IP Library Granted Patent US 12681341
Granted Patent B2
US 12681341 · App. 18/245,977 · Granted Jul 14, 2026

Optical waveguide element, optical modulator, optical modulation module, and optical transmission device

Inventors: Norikazu Miyazaki (Tokyo, JP); Toru Sugamata (Tokyo, JP)
Assignee: SUMITOMO OSAKA CEMENT CO., LTD.
G02F1/0356G02F2201/063G02F2202/20
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Quick Facts
Patent No.
US 12681341
App. No.
18/245,977
Granted
Jul 14, 2026
Kind
B2
Abstract

The optical absorption loss of the optical waveguide and the signal propagation loss of the high-frequency signal electrode are both reduced at a plurality of intersections between the convex optical waveguide and the high-frequency signal electrode, thereby achieving good operating characteristics. An optical waveguide device includes a substrate on which optical waveguides are formed, and an electrode that is formed on the substrate and has intersections crossing over the optical waveguides, in which the optical waveguides are configured by protruding portions extending on the substrate, and an intermediate layer made of a resin is provided at the adjacent intersections along the electrode to fill spaces between the protruding portions along the electrode and covers top of the protruding portions.

Claims (41)

1 . An optical waveguide device comprising:

a substrate on which optical waveguides are formed; and

an electrode that is formed on the substrate and has intersections crossing over the optical waveguides, wherein

the optical waveguides are configured by protruding portions extending on the substrate,

the intersections include an intermediate layer between the optical waveguides and the electrode crossing over the optical waveguides,

the intermediate layer fills recess portions formed along the electrode and extending between the protruding portions of adjacent intersections of the intersections, and the intermediate layer is formed to have a thickness greater than a height of the protruding portions from a surface of the substrate so that the protruding portions and the intermediate layer filled in the recess portions are flat, and

the intermediate layer, under the electrode, has a strip shape along an extending direction of the electrode in plan view.

2 . The optical waveguide device according to claim 1 , wherein

an upper surface of the intermediate layer is substantially flat in a range from a position of a top of the protruding portion closest to an edge of the intermediate layer to the edge.

3 . The optical waveguide device according to claim 2 , wherein

a thickness of the intermediate layer measured from an upper surface of the protruding portion is greater than a height value of the protruding portion from the surface of the substrate.

4 . The optical waveguide device according to claim 1 , wherein

the intermediate layer is composed of a plurality of layers.

5 . The optical waveguide device according to claim 4 , wherein

the plurality of layers forming the intermediate layer includes one layer and another layer disposed above the one layer, and

the one layer being made of a resin, the other layer is made of another resin having a higher viscosity when applied to the substrate than the resin forming the one layer.

6 . The optical waveguide device according to claim 1 , wherein

the optical waveguides include two waveguide groups each composed of a plurality of the optical waveguides adjacent to each other,

the electrode forms the intersections with respective optical waveguides of the two different waveguide groups,

in each of the two waveguide groups, the intermediate layer is provided at the intersections adjacent along the electrode, and

the intermediate layer of the two waveguide groups is configured as part of a continuous common layer that is strip-shaped in plan view and extends along the electrode to a space between the two waveguide groups.

7 . The optical waveguide device according to claim 1 , wherein

a buffer layer made of an inorganic material is provided between the intermediate layer and the electrode.

8 . The optical waveguide device according to claim 1 , wherein

a buffer layer made of an inorganic material is provided between an upper surface of the protruding portion and the intermediate layer.

9 . An optical modulator comprising:

the optical waveguide device according to claim 1 , which is an optical modulation device that modulates light;

a housing that houses the optical waveguide device;

an optical fiber that inputs light to the optical waveguide device; and

an optical fiber that guides light output by the optical waveguide device to outside the housing.

10 . An optical modulation module comprising:

the optical waveguide device according to claim 1 , which is an optical modulation device that modulates light; and

a drive circuit that drives the optical waveguide device.

11 . An optical transmission apparatus comprising:

the optical modulator according to claim 9 ; and

an electronic circuit that generates an electrical signal for causing the optical waveguide device to perform a modulation operation.

12 . An optical transmission apparatus comprising:

the optical modulation module according to claim 11 ; and

an electronic circuit that generates an electrical signal for causing the optical waveguide device to perform a modulation operation.

13 . The optical waveguide device according to claim 1 , wherein

the intermediate layer is made of a resin.