• Chinese Optics Letters
  • Vol. 15, Issue 3, 030601 (2017)
Mohammad Hadi*, Farokh Marvasti, and Mohammad Reza Pakravan
Author Affiliations
  • Electrical Engineering Department, Sharif University of Technology, Tehran 113658639, Iran
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    DOI: 10.3788/COL201715.030601 Cite this Article Set citation alerts
    Mohammad Hadi, Farokh Marvasti, Mohammad Reza Pakravan. Dispersion compensation using high-positive dispersive optical fibers[J]. Chinese Optics Letters, 2017, 15(3): 030601 Copy Citation Text show less

    Abstract

    The common and traditional method for optical dispersion compensation is concatenating the transmitting optical fiber by a compensating optical fiber having a high-negative dispersion coefficient. In this Letter, we take the opposite direction and show how an optical fiber with a high-positive dispersion coefficient is used for dispersion compensation. Our optical dispersion compensating structure is the optical implementation of an iterative algorithm in signal processing. The proposed dispersion compensating system is constructed by cascading a number of compensating sub-systems, and its compensation capability is improved by increasing the number of embedded sub-systems. We also show that the compensation capability is a trade-off between the transmission length and bandwidth. We use the simulation results to validate the performance of the introduced dispersion compensating module. Photonic crystal fibers with high-positive dispersion coefficients can be used for constructing the proposed optical dispersion compensating module.
    E(z,ω)=E(0,ω)ejβ(ω)z,(1)

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    β(ω)=n(ω)ωc=i=0βii!(Δω)i,(2)

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    D=dτdλ=2πcλ02β2,(3)

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    HD(ω)=ejzi=2βii!(Δω)i.(4)

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    T1T0=1+(z|β2|T02)2,(5)

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    H1{}=I{}+E{}+E2{}++Ek{}+,(6)

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    0:x0=I{x0},(7)

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    1:x1=x0+E{x0}=I{x0}+E{x0},(8)

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    2:x2=x0+E{x1}=x0+E{x0+E{x0}}=I{x0}+E{x0}+E2{x0},(9)

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    3:x3=x0+E{x2}=I{x0}+E{x0+E{x1}}=I{x0}+E{x0}+E{E{x1}}=I{x0}+E{x0}+E2{x0}+E3{x0}.(10)

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    K:xK=x0+E{xK1}=I{x0}+E{x0}+E2{x0}++EK{x0},(11)

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    E(ω)=12ejLi=0βiSMFi!(Δω)i+ejπα2ejLi=0βiPCFi!(Δω)i12ejL(β0SMF+β1SMFΔω)(1αejLi=2βiPCFi!(Δω)i)=12ejL(β0SMF+β1SMFΔω)ED(ω).(12)

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    HD1(ω)=G2K+1ejKL(β0SMF+β1SMFΔω)k=0KEDk(ω).(13)

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    HD1(ω)=Gα2K+1ejKL(β0SMF+β1SMFΔω)ejLi=2βiPCFi!(Δω)i,(14)

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    |ED(ω)|=|1αejLi=2βiPCFi!(Δω)i|<1,(15)

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    12|β2FIB|(Δω)2z<cos1(α2).(16)

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    Mohammad Hadi, Farokh Marvasti, Mohammad Reza Pakravan. Dispersion compensation using high-positive dispersive optical fibers[J]. Chinese Optics Letters, 2017, 15(3): 030601
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