Method for manufacturing an electro-optical device and electro-optical device
The present application relates to a method for manufacturing an electro-optical device, wherein a waveguide ( 3 ) is provided (S 1 ), a planarization coat ( 7 ) overlapping at least a section of the waveguide ( 3 ) is fabricated (S 2 ), the planarization coat ( 7 ) is provided with a spin-on-glass coating ( 9 ) (S 3 ), at least in the region of the spin-on-glass coating ( 9 ), a preferably dry chemical etching treatment is carried out (S 4 ), optionally, the steps of providing the planarization coat ( 7 ) with a spin-on-glass coating ( 9 ) and the etching treatment are repeated at least once (S 5 , S 6 ), and an active element ( 10 ) is provided (S 7 ) on or above the planarization coat ( 7 ) and above the waveguide ( 3 ).
1 . A method for manufacturing an electro-optical device, comprising the steps of:
providing a waveguide ( 3 ) (step S 1 );
fabricating a planarization coat ( 7 ) overlapping at least a section of the waveguide ( 3 ) by applying a coating material (step S 2 );
providing the planarization coat ( 7 ) with a spin-on-glass coating ( 9 ) (step S 3 );
carrying out a dry chemical etching treatment (step S 4 ) at least in the region of the spin-on-glass coating ( 9 ), in the course of which etching is carried out down to the planarization coat ( 7 ) and the spin-on-glass coating ( 9 ) and part of the planarization coat ( 7 ) are removed, the steps of providing the planarization coat ( 7 ) with the spin-on-glass coating ( 9 ) and the etching treatment are repeated at least once (steps S 5 , S 6 ), and wherein the step of fabricating of the planarization coat, the step of providing the spin-on glass coating, and subsequent etching treatment are carried out in such a way that the a coat thickness of the planarization coat ( 7 ) above the waveguide ( 3 ) or at least a section thereof is less than or equal to 50 nm, and
providing (step S 7 ) an active element ( 10 ) on or above the planarization coat ( 7 ) and above the waveguide ( 3 ), wherein the active element ( 10 ) comprises at least one material, which absorbs electromagnetic radiation of at least one wavelength and generates an electric photosignal as a result of the absorption and/or whose refractive index changes as a function of a voltage and/or a presence of charges and/or an electric field.
2 . The method according to claim 1 , wherein the electro-optical device is an electro-optical modulator ( 6 ) obtained performing the following steps:
fabricating a dielectric coat on the active element ( 10 ), the dielectric coat comprising at least one oxide and/or nitride, and
providing a further active element ( 10 ) is provided on an upper side of the dielectric coat facing away from the active element ( 10 ), the further active element ( 10 ) being arranged offset with respect to the first active element ( 10 ) in such a way that the first active element ( 10 ) and the further active element ( 10 ) lie one above the other in sections.
3 . The method according to claim 2 , wherein the active element ( 10 ) is provided on or above the upper side of the planarization coat ( 7 ) by applying the at least one material, or wherein the active element ( 10 ) is provided on the upper side of the planarization coat ( 7 ) by a transfer process.
4 . The method according to claim 2 , wherein a film is provided as the active element ( 10 ), and/or wherein as the at least one material of the active element ( 10 ), which absorbs electromagnetic radiation of at least one wavelength and generates an electrical photosignal as a result of the absorption and/or whose refractive index changes as a function of a voltage and/or the presence of charge and/or the electric field, graphene and/or at least one dichalcogenide, and/or germanium and/or lithium niobate and/or at least one electro-optical polymer and/or silicon and/or at least one compound semiconductor is used.
5 . The method according to claim 2 , wherein the planarization coat ( 7 ) is fabricated by applying the coating material at least one or above a section of the waveguide ( 3 ) and on regions lateral to the waveguide ( 3 ).
6 . The method according to claim 1 , wherein the active element ( 10 ) is provided on or above the upper side of the planarization coat ( 7 ) by applying the at least one material, or wherein the active element ( 10 ) is provided on the upper side of the planarization coat ( 7 ) by means of a transfer process.
7 . The method according to claim 6 , wherein the planarization coat ( 7 ) is fabricated by applying the coating material at least one or above a section of the waveguide ( 3 ) and on regions lateral to the waveguide ( 3 ).
8 . The method according to claim 1 , wherein a film is provided as the active element ( 10 ), and/or wherein as the at least one material of the active element ( 10 ), which absorbs electromagnetic radiation of at least one wavelength and generates an electrical photosignal as a result of the absorption and/or whose refractive index changes as a function of a voltage and/or the presence of charge and/or the electric field, graphene and/or at least one dichalcogenide, and/or germanium and/or lithium niobate and/or at least one electro-optical polymer and/or silicon and/or at least one compound semiconductor is used.
9 . The method according to claim 8 , wherein the planarization coat ( 7 ) is fabricated by applying the coating material at least one or above a section of the waveguide ( 3 ) and on regions lateral to the waveguide ( 3 ).
10 . The method according to claim 1 , wherein the planarization coat ( 7 ) is fabricated by applying the coating material at least one or above a section of the waveguide ( 3 ) and on regions lateral to the waveguide ( 3 ).
11 . The method according to claim 1 , wherein the planarization coat ( 7 ) is fabricated by depositing the coating material by at least one of chemical vapor deposition, plasma-assisted chemical vapor deposition, and physical vapor deposition.
12 . The method according to claim 1 , wherein the planarization coat ( 7 ) comprises at least one oxide, and/or at least one nitride and/or at least one polymer.
13 . The method according to claim 1 , wherein the etching treatment is carried out in such a way that the etching rate for the coating material of the planarization coat ( 7 ) is greater or smaller than the etching rate for the spin-on-glass by a maximum of 50%.
14 . The method according to claim 1 , wherein the electro-optical device ( 6 ) is fabricated on or above a wafer ( 4 ) or on or above a chip, and wherein the wafer ( 4 ) or the chip comprises integrated circuits with integrated electronic components ( 13 ).
15 . An electro-optical device ( 6 ) obtained by the method according to claim 1 .
16 . A semiconductor apparatus comprising a chip and at least one electro-optical device ( 6 ) according to claim 15 .
17 . A semiconductor device comprising a wafer ( 4 ) and at least one electro-optical device ( 6 ) according to claim 15 .
18 . The method according to claim 1 , wherein the electro-optical device is one of a photodetector ( 6 ) and an electro-optical modulator ( 6 ).