Thermally enhanced fast optical phase shifter
10795188 ยท 2020-10-06
Assignee
Inventors
Cpc classification
G02F2203/21
PHYSICS
International classification
Abstract
An optical phase shifter includes, in part, a waveguide, a heating element adapted to heat the waveguide, and a cooling element adapted to cool the waveguide. The heating element may be integrated within a substrate in which the waveguide is formed. The cooling element is biased to maintain the temperature of the waveguide within a predefined range characterized by a substantially high gradient of the thermal constant of the waveguide. The optical phase shifter may optionally include a substrate on which the waveguide is positioned. The substrate may include, in part, through substrate vias for supplying electrical signals to the cooling element. A control circuit supplies electrical signals to the heating and cooling elements. The control circuit may maintain the cooling element and heating element on concurrently. Alternatively, the control circuit may turn off the cooling element before turning on the heating element.
Claims
1. An optical phase shifter comprising: a waveguide; a heating element adapted to supply heat to the waveguide and positioned along a first side of the waveguide; and a cooling element adapted to cool the waveguide and positioned along a second side of the waveguide, wherein said heating element is integrated within a substrate in which the waveguide is formed.
2. The phase shifter of claim 1 wherein said cooling element is biased to maintain the temperature of the waveguide within a predefined range.
3. The phase shifter of claim 2 wherein said predefined range is characterized by a substantially high gradient of the thermal constant of the waveguide.
4. The optical phase shifter of claim 1 further comprising a substrate on which the waveguide is positioned, said substrate comprising through substrate vias for supplying electrical signals to the cooling element.
5. The optical phase shifter of claim 1 further comprising a control circuitry adapted to supply and control electrical signals to the heating and cooling elements.
6. The optical phase shifter of claim 5 wherein said control circuitry maintains the cooling element and heating elements on concurrently.
7. The optical phase shifter of claim 5 wherein said control circuitry turns off the cooling element when the control circuitry turns on the heating element.
8. A method of shifting a phase of an optical signal travelling through a waveguide, the method comprising: cooling the waveguide from a first side of the waveguide to maintain the temperature of the waveguide within a predefined range; heating the waveguide from a second side of the waveguide while the temperature of the waveguide remains within the predefined range; and forming the waveguide and a heating element heating the waveguide within a semiconductor substrate.
9. The method of claim 8 wherein said predefined range is characterized by a substantially high gradient of the thermal constant of the waveguide.
10. The method of claim 8 further comprising: positioning the waveguide on a substrate comprising through substrate vias for supplying electrical signals to the cooling element.
11. The method of claim 8 further comprising: supplying electrical signals to the heating and cooling elements from a control circuit.
12. The method of claim 8 further comprising: heating and cooling the waveguide concurrently.
13. The method of claim 8 further comprising: heating the waveguide during a time period when the waveguide is not being cooled.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present application contains at least one drawing executed in color. Copies of this patent application with color drawing(s) will be provided by the Office upon request and payment of the necessary fee.
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DETAILED DESCRIPTION OF THE INVENTION
(7) As is well known, different materials have different thermo-optic coefficients. For example, the thermo-optic coefficient, d.sub.n/d.sub.T for silicon at 1550 nm wavelength is about 1.8610-4 K, where n is the refractive index and T is temperature in Kelvin. By changing the local temperature of a waveguide, that may be formed using Silicon or other materials, the index of refraction of the material from which the waveguide is made changes, thus resulting in effective optical phase shift across the waveguide.
(8) While fast phase shifters with low power requirements are desirable, it is difficult to achieve high frequency bandwidth for a low power design. This can be seen from power-speed relationship defined by:
P=H.Math..Math.T(1)
(9) In equation (1), H is the heat capacity, is the thermal time constant, and T and P are respectively the change in temperature and power dissipation required to achieve a phase shift. Even if the power dissipation is relatively high, the relatively large thermal time constant of a thermal phase shifter makes the modulation bandwidth limited to sub-MHz.
(10) Plots 10 and 12 of
(11) In accordance with embodiments of the present invention, a waveguide is adapted to include both a heater and a cooler so as to change the index of refraction of a thermal phase shifter, such as a waveguide, by both heating and cooling the waveguide, as described further below.
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(13) The voltage applied to cooling element 80 is selected so as to maintain the temperature of the waveguide within a range that has a relatively high gradient associated with the waveguide's thermal constant. For example, assume waveguide 50 has a thermal time constant characterized by plot 10 as shown in
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(15) In one embodiment, the cooling element 70 may be turned off when the heating element 60 is turned on. Cooling element 70 may be continuously or periodically biased to keep the local temperature of the waveguide low and within the desired range where the thermal time constant of the waveguide is nearly the highest. In one embodiment (not shown), the heating element is integrated within the same Semiconductor (e.g., Silicon) substrate in which the waveguide is formed
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(18) The above embodiments of the present invention are illustrative and not limitative. Embodiments of the present invention are not limited by the type of waveguide, heating element or cooling element. Embodiments of the present invention are not limited by the wavelength of the optical signal, nor are they limited by the type of substrate, semiconductor or otherwise, in which the waveguide and the heating element may be formed. Other additions, subtractions or modifications are obvious in view of the present disclosure and are intended to fall within the scope of the appended claims.