CA2000997C

Heterodyne receiver for coherent optical communication

Abstract

Abstract of the Disclosure After mixing the signal light and the local oscillattion light with a mixing circuit, two intersecting polarization components are divided by a polarization splitter and respective components are subjected to heterodyne detection by optical receivers. Thereafter, in an electric signal stage, the intermediate frequency signal outputted from the optical receivers are applied to a 90-degree hybrid coupler and the output signal from one of the output ports is demodulated by a demodulator. On the other hand, an intermediate frequency signal outputted from the optical receivers are subjected to a subtraction to provide a principal axis angle monitor signal for the signal light. The signal outputted from the output port from the 90-degree hybrid coupler is used to monitor the elliptic ratio of the signal light and these monitor signals are applied to the polarization control circuit. The polarization control circuit drives the polarization operation apparatus based on said monitor signal to control the polarization state (i.e. a principal axis angle and the elliptic ratio) of the signal light to achieve the optimum state.

Term

Term ended

Expired 19 October 2009, 16.9 years ago.

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

34 claims: 4 independent, 30 dependent

  1. 1
    24 THE EMBODIMENTS OF THE INVENTION IN WHICH AN EXCLUSIVE PROPERTY OR PRIVILEGE IS CLAIMED ARE DEFINED AS FOLLOWS:1. A heterodyne receiver for coherent optical communication comprising: an optical local oscillating circuit for producing a local oscillation light;a polarization operating apparatus for varying a polarization state of a signal light transmitted through a light transmission path;a mixing circuit responsive to said optical local oscillating circuit and said polarization operating apparatus for mixing the signal light, with the local oscillation light, said mixing circuit outputting at least one output light;a polarization splitter responsive to said mixing circuit for separating an output light from said mixing circuit into polarization components;a plurality of optical receivers responsive to said polarization splitter for detecting signals with respect to polarization components obtained by said polarization splitter to provide intermediate frequency signals;a 90-degree hybrid coupler responsive to said optical receivers for delaying the phase of the intermediate frequency signals by 90-degrees to produce first and second delayed signals, for adding the first delayed signal to one intermediate frequency signal to produce a first sum and for adding the second delayed signal to another intermediate frequency signal to produce a second sum;a demodulator responsive to said 90-degree hybrid coupler for demodulating the second sum outputted from said 90-degree hybrid coupler;and a polarization control circuit for controlling the polarization state of an output of said heterodyne receiver, by driving said polarization operating apparatus based on the intermediate frequency signals output from said optical receivers and the first sum output of said 90-degree hybrid coupler.
  2. 14
    A heterodyne receiving apparatus for use in coherent optical communication comprising:an optical local oscillating circuit for oscillating a local oscillation light, polarization operating apparatus for varying a polarization state of a signal light transmitted through an optical transmission path, a mixing circuit responsive to said optical local oscillating circuit and said polarization operating apparatus for mixing the signal light with the local oscillation light to produce a mixed light and for dividing the mixed light into first and second light signals having a 180-degree phase difference, a first polarization splitter responsive to said mixing circuit for dividing the first light signal from the mixing circuit into first and second orthogonal polarization components, first and second optical receivers responsive to said first polarization splitter for performing heterodyne detection of signals representing the first and second orthogonal polarization components obtained from the first polarization splitter and for respectively outputting first and second intermediate frequency signals, a second polarization splitter responsive to said mixing circuit for dividing the first light signal from the mixing 29 circuit into third and fourth orthogonal polarization components, third and fourth optical receivers responsive to said second polarization splitter for performing heterodyne detection of signals representing the third and fourth orthogonal polarization components obtained from the second polarization splitter and for respectively outputting third and fourth intermediate frequency signals, a first subtractor responsive to said first and third light receivers for subtracting the first intermediate frequency signal output of the first optical receiver from the third intermediate frequency signal output of the third optical receiver to produce a fifth intermediate frequency signal, a second subtractor responsive to said second and fourth light receivers for subtracting the second intermediate frequency signal output of the second light receiver from the fourth intermediate frequency signal output of the fourth light receiver to produce a sixth intermediate frequency signal, a 90-degree hybrid coupler responsive to said first and second subtractors for delaying the phase of the fifth and sixth intermediate frequency signals by 90-degrees to produce, respectively first and second delayed signals, for adding the first delayed signal to the sixth intermediate frequency signal to produce a second sum and for adding the second delayed signal to the fifth intermediate frequency signal to produce a first sum;a demodulator responsive to said 90-degree hybrid coupler for demodulating the second sum outputted from said 90-degree hybrid coupler, and a polarization control circuit for driving the polarization operating apparatus based on the fifth and sixth intermediate frequency signals output from said first and second subtractors and the first sum output from said 90-degree hybrid coupler to control the polarization status of the signal light, thereby constituting a dual balanced optical receiver.
  3. 26
    A heterodyne receiver for use in optical communication, comprising:an optical local oscillating circuit for oscillating a local oscillator and outputting a local oscillation light, a polarization operating apparatus for varying the polarization state of a signal light transmitted through an optical light transmission line, a mixing circuit responsive to said optical local oscillating circuit and said polarization operating apparatus for mixing the signal light with the local oscillation light output from said optical local oscillation circuit to produce a mixed light, a polarization splitter responsive to said mixing circuit for separating the mixed light output from said mixing circuit into two kinds of polarization components, an optical receiver responsive to said polarization splitter for performing heterodyne detection on the two kinds of polarization components, to produce intermediate frequency signals, a demodulator for demodulating an intermediate frequency signal output from said optical receiver, a differential amplifier responsive to said optical receiver for subtracting two intermediate frequency signals output from said optical receiver and outputting a principal axis angle signal to said polarization control circuit for monitoring the principal axis angle of the signal light, a polarization control circuit for controlling said polarization state of the signal light by driving said polarization operating apparatus based on the principal axis angle 34 signal output from said differential amplifier and a monitoring signal, derived from the intermediate frequency signals outputted from the optical receiver, the monitoring signal monitoring a polarization state of said signal light, and a 90-degree hybrid coupler including a first input port and a second input port responsive to said optical receiver, said 90degree hybrid coupler for delaying by 90-degrees the phase of an intermediate frequency signal input to the first input port to produce a first delayed signal and for adding the first delayed signal to another intermediate frequency signal received by the second input port to produce a second sum, said 90-degree hybrid coupler for delaying by 90-degrees the phase of the intermediate frequency signal received by the second input port to produce a second delayed signal and for adding the second delayed signal to the intermediate frequency signal received by the first input port to produce a first sum.
  4. 34
    36 a first power monitor operatively connected to said 90-degree hybrid coupler and said polarization control circuit responsive to the first sum of said 90-degree hybrid coupler, and a second power monitor operatively connected to said optical receiver and said differential amplifier responsive to the intermediate frequency signals.