IP Library Patent Application 12160290
Patent Application
App. No. 12/160,290

ANGLE MODULATOR

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Patent No.
US None
App. No.
12/160,290
Abstract

An angle modulator having an excellent noise characteristic and an excellent distortion characteristic independent of an unwanted wave component of an optical modulation signal is provided. The angle modulator ( 10 ) includes an optical SSB modulation section ( 103 a ), an optical SSB-SC modulation section ( 104 a ), and an optical angle modulation section ( 105 ). By performing intensity modulation on an output signal of the optical SSB modulation section ( 103 a ) at the optical SSB-SC modulation section ( 104 a ), an unwanted angle modulated signal is prevented from overlapping with an angle modulated signal outputted from an optical detection section ( 107 ). Further, by a filter ( 108 ) filtering only an angle modulated signal component which does not include the unwanted wave component among the angle modulated signal components outputted from the optical detection section ( 107 ), a distortion characteristic after angle demodulation can be prevented from deteriorating. Thus, the angle modulator according to the present invention can output an angle modulated signal having an excellent noise characteristic and an excellent distortion characteristic.

Claims (88)

1 . An angle modulator for converting an input signal into an angle modulated signal, the angle modulator comprising:

a light source;

an optical branching section for branching light outputted from the light source into light propagating along a first path and light propagating along a second path;

a first optical intensity modulation section provided on the first path for performing intensity modulation on inputted light with a second electric signal of a frequency fc 2 ;

a first optical angle modulation section provided on the second path for performing angle modulation on inputted light with an inputted signal;

an optical multiplexing section for multiplexing the light propagating along the first path and the light propagating along the second path at ends of the first path and the second path;

a second optical intensity modulation section provided in a stage prior to either the first optical intensity modulation section or the first optical angle modulation section for performing intensity modulation on inputted light with a first electric signal of a frequency fc 1 different from the frequency fc 2 , and outputting intensity modulated light; and

an optical detection section having a square-law detection characteristic for converting an optical signal outputted from the optical multiplexing section into an angle modulated signal.

2 . The angle modulator according to claim 1 , wherein

the second optical intensity modulation section is provided in a stage prior to the first optical intensity modulation section for performing optical SSB modulation on inputted light, and

the first optical intensity modulation section performs optical SSB-SC modulation on optical SSB modulated light.

3 . The angle modulator according to claim 2 , wherein

where a bandwidth of an optical signal outputted from the optical angle modulation section is B,

| fc 1− fc 2|> B/ 2 and

2 ×fc 2 −fc 1> B

are satisfied.

4 . The angle modulator according to claim 1 , wherein

the second optical intensity modulation section is provided in a stage prior to the first optical intensity modulation section for performing optical SSB-SC modulation on inputted light, and

the first optical intensity modulation section performs optical SSB modulation on optical SSB-SC modulated light.

5 . The angle modulator according to claim 4 , wherein

where a bandwidth of an optical signal outputted from the optical angle modulation section is B,

| fc 1− fc 2|> B/ 2 and

2× fc 2− fc 1> B

are satisfied.

6 . The angle modulator according to claim 1 , wherein the second optical intensity modulation section is provided in a stage prior to the first optical angle modulation section.

7 . The angle modulator according to claim 6 , wherein

the first optical intensity modulation section performs optical SSB-SC modulation on inputted light,

the second optical intensity modulation section performs optical SSB-SC modulation on inputted light, and

the first optical angle modulation section performs angle modulation on optical SSB-SC modulated light with the input signal.

8 . The angle modulator according to claim 7 , further comprising an optical delay adjustment section provided in a stage after the first optical intensity modulation section for delaying propagation of the light propagating along the first path such that a propagation delay amount of the light propagating along the first path is equalized with a propagation delay amount of the light propagating along the second path.

9 . The angle modulator according to claim 6 , wherein

the second optical intensity modulation section includes:

a first optical DSB modulation section for performing optical DSB modulation on the branched light propagating along the second path with the first electric signal and with an electric signal obtained by shifting a phase of the first electric signal by 180°; and

a second optical DSB modulation section for performing optical DSB modulation on the branched light propagating along the second path with an electric signal obtained by shifting the phase of the first electric signal by 90° and with an electric signal obtained by further shifting the phase of the first electric signal by 180° after shifting the phase of the first electric signal by 90°, and

the first optical angle modulation section performs optical angle modulation on light outputted from the first optical DSB modulation section and light outputted from the second optical DSB modulation section with the input signal, respectively, and multiplexes light obtained by performing optical angle modulation on the light outputted from the first optical DSB modulation section and light obtained by performing optical angle modulation on the light outputted from the second optical DSB modulation section.

10 . The angle modulator according to claim 6 , further comprising:

a phase inversion section for branching the input signal into an in-phase signal having the same phase as a phase of the input signal and a reverse-phase signal obtained by inverting the phase of the input signal; and

a second optical angle modulation section provided in a stage after the first optical intensity modulation section for performing optical angle modulation on inputted light with an inputted signal,

wherein the first optical angle modulation section performs angle modulation on inputted light with the in-phase signal.

11 . The angle modulator according to claim 10 , wherein

the first optical intensity modulation section performs optical SSB-SC modulation on inputted light, and

the second optical intensity modulation section performs optical SSB-SC modulation on inputted light.

12 . The angle modulator according to claim 10 , wherein

the second optical intensity modulation section includes:

a first optical DSB modulation section for performing optical DSB modulation on the branched light propagating along the second path with the first electric signal and with an electric signal obtained by shifting a phase of the first electric signal by 180°; and

a second optical DSB modulation section for performing optical DSB modulation on the branched light propagating along the second path with an electric signal obtained by shifting the phase of the first electric signal by 90° and with an electric signal obtained by further shifting the phase of the first electric signal by 180° after shifting the phase of the first electric signal by 90°,

the first optical intensity modulation section includes:

a third optical DSB modulation section for performing optical DSB modulation on the branched light propagating along the first path with the second electric signal and with an electric signal obtained by shifting a phase of the second electric signal by 180°; and

a fourth optical DSB modulation section for performing optical DSB modulation on the branched light propagating along the first path with an electric signal obtained by shifting the phase of the second electric signal by 90° and with an electric signal obtained by further shifting the phase of the second electric signal by 180° after shifting the phase of the second electric signal by 90°,

the first optical angle modulation section performs optical angle modulation on light outputted from the first optical DSB modulation section and light outputted from the second optical DSB modulation section with the in-phase signal, respectively, and multiplexes light obtained by optical angle modulation on the light outputted from the first optical DSB modulation section and light obtained by optical angle modulation on the light outputted from the second optical DSB modulation section, and

the second optical angle modulation section performs optical angle modulation on light outputted from the third optical DSB modulation section and light outputted from the fourth optical DSB modulation section with the reverse-phase signal, respectively, and multiplexes light obtained by performing optical angle modulation on the light outputted from the third optical DSB modulation section and light obtained by performing optical angle modulation on the light outputted from the fourth optical DSB modulation section.

13 . The angle modulator according to claim 7 , wherein

where among angle modulated signals outputted from the optical detection section, a bandwidth of an angle modulated signal having a center frequency of |fc 1 −fc 2 | is B 1 and a bandwidth of an angle modulated signal having a center frequency of fc 1 is B 2 ,

when fc1<fc2,

| fc 1− fc 2|≧ B 1/2 and

| fc 1− fc 2|+ B 1/2< fc 1− B 2/2

are satisfied.

14 . The angle modulator according to claim 7 , wherein

where among angle modulated signals outputted from the optical detection section, a bandwidth of an angle modulated signal having a center frequency of |fc 1 −fc 2 | is B 1 and a bandwidth of an angle modulated signal having a center frequency of fc 2 is B 3 ,

when fc1>fc2,

| fc 1− fc 2|≧ B 1/2 and

| fc 1− fc 2|+ B 1/2< fc 2− B 3/2

are satisfied.

15 . The angle modulator according to claim 1 , further comprising a filter for extracting a signal component in a frequency band including a frequency |fc 1 −fc 2 | from the angle modulated signal outputted from the optical detection section.

16 . The angle modulator according to 8 , wherein

where among angle modulated signals outputted from the optical detection section, a bandwidth of an angle modulated signal having a center frequency of |fc 1 −fc 2 | is B 1 and a bandwidth of an angle modulated signal having a center frequency of fc 1 is B 2 ,

when fc1<fc2,

| fc 1− fc 2|≧ B 1/2 and

| fc 1− fc 2|+ B 1/2< fc 1− B 2/2

are satisfied.

17 . The angle modulator according to 9 , wherein

where among angle modulated signals outputted from the optical detection section, a bandwidth of an angle modulated signal having a center frequency of |fc 1 −fc 2 | is B 1 and a bandwidth of an angle modulated signal having a center frequency of fc 1 is B 2 ,

when fc1<fc2,

| fc 1− fc 2|≧ B 1/2 and

| fc 1− fc 2|+ B 1/2< fc 1− B 2/2

are satisfied.

18 . The angle modulator according to claim 8 , wherein

where among angle modulated signals outputted from the optical detection section, a bandwidth of an angle modulated signal having a center frequency of |fc 1 −fc 2 | is B 1 and a bandwidth of an angle modulated signal having a center frequency of fc 2 is B 3 ,

when fc1>fc2,

| fc 1− fc 2|≧ B 1/2 and

| fc 1− fc 2|+ B 1/2< fc 2− B 3/2

are satisfied.

19 . The angle modulator according to claim 9 , wherein

where among angle modulated signals outputted from the optical detection section, a bandwidth of an angle modulated signal having a center frequency of |fc 1 −fc 2 | is B 1 and a bandwidth of an angle modulated signal having a center frequency of fc 2 is B 3 ,

when fc1>fc2,

| fc 1− fc 2|≧ B 1/2 and

| fc 1− fc 2|+ B 1/2< fc 2− B 3/2

are satisfied.

Assignments (2)
CHANGE OF NAME Recorded Nov 3, 2008
From: MATSUSHITA ELECTRIC INDUSTRIAL CO., LTD.
To: PANASONIC CORPORATION
Reel/Frame 021779/0851 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 17, 2008
From: OHIRA, TOMOAKI; MASUDA, KOUICHI; FUSE, MASARU; NIIHO, TSUTOMU
To: MATSUSHITA ELECTRIC INDUSTRIAL CO., LTD.
Reel/Frame 021541/0347 →