• Photonics Research
  • Vol. 7, Issue 7, 806 (2019)
Guodong Zhang1、2, Guanghua Cheng1、3, Manoj K. Bhuyan1、4、5, Ciro D’Amico1, Yishan Wang2, and Razvan Stoian1、*
Author Affiliations
  • 1Laboratoire Hubert Curien, UMR 5516 CNRS, Université de Lyon, Université Jean Monnet, 42000 Saint Etienne, France
  • 2State Key Laboratory of Transient Optics and Photonics, Xi’an Institute of Optics and Precision Mechanics, CAS, Xi’an 710119, China
  • 3School of Electronics and Information, Northwestern Polytechnical University, Xi’an 710072, China
  • 4Academy of Scientific and Innovative Research, CSIR-Central Scientific Instruments Organization, Chandigarh 160030, India
  • 5Optical Devices and Systems Division, CSIR-Central Scientific Instruments Organization, Chandigarh 160030, India
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    DOI: 10.1364/PRJ.7.000806 Cite this Article Set citation alerts
    Guodong Zhang, Guanghua Cheng, Manoj K. Bhuyan, Ciro D’Amico, Yishan Wang, Razvan Stoian. Ultrashort Bessel beam photoinscription of Bragg grating waveguides and their application as temperature sensors[J]. Photonics Research, 2019, 7(7): 806 Copy Citation Text show less

    Abstract

    Ultrashort pulsed Bessel beams with intrinsic nondiffractive character and potential strong excitation confinement down to 100 nm can show a series of advantages over Gaussian beams in fabricating efficient Bragg grating waveguides (BGWs). In this work, we focus on parameter management for the inscription of efficient BGWs using the point-by-point method employing Bessel beams. Due to their high aspect ratio, the resulting one-dimensional void-like structures can section the waveguides and interact efficiently with the optical modes. Effective first-order BGWs with low birefringence can then be fabricated in bulk fused silica. By controlling the size and the relative location of grating voids via the Bessel pulse energy and scan velocities, the resonant behaviors of BGWs can be well regulated. A high value of 34 dB for 8 mm length is achieved. A simple predictive model for BGWs is proposed for analyzing the influences of processing parameters on the performance of BGWs. The technique permits multiplexing several gratings in the same waveguide. Up to eight grating traces were straightforwardly inscribed into the waveguide in a parallel-serial combined mode, forming the multiplex BGWs. As an application, the multiplex BGW sensor with two resonant peaks is proposed and fabricated for improving the reliability of temperature detection.

    δn(x,y)={δn¯mv(x,y)|xx0|dvo/2,|yy0|lvo/20|xx0|dvo/2,|yy0|lvo/2,(1)

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    δn¯mv(x,y)=dvoΛP(nvonco),(2)

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    F=2E/(πr0w0),(3)

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    Fth=Fexp(2nrth2r02),(4)

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    dvo2=2r02nln(EEth).(5)

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    kt=πλ|δneff|,(6)

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    δneff=modδn(x,y)et(x,y)·et*(x,y)dxdy.(7)

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    δneff=8πa2modδn(x,y)exp[8(x2+y2)a2]dxdy.(8)

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    δneff=22πdvoπaerf(lvo2a)exp(8x02a2)[dvoΛ(1nco)]=W(x0)dvo2Λ(1nco).(9)

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    Δλ=λB22πneffkt2+(πL)2,(10)

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    dvo=dco11/δ.(11)

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    δneff=W(x0)dvo2Λ(1nco+β),(12)

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    Guodong Zhang, Guanghua Cheng, Manoj K. Bhuyan, Ciro D’Amico, Yishan Wang, Razvan Stoian. Ultrashort Bessel beam photoinscription of Bragg grating waveguides and their application as temperature sensors[J]. Photonics Research, 2019, 7(7): 806
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