Mach-Zehnder optical modulator with embedded active elements
US-9482925-B2 · Nov 1, 2016 · US
US10663770B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10663770-B2 |
| Application number | US-201816003051-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 7, 2018 |
| Priority date | Jun 3, 2016 |
| Publication date | May 26, 2020 |
| Grant date | May 26, 2020 |
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A device and method of optical equalization using an optical modulator is provided. An electrical modulation signal is split into a first modulation signal and a second modulation signal. The second modulation signal is delayed relative to the first modulation signal. An amplitude of the second modulation signal is attenuated relative to the first modulation signal. The first modulation signal is applied to a first waveguide segment of the optical modulator. The second modulation signal that is delayed and attenuated relative to the first modulation signal is applied to a second waveguide segment of the optical modulator. Both the applied first and second modulation signals generate a feed-forward equalized optical signal that is recombined in the optical domain.
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What is claimed is: 1. An optical communication system, comprising: an optical modulator device including a first and a second waveguide segment, which is configured to modulate an incident optical signal; and a feed-forward equalization circuit including a first tap and a second tap, wherein: the first tap is coupled to the first segment of the optical modulator, the second tap is coupled to the second segment of the optical modulator, the first tap is configured to generate a first modulation signal, the second tap is configured to generate a second modulation signal, the first modulation signal is attenuated relative to the second modulation signal, the first and the second modulation signals are time-delayed with respect to each other, the second tap comprises a plurality of paths, each path driving a corresponding segment of the second segment, each corresponding segment of the second segment in the second tap receives a similar signal having a same tap weight, phase, and delay, a recombination of the first tap and the second tap is in the optical domain, and each corresponding segment of the second segment is on a same arm of the optical modulator. 2. The optical communication system of claim 1 , wherein the first and second modulation signals are inverted with respect to each other. 3. The optical communication system of claim 1 , wherein the optical modulator comprises a Mach Zehnder Modulator (MZM) having the first arm and the second arm, the first arm including the first and the second segment. 4. The optical communication system of claim 1 , wherein the optical modulator comprises an Electro-Absorption Modulator (EAM) having an electro-absorption region including the first and the second segment. 5. The optical communication system of claim 1 , wherein each path generates a change in a refractive index in its corresponding segment that it is driving. 6. The optical communication system of claim 1 , wherein a delay and amplitude relations between the first tap and the second tap generate an equalization signal, which is encoded onto a phase or amplitude of the incident optical signal passing through the optical modulator. 7. The optical communication system of claim 1 , wherein: the first modulation signal is complementary, the second modulation signal is complementary, and each of the first and second modulation signals is operative to control the optical modulator device in a push-pull configuration. 8. The optical communication system of claim 1 , wherein the first and second modulation signals are time-delayed with respect to each other to compensate for an optical delay between the first and second waveguide segments. 9. The optical communication system of claim 1 , wherein the feed-forward equalization circuit comprises a pre-amplifier that is shared between the first tap and the second tap. 10. The optical communication system of claim 1 , wherein the first tap of the feed-forward equalization circuit comprises: a tunable delay buffer device coupled to an output of a shared pre-amplifier; a tunable tap weight buffer device coupled to an output of the tunable delay buffer device; and a first output driver having an input coupled to the output of the tunable delay buffer device and an output coupled to the first segment of the optical modulator. 11. The optical communication system of claim 10 , wherein the second tap of the feed-forward equalization circuit comprises a second tunable delay buffer device coupled to the output of the shared pre-amplifier. 12. The optical communication system of claim 11 , wherein the second tap of the feed-forward equalization circuit further comprises a second output driver having an input coupled to the output of the second tunable delay buffer device and an output coupled to the second segment of the optical modulator. 13. The optical communication system of claim 12 , wherein the second tap of the feed-forward equalization circuit further comprises an inverter coupled between the second tunable delay buffer device and the second output driver. 14. The optical communication system of claim 12 , wherein the first and second output drivers are in BiCMOS technology. 15. A method of optical equalization using an optical modulator, comprising: splitting an electrical modulation signal into a first modulation signal and a second modulation signal; delaying the second modulation signal relative to the first modulation signal; attenuating an amplitude of the second modulation signal relative to the first modulation signal; applying the first modulation signal to a first waveguide segment of the optical modulator for providing optical modulation; and applying the second modulation signal that is delayed and attenuated relative to the first modulation signal, to a second waveguide segment of the optical modulator, splitting the electrical modulation signal into a plurality of additional modulation signals, each additional modulation signal driving a corresponding segment of the second segment, wherein: both the applied first and second modulation signals generate a feed-forward equalized optical signal that is recombined in the optical domain, the first modulation signal is driven by a first tap of the optical modulator, the second and the additional modulation signals are driven by a second tap of the optical modulator, and each corresponding segment of the second segment in the second tap receives a similar signal having a same tap weight and delay. 16. The method of claim 15 , further comprising inverting the second modulation signal upon delaying the second modulation signal relative to the first modulation signal. 17. The method of claim 15 , wherein the optical modulator comprises a Mach Zehnder Modulator (MZM) having a first arm and a second arm, the first arm including the first and the second waveguide segments. 18. The method of claim 15 , wherein the optical modulator comprises an Electro-Absorption Modulator (EAM) having an electro-absorption region including the first and the second waveguide segments. 19. The method of claim 15 , wherein each modulation signal generates a change in a refractive index in its corresponding waveguide segment. 20. The method of claim 15 , wherein the feed-forward equalized optical signal equalization signal, is encoded onto a phase or amplitude of an incident optical signal passing through the optical modulator based on a delay and amplitude relations between the first and second modulation signals.
the optical waveguides being made of semiconducting material · CPC title
Digital intensity or amplitude modulation · CPC title
Operation of devices; Circuit arrangements, not otherwise provided for in this subclass · CPC title
using a feed-forward signal generated by analysing the optical or electrical input · CPC title
Details of coding or modulation · CPC title
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