Traveling wave modulator
In an embodiment, an optical modulator comprising an optical path having at least one optical waveguide, and an impedance formed along the optical path, wherein the impedance comprises a capacitance that increases along the optical path. In another embodiment, a method for increasing bandwidth of an optical modulator by applying a first voltage applied to a beginning of a resistive line. and applying a second voltage applied to an end of the resistive line; wherein the first voltage is less than the second voltage.
1. An optical modulator comprising:
an optical path having at least one optical waveguide; and
an impedance formed along the optical path, wherein the impedance comprises a capacitance per unit length that increases along the optical path.
2. The optical modulator of claim 1 , wherein the capacitance is formed by part of one or more pn-junctions.
3. The optical modulator of claim 2 , wherein the impedance comprises a resistance that increases along the optical path.
4. The optical modulator of claim 3 further comprising a resistive element formed along the optical path.
5. The optical modulator of claim 4 further comprising a resistive line; wherein the resistive line has a first voltage applied to a beginning of the resistive line and wherein the resistive line has a second voltage applied to an end of the resistive line; wherein the first voltage is less than the second voltage.
6. The optical modulator of claim 5 wherein the change in resistance is created by varying a doping concentration in a waveguide.
7. The optical modulator of claim 4 wherein the resistance is formed by part of one or more pn-junctions.
8. The optical modulator of claim 3 wherein the change in resistance is created by increasing doping in the waveguide.
9. The optical modulator of claim 8 wherein ends of the resistive lines are metal lines and are connected by a resistor.
10. The optical modulator of claim 3 wherein the change in resistance is created by locating a doped region of the waveguide closer to the guided optical wave by 0.1 to 1.0 microns.