IP Library Granted Patent US 8,676,060
Granted Patent B2
US 8,676,060 · App. 12/678,491 · Granted Mar 18, 2014

Quadrature amplitude modulation signal generating device

Inventors: Tetsuya Kawanishi (Koganei, JP); Takahide Sakamoto (Koganei, JP); Akito Chiba (Koganei, JP); Masahiro Tsuchiya (Koganei, JP)
Assignee: National Institute of Information and Communications Technology
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,676,060
App. No.
12/678,491
Granted
Mar 18, 2014
Kind
B2
Abstract

A quadrature amplitude modulation (QAM) signal generator, which can obtain optical signals such as QAM signals without handling multilevel electrical signals, can be produced by using a plurality of parallel Mach-Zehnder modulators (MZMs), such as quadruplex parallel MZMs (QPMZM). The quadrature amplitude modulation (QAM) signal generator includes a first waveguide, a first quadrature phase-shift-keying (QPSK) signal generator provided on the first waveguide, a second waveguide connected with the first waveguide at a wave-combining point, and a second quadrature phase-shift-keying (QPSK) signal generator provided on the second waveguide.

Claims (18)

1. A quadrature amplitude modulation (QAM) signal generating method

the method comprising:

combining an output signal from a first QPSK signal generator and an output signal from a second QPSK signal generator, wherein the output signal from the second QPSK signal generator is a half of an amplitude of the output signal from the first QPSK signal generator, wherein each of a main Mach-Zehnder waveguide of the first QPSK signal generator and a main Mach-Zehnder waveguide of the second QPSK signal generator has a first bias electrode, a second bias electrode, and a third bias electrode, wherein the first bias electrode adjusts a bias voltage applied to a first arm of the main Mach-Zehnder waveguide, wherein the second bias electrode adjusts a bias voltage applied to a second arm of the main Mach-Zehnder waveguide, wherein the third bias electrode applies a bias voltage to signals that go though the first arm and the second arm of the main Mach-Zehnder waveguide and are combined at an wave-combining part of the main Mach-Zehnder waveguide; and

controlling bias signals applied to the first bias electrode, the second bias electrode, and the third bias electrode, so that four sub Mach-Zehnder waveguides allow a phase difference of signals propagating through the first arm and the second arm before being combined with each other to be 0° or 180°, so that the main Mach-Zehnder waveguide allows a phase difference between signals propagating through the first arm and the second arm before being combined with each other to be 90° or 270°, and so that the first QPSK signal generator and the second QPSK signal generator allow a phase difference between signals propagating through the first waveguide and the second waveguide before being connected with each other at the wave-combining point to be 0° or 180°.

2. A quadrature amplitude modulation (QAM) signal generating method

the method comprising:

generating a first amplitude-shift-keying (ASK) signal which is a quadruple ASK signal at a first main Mach-Zehnder waveguide;

generating a second amplitude-shift-keying (ASK) signal which is a quadruple ASK signal in a second main Mach-Zehnder waveguide, the second ASK signal having a phase difference of 90° with respect to the first ASK signal; and

combining the first ASK signal and the second ASK signal.

3. The QAM signal generating method as claimed in claim 2 ,

wherein the amplitude of the output signal from the second QPSK signal generator is smaller than the amplitude of the output signal from the first QPSK signal generator.

4. The QAM signal generating method as claimed in claim 2 ,

wherein each of the main Mach-Zehnder waveguide of the first QPSK signal generator and the main Mach-Zehnder waveguide of the second QPSK signal generator has a first bias electrode, a second bias electrode, and a third bias electrode,

wherein the first bias electrode adjusts a bias voltage applied to a first arm of the main Mach-Zehnder waveguide;

wherein the second bias electrode adjusts a bias voltage applied to a second arm of the main Mach-Zehnder waveguide;

wherein the third bias electrode applies a bias voltage to the signals that go though the first arm and the second arm of the main Mach-Zehnder waveguide and are combined at an wave-combining part of the main Mach-Zehnder waveguide,

the method further comprising:

controlling bias signals to be applied to the first bias electrode, the second bias electrode, and the third bias electrode, so that four sub Mach-Zehnder waveguides allow a phase difference between signals propagating through the first arm and the second arm before being combined to be 180°, so that the main Mach-Zehnder waveguide allows a phase difference between signals propagating through the first arm and the second arm before being combined with each other to be 0° or 180°, and so that the first QPSK signal generator and the second QPSK signal generator allow a phase difference between signals propagating through the first waveguide and the second waveguide before being connected with each other at the wave-combining point to be 90° or 270°.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE'S CITY OF RESIDENCE PREVIOUSLY RECORDED AT REEL 024090, FRAME 0140. Recorded Apr 26, 2010
From: KAWANISHI, TETSUYA; SAKAMOTO, TAKAHIDE; TSUCHIYA, MASAHIRO; CHIBA, AKITO
To: NATIONAL INSTITUTE OF INFORMATION AND COMMUNICATIONS TECHNOLOGY
Reel/Frame 024292/0764 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2010
From: KAWANISHI, TETSUYA; SAKAMOTO, TAKAHIDE; CHIBA, AKITO; TSUCHIYA, MASAHIRO
To: NATIONAL INSTITUTE OF INFORMATION AND COMMUNICATIONS TECHNOLOGY
Reel/Frame 024090/0140 →
Priority Claims (2)
JP 2007-240478 · Sep 18, 2007 · national
JP 2007-285782 · Nov 2, 2007 · national
Continuity (1)
Related Publication 20100202785A1 · Aug 12, 2010