The present disclosure relates to a method of manufacturing a waveguide and, in particular embodiments, a method of manufacturing a single-mode waveguide.
Optical signals may be used to transmit data, for example, by means of an optical fiber. To increase the quantity of transmitted data, it is known to transmit a plurality of optical signals of different wavelengths in a same optical fiber. Optical devices, such as that disclosed in relation with
These elements include a waveguide 7 capable of transmitting a multiple-frequency optical signal received from a single-mode optical fiber 3. An optical signal demultiplexer 9 transmits, over waveguides 11, single-frequency optical signals obtained by frequency filtering from the multiple-frequency optical signal transmitted by waveguide 7. A mirror 13 interrupts each waveguide 11 and is capable of reflecting, to the outside of wafer 1, the optical signal transmitted by the corresponding waveguide 11.
The end of optical fiber 3 is arranged at the surface of an end of waveguide 7. An index-matching material 15 having a refraction index between that of the fiber and that of the material of waveguide 7, is preferably arranged between the end of optical fiber 3 and the end of waveguide 7. The path of an optical signal sent by the optical fiber is shown in
Waveguides 7 and 11 have the same characteristics. Waveguides 7 and 11 are made of a material having a larger index than the glass of plate 5. Waveguides 7 and 11 should have transverse dimensions close to that of a single-mode optical fiber, for example, in the range from 3 to 15 μm, for example, in the order of 7 μm. Such dimensions enable to minimize signal losses at the input of plate 5 and to do without using a coupler. Optical demultiplexer 9 is a device which separates on at least two output waveguides 11 at least two wavelengths of the optical signal of input guide 7.
Each mirror 13 is made of a material reflecting the concerned wavelengths, for example, made of metal. Mirror 13 is obliquely formed in plate 5 and forms with the propagation axis of waveguide 11 that it interrupts an angle in the order of 42 degrees. The upper surface of plate 5 may be covered with a cladding layer 17 transparent to the concerned wavelengths.
To form the type of optical device described above, it is desirable to manufacture, in a glass plate, waveguides having their dimensions coinciding with those of a single-mode optical fiber. It is further desirable to be able to form inclined mirrors arranged at a desired located in the plate.
Thus, an embodiment provides a method of manufacturing a waveguide in a glass plate, comprising the successive steps of: scanning the plate with a laser beam directed orthogonally to the plate to form a trench according to the pattern of the waveguide to be formed, the duration of the pulses of this laser being in the range from 2 to 500 femtoseconds; treating with hydrofluoric acid; filling the trench with a material having an index different from that of glass; and depositing a cladding layer.
According to an embodiment, the depth of the trench is in the range from 5 to 10 μm and the width of the trench is in the range from 5 to 10 μm, which results in a single-mode waveguide.
According to an embodiment, the material is a polymer.
According to an embodiment, the filling step is followed by a crosslinking anneal step.
According to an embodiment, the filling step is followed by a planarization step.
According to an embodiment, the planarization step is carried out by chem.-mech. polishing.
According to an embodiment, the filling step is carried out by lamination.
According to an embodiment, the trench has a semi-circular, rectangular, or rounded-angle rectangular cross-section.
According to an embodiment, the laser emits pulses at a frequency in the range from 10 to 500 kHz.
According to an embodiment, the cladding layer is a silicon oxide layer.
Another embodiment provides a single-mode waveguide made of a material having an index greater than that of glass, formed in a glass plate, the waveguide having lateral dimensions and a depth in the range from 5 to 10 μm.
Another embodiment provides a method of manufacturing an optical mirror in a glass plate, comprising the successive steps of: scanning a surface of the plate with a laser beam obliquely directed with respect to said surface, to form a trench according to the pattern of the mirror to be formed, the duration of the pulses of this laser being in the range from 2 to 500 femtoseconds; treating with hydrofluoric acid; and filling the trench with a metal.
According to an embodiment, the trench is filled with metal by cathode sputtering.
According to an embodiment, the metal is copper, aluminum, or an alloy of copper and aluminum.
According to an embodiment, the method comprises a step of subsequent deposition of a cladding layer on the surface of the structure.
According to an embodiment, the cladding layer is a silicon oxide layer.
According to an embodiment, the trench has a rectangular or rounded-angle rectangular cross-section.
According to an embodiment, the angle formed between the trench and the surface of the plate is in the range from 30 to 50 degrees.
According to an embodiment, the laser emits pulses at a frequency in the range from 10 to 500 kHz.
According to an embodiment, the mirror is concave or convex.
The foregoing and other features and advantages will be discussed in detail in the following non-limiting description of specific embodiments in connection with the accompanying drawings.
The same elements have been designated with the same reference numerals in the different drawings and, further, the various drawings are not to scale. For clarity, only those steps and elements which are useful to the understanding of the described embodiments have been shown and are detailed.
In the following description, when reference is made to terms qualifying position, such as terms “top”, “upper”, etc., or terms qualifying orientation such as terms “horizontal”, “vertical”, etc., reference is made to the orientation of the drawings. Unless otherwise specified, expressions “substantially” and “in the order of” mean to within 10%, preferably to within 5%.
To form, at a lower cost, waveguides on a glass substrate, it is known to use simple lithography equipment, that is, of low resolution, such as currently available in an electronic component assembly line. However, such equipment only enables to form single-mode waveguides having dimensions greater than approximately 50 μm. Such dimensions are much larger than the dimensions of a single-mode optical fiber, which are in the range from 5 to 10 μm.
At the step of
An advantage of the use of a femtolaser is that the duration of the pulses is rather short as compared with the duration of thermal relaxation of the material. This property enables to accurately machine the material and thus limits thermal effects at the periphery of the ablated area. Trench 34 has a cross-section of semi-circular shape having a depth in the range from 5 to 10 μm. The width of trench 34 is smaller than the desired dimension. It can be observed that the glass of walls 36 of trench 34 has a certain roughness and has cracks across a substantially constant thickness. Such a roughness may prevent a proper operation of the waveguide.
At the step of
At the step of
At the step of
At the step of
An advantage of this embodiment is that it enables to form guides having different shapes and different sizes with a femtolaser. It is possible to form curved waveguides, waveguides having different depths, or also cavities by adequately scanning the glass plate. It is further possible to form various types of optical devices such as those disclosed in relation with
Of course, other passive optical devices comprising waveguides and resonant cavities may be formed according to the manufacturing method described in relation with
To form inclined optical mirrors in a glass plate, it is known to file down the edge of a glass plate to obtain an inclined wall. The wall is then covered with a reflective material, for example, with a metal. A disadvantage of this method is that it is not possible to form inclined optical mirrors in another place than at the edge of a plate.
At the step of
At the step of
At the step of
An optional step of depositing a protection layer on the upper surface of the structure, similar to the step disclosed in relation with
An advantage of this embodiment is to enable to form one or a plurality of optical mirrors directly at the desired location on a glass plate.
A planar mirror formed in a straight trench has been shown in
It is possible to combine the methods described in relation with
forming the trenches intended to form the waveguides;
filling the trenches with the adequate material to form the core of the waveguides;
forming the trenches intended to form the mirrors, these trenches being deeper than the trenches intended to form the waveguides;
filling the trenches with a reflective material; and
depositing a cladding layer on the surface of the structure.
The cores of the waveguides will not be damaged during the forming of the trenches intended to form the mirrors since the femtolaser has negligible thermal effects.
Such alterations, modifications, and improvements are intended to be part of this disclosure, and are intended to be within the spirit and the scope of the present invention. Accordingly, the foregoing description is by way of example only and is not intended to be limiting. The present invention is limited only as defined in the following claims and the equivalents thereto.
Number | Date | Country | Kind |
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16 59923 | Oct 2016 | FR | national |
16 59924 | Oct 2016 | FR | national |
This application is a continuation of U.S. application Ser. No. 15/499,261, filed on Apr. 27, 2017, which claims the priority benefit of French patent application number 1659923, filed on Oct. 13, 2016 and French patent application number 1659924, filed on Oct. 13, 2016, the contents of which are hereby incorporated by reference in their entirety.
Number | Name | Date | Kind |
---|---|---|---|
5080962 | Hench | Jan 1992 | A |
6285808 | Mehlhorn | Sep 2001 | B1 |
6477296 | Ogawa | Nov 2002 | B1 |
6573026 | Aitken et al. | Jun 2003 | B1 |
6624077 | White | Sep 2003 | B2 |
6772514 | Ogura et al. | Aug 2004 | B2 |
6804423 | Tsukamoto et al. | Oct 2004 | B2 |
6977137 | Borrelli et al. | Dec 2005 | B2 |
7411151 | Sugioka et al. | Aug 2008 | B2 |
7438824 | Taylor et al. | Oct 2008 | B2 |
8798410 | Feng | Aug 2014 | B2 |
9484482 | Hsu | Nov 2016 | B2 |
9696486 | Zheng | Jul 2017 | B2 |
10067291 | Durand | Sep 2018 | B2 |
20020028045 | Yoshimura et al. | Mar 2002 | A1 |
20020076655 | Borrelli | Jun 2002 | A1 |
20030033975 | Bazylenko | Feb 2003 | A1 |
20030114006 | White | Jun 2003 | A1 |
20030150839 | Kobayashi et al. | Aug 2003 | A1 |
20030235385 | Taylor et al. | Dec 2003 | A1 |
20040047561 | Tuda | Mar 2004 | A1 |
20050213916 | Fukuda et al. | Sep 2005 | A1 |
20050224946 | Dutta | Oct 2005 | A1 |
20060051045 | Qiu | Mar 2006 | A1 |
20060219676 | Taylor et al. | Oct 2006 | A1 |
20070140636 | Tanaka | Jun 2007 | A1 |
20070263974 | Khrushchev | Nov 2007 | A1 |
20090202713 | Pitwon | Aug 2009 | A1 |
20120189245 | Bowen | Jul 2012 | A1 |
20130323469 | Abramov et al. | Dec 2013 | A1 |
20170146751 | Sutherland | May 2017 | A1 |
20180106954 | Ayi-Yovo | Apr 2018 | A1 |
20180106969 | Durand et al. | Apr 2018 | A1 |
20180348437 | Durand | Dec 2018 | A1 |
Number | Date | Country |
---|---|---|
0445527 | Sep 1991 | EP |
0903596 | Mar 1999 | EP |
2160196 | Dec 1985 | GB |
S60129711 | Jul 1985 | JP |
Entry |
---|
S. Darvishi, et al., “Ultrafast laser machining of tapered microchannels in glass and PDMS”, Optics and Lasers in Engineering 50 (2012), pp. 210-214. |
Number | Date | Country | |
---|---|---|---|
20180348437 A1 | Dec 2018 | US |
Number | Date | Country | |
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Parent | 15499261 | Apr 2017 | US |
Child | 16101127 | US |