EP1520193B1

Method and apparatus for an optical filter

Abstract

This record has no abstract on file.

EP1520193B1, drawing sheet 1
Sheet 1 of 34

Term

Term ended

Expired 8 February 2022, 4.6 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

14 claims: 2 independent, 12 dependent

  1. 1
    A multiplexer/demultiplexer optical device for splitting and combining add and even sets of optical signals, the optical device comprising:a first (100) and a second (130,160) filter including one filter cell or more filter cells (110,120,140,150,170,180) serially coupled to one another by couplers (112,118,122,142,148,152,172,178,182), each cell including a pair of delay paths (114,116,144,146,174,176), one path having a shorter optical pathlength than the other;the first filter (100) splitting and combining odd and even sets of channels depending on a propagation direction, the first filter exhibiting complementary phase retardations corresponding with odd integer multiples of half a wavelength for each center wavelength associated with a selected one of the odd set of channels and the even set of channels and corresponding with integer multiples of a full wavelength for each center wavelength associated with a remaining one of the odd set and the even set;and the second filter (130, 160) being coupled with the first filter to filter the odd and even sets of channels with phase retardations characterised in that the phase retardations are complementary to those experienced in the first filter.
  2. 2
    The optical device of Claim 1, wherein the first and second filters each comprise:said pair of delay paths (114, 116, 144, 146, 174, 176) exhibiting an optical pathlength difference corresponding inversely with a spacing between adjacent odd channels and adjacent even channels, wherein the optical pathlength difference of the pair of delay paths of the first filter (100) differ from the optical pathlength difference for the pair of delay paths of the second (130, 160) filter by an odd integer multiple of λ/2 thereby to effect complementary polarization mode dispersions of the optical signal within the first filter (100) together with the second filter.
  3. 3
    The optical device of Claim 1, wherein the first and second filters each comprise:said pair of delay paths (114, 116, 144, 146, 174, 176) including a fast delay path and a slow delay path;and couplers (112, 116, 122, 142, 152, 172, 182) opposing ends of the pair of delay paths to asymmetrically split and combine light between the pair of delay paths.
  4. 4
    The optical device of Claim 1, wherein each of the first and second filters includes:a fundamental filter cell (110, 140, 170) including a pair of optical paths for processing the optical communications, wherein the pair of optical paths exhibit an optical pathlength difference determinative of a free spectral range substantially corresponding with a frequency spacing between adjacent odd or adjacent even channels.
  5. 5
    The optical device of Claim 1, wherein the first and second filters each include:a pair of filter cells (110, 140, 170) serially coupled to one another with a fundamental one of the pair of filter cells exhibiting a fundamental free spectral range corresponding with a spacing between adjacent odd and even channels and a harmonic one of the pair of filter cells exhibiting a harmonic free spectral range corresponding to an integer fraction of the spacing between adjacent odd or even channels.
  6. 6
    The optical device of Claim 1, wherein the first and second filters each include:two of said pairs (114, 116, 144, 146, 174, 176) of delay paths for optically processing the odd and even channels, each of the two pairs of delay paths exhibiting optical pathlength differences which correspond to a sum of a Fourier series including a fundamental frequency component corresponding with a spacing between adjacent odd or even channels;and optical couplers interlaced with the two pairs of delay paths to asymmetrically split and combine channels across each of the two pairs of delay paths to effect an adjustment of stopbands between adjacent odd channels and adjacent even channels.
  7. 7
    The optical device of Claim 6, wherein the optical couplers include at least one of polarization couplers (642, 672) which split and combine optical signals depending on a polarization thereof and intensity couplers which split and combine optical signals depending on an intensity thereof
  8. 8
    The optical device of Claim 6, wherein asymmetries of coupling in the first filter (100) and the second filter (130, 160) correspond with one another.
  9. 9
    The optical device of Claim 1, wherein the first and second filters each comprise:a birefringent crystal (610) having an optical axis normal to a propagation path of the optical signal, the birefringent crystal splitting and combining odd and even channels depending on a propagation direction and an optical pathlength difference of extraordinary and ordinary ray paths of the first filter differing from corresponding extraordinary and ordinary ray paths of the second filter by an odd integer multiple of λ/2.
  10. 10
    A method for splitting and combining add and even sets of optical signals, the method comprising:splitting and combining odd and even sets of channels depending on a propagation direction with a first filter (100) including one filter cell or more filter cells (110,120) serially coupled to one another by couplers (112,118,122), each cell including a pair of delay paths (114,116), one path having a shorter optical pathlength than the other;subjecting with the first filter (100) and even channel sets to a first set of phase retardations corresponding with odd integer multiples of half a wavelength for each center wavelength associated with a selected one of the odd set of channels and the even set of channels and corresponding with integer multiples of a full wavelength for each center wavelength associated with a remaining one of the odd set of channels and the even set of channels;and coupling a second filter (130,160) to the first filter (100), the second filter (130,160) including one filter cell or more filter cells (140,150,170,180) serially coupled to one another by couplers (142,148,152,172,178,182), each cell including a pair of delay paths (144,146,174,176), one path having a shorter optical pathlength than the other;characterised in that the method comprising subjecting with the second filter (130, 160) odd and even channel sets to a second set of phase retardations corresponding with integer multiples of a full wavelength retardation for each center wavelength associated with the selected one of the odd set of channels and the even set of channels and corresponding with odd integer multiples of a half wavelength retardation for each center wavelength associated with the remaining one of the odd set of channels and the even set of channels.
  11. 12
    The method of Claim 11, wherein each of the filtering acts further comprise:asymmetrically coupling the optical signals onto at least one pair of fast and slow delay paths to effect the broadening of the stopbands.
  12. 13
    The method of Claim 10, further comprising:filtering in the first subjecting act the selected one of the odd set of channels and the even set of channels with a first comb filter function which exhibits a primary periodicity corresponding with twice a spacing between adjacent channels and filtering the remaining one of the odd set of channels and the even set of channels with a second comb filter function which exhibits both the primary periodicity as well as a residual periodicity substantially equal to the primary periodicity and shifted in phase with respect thereto by π ;and filtering in the second subjecting act the selected one of the odd set of channels and the even set of channels with the second comb filter function and the remaining one of the odd set of channels and the even set of channels with the first comb filter function, to broaden stopbands between adjacent odd and adjacent even channels.