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A Novel Approach for Spectroscopic Chemical Identification Using Photonic Crystal Fiber in the Terahertz Regime

IEEE Sensors Journal · 2017 · Vol. 18(2) · pp. 575–582
Md. Saiful IslamJakeya SultanaKawsar AhmedMohammad Rakibul IslamAlex DinovitserBrian W.‐H. NgDerek Abbott

Abstract

A novel highly sensitive porous core-photonic crystal fiber (PC-PCF) has been designed and analyzed for detection of chemical analytes in the terahertz frequency range. The PC-PCF is designed using rectangular structured air holes in the core with a kagome structured cladding. The full vectorial finite-element method is used to tune the geometrical parameters and to characterize the fiber. Our results demonstrate a high relative chemical sensitivity with significantly lower confinement loss for different analytes. Moreover, the PCF shows near zero dispersion variation, high modal effective area, high birefringence, and high numerical aperture. The practical realization of the fiber is feasible with present fabrication techniques. Our optimized PCF has commercial applications in chemical sensing as well as applications in terahertz systems that require guided polarization preserving transmission.

Terahertz technology and applicationsPhotonic Crystal and Fiber OpticsPhotonic and Optical DevicesPhotonic-crystal fiberTerahertz radiationCladding (metalworking)Materials scienceBirefringenceOpticsOptoelectronicsAnalyteChemical sensorFinite element method
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A Novel Approach for Spectroscopic Chemical Identification Using Photonic Crystal Fiber in the Terahertz Regime · Scinovex