US20020171933A1

Polarization-dependent retroreflection mirror device

Claim Score by NHIP

Read claim 15, the broadest

Abstract

Conventional retroreflection mirrors in the form of right angle prisms are quite sensitive to beam position and beam angle errors. Manufacturing and assembly tolerances are also a cause of concern in conventional devices. Accordingly, the present invention solves these aforementioned problems by providing a retroreflection device comprising: a beam director, preferably in the form of a Wollaston prism; a polarization rotator, preferably in the form of a quarter wave plate; and a flat reflective surface, such as a plane mirror. The device of the present invention is far less sensitive to beam angle alignment and is completely independent of the beam position. The present invention is particularly useful as a beam splitter for directing orthogonally polarized beams of light back along parallel paths in an interleaver apparatus.

US20020171933A1, drawing sheet 1
Sheet 1 of 13

Term

Term ended

Projected expiry passed 18 May 2021, 5.4 years ago.

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20 claims: 5 independent, 15 dependent

  1. 1
    A retroreflection mirror device comprising:beam-directing means including a first wedge having a first optical axis, and a second wedge having a second optical axis that is perpendicular to the first optical axis, the beam directing means for receiving a first optical signal having a first polarization along a first incident axis, and for directing the first optical signal outwardly therefrom at a first angle from a first launch axis, the first launch axis being parallel to the incident axis;polarization rotating means for effectively rotating the polarization of the first optical signal by 90°;and a reflector for directing the first optical signal back through the beam-directing means;whereby after passing through the beam-directing means a second time the first optical signal exits the beam-directing means along a first output axis substantially parallel to the first incident axis.
  2. 11
    A deinterleaver apparatus comprising:a first port for inputting a first polarized optical signal, which comprises a second optical signal with a first subset of channels and a third optical signal with a second subset of channels;a second port for outputting the second optical signal;a third port for outputting the third optical signal;a birefringent assembly optically coupled to the first, second and third ports, whereby, after the first optical signal makes a first pass through the birefringent assembly along a first path, the second optical signal exits the birefringent assembly with a polarization orthogonal to the polarization of the third optical signal;beam-directing means including a first wedge having a first optical axis, and a second wedge having a second optical axis that is perpendicular to the first optical axis, the beam directing means for receiving the first optical signal along the first path, and for directing the second and third optical signals outwardly therefrom with a launch angle therebetween;polarization rotating means for effectively rotating the polarization of the second and third optical signals by 90°;and a reflector for directing the second and third optical signals back through the beam-directing means;whereby, after passing through the beam-directing means a second time, the second and third optical signals: exit the beam-directing means along second and third paths, respectively, which are substantially parallel to the first path;pass through the birefringent assembly for a second time;and exit via the second and third ports, respectively.
  3. 12
    An interleaver apparatus comprising:a first port for outputting a first polarized optical signal, which comprises a second optical signal with a first subset of channels and a third optical signal with a second subset of channels;a second port for inputting the second optical signal;a third port for inputting the third optical signal;a birefringent assembly optically coupled to the first, second and third ports, whereby, after the second and third optical signals make a first pass through the birefringent assembly along second and third paths, the second optical signal exits the birefringent assembly with a polarization orthogonal to the polarization of the third optical signal;beam-directing means including a first wedge having a first optical axis, and a second wedge having a second optical axis that is perpendicular to the first optical axis, the beam directing means for receiving the second and third optical signals along the second and third paths, respectively, for directing the second optical signal outwardly therefrom at a first angle from a first launch axis, and for directing the third optical signal outwardly therefrom at a second angle from a second launch axis, the first and second launch axes being parallel to the second and third paths;polarization rotating means for effectively rotating the polarization of the second and third optical signals by 90°;and a reflector for directing the second and third optical signals back through the beam-directing means;whereby, after passing through the beam-directing means a second time, the second and third optical signals: exit the beam-directing means together along a first path, which is substantially parallel to the second and third paths;pass through the birefringent assembly for a second time;and exit via the first port.
  4. 15
    Broadest claimClaim Score 61, broad(NHIP)The apparatus according to claims 13 , further comprising:a lens at each port for collimating incoming signals or for focusing outgoing signals;beam splitting/combining means at each port for separating incoming signals into pairs of polarized sub-beams, or for combining outgoing pairs of polarized sub-beams;and sub-beam rotating means for rotating the polarization of at least one the sub-beams in each pair of sub-beams, whereby in each pair of incoming sub-beams both sub-beams have parallel polarizations for entry into the polarization beam splitter or whereby the sub-beams in each pair of outgoing sub-beams are orthogonal for entry into the beam splitting/combining means.
  5. 16
    The apparatus according to claims 14 , further comprising:a lens at each port for collimating incoming signals or for focusing outgoing signals;beam splitting/combining means at each port for separating incoming signals into pairs of polarized sub-beams, or for combining outgoing pairs of polarized sub-beams;and sub-beam rotating means for rotating the polarization of at least one the sub-beams in each pair of sub-beams, whereby in each pair of incoming sub-beams both sub-beams have parallel polarizations for entry into the polarization beam splitter or whereby the sub-beams in each pair of outgoing sub-beams are orthogonal for entry into the beam splitting/combining means.