Islam, Mohammad
dc.creator Faisal, Mohammad
dc.creator Kaijage, Shubi
dc.creator Abbott, Derek
dc.date 2019-05-23T11:55:48Z
dc.date 2019-05-23T11:55:48Z
dc.date 2016
dc.date.accessioned 2022-10-25T09:15:43Z
dc.date.available 2022-10-25T09:15:43Z
dc.identifier http://dx.doi.org/10.1016/j.yofte.2016.11.014
dc.identifier http://dspace.nm-aist.ac.tz/handle/123456789/180
dc.identifier.uri http://hdl.handle.net/123456789/94556
dc.description Research Article published by Elsevier
dc.description In this paper, we present a porous-core circular photonic crystal fiber (PC-CPCF) with ultra-low material loss for efficient terahertz wave transmission. The full vector finite element method with an ideally matched layer boundary condition is used to characterize the wave guiding properties of the proposed fiber. At an operating frequency of 1 THz, simulated results exhibit an extremely low effective material loss of 0.043 cm 1, higher core power fraction of 47% and ultra-flattened dispersion variation of 0.09 ps/THz/cm. The effects of important design properties such as single mode operation, confinement loss and effective area of the fiber are investigated in the terahertz regime. Moreover, the proposed fiber can be fabricated using the capillary stacking or sol-gel technique and be useful for long distance transmission of terahertz waves.
dc.format application/pdf
dc.language en_US
dc.publisher Elsevier
dc.subject Optical fiber
dc.subject Effective material loss
dc.subject Photonic crystal fiber
dc.title Extremely low material loss and dispersion flattened TOPAS based circular porous fiber for long distance terahertz wave transmission
dc.type Article


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