This application claims priority to and the benefit of Korean Patent Applications No. 10-2020-0121652, filed on Sep. 21, 2020, and No. 10-2020-0176413, filed on Dec. 16, 2020, the disclosures of which are incorporated herein by reference in its entirety.
The present disclosure relates to a multi-channel optical communication module used in an optical network.
Recently, as data traffic rapidly increases, an optical transmission/reception module capable of transmitting a large amount of data at a high speed without distortion of signals has been in the spotlight. To this end, the miniaturization of an optical transceiver module package is an important issue.
In the case of a multi-channel transmitter optical subassembly (TOSA) module used in a conventional optical network, transmission channels are horizontally arranged. Thus, heat of the module may only be dissipated in one direction, downward or upward, and an area of the module in a horizontal direction increases as the channels extend, which may become a limiting factor when the module is used in an optical transceiver or printed circuit board (PCB) mounted type on-board optics.
The present disclosure is directed to providing an optical transmission module capable of emitting heat more efficiently and easily than a conventional optical transmission module and simultaneously reducing a mounting area by providing a structure that may efficiently discharge heat in order to solve a problem of dissipation of heat generated in a multi-channel optical transmission module, and a manufacturing method thereof.
In order to achieve the above-described objective, provided are a structure and a manufacturing method of an optical transmission module, in which output light of each of a first optical transmission unit and a second optical transmission unit is combined into one and transmitted through an optical fiber, and completed by separately manufacturing the first optical transmission unit and the second optical transmission unit, each having optical elements and related elements that are assembled, and stacking the first optical transmission unit and the second optical transmission unit.
In order to manufacture the optical transmission module, the first optical transmission unit and the second optical transmission unit are separately manufactured using a wafer-level packaging process and then are stacked. As a result, emission of generated heat is divided into a first heat sink installed in the first optical transmission unit and a second heat sink installed in the second optical transmission unit so that better heat dissipation efficiency is achieved than a conventional optical transmission module. In addition, a mounting area may also be reduced to ½ of the conventional module.
According to an aspect of the present disclosure, there is provided a stacked-type optical communication module including a first optical transmission unit manufactured using a wafer-level packaging process, a first heat sink comprised in the first optical transmission unit and configured to emit heat generated by the first optical transmission unit, a second optical transmission unit manufactured using the wafer-level packaging process and stacked on the first optical transmission unit, and a second heat sink comprised in the second optical transmission unit and configured to emit heat generated by the second optical transmission unit.
According to another aspect of the present disclosure, there is provided a method of manufacturing a stacked-type optical communication module including manufacturing a first optical transmission unit using a wafer-level packaging process, attaching a first heat sink, which is configured to emit heat, to the first optical transmission unit, manufacturing a second optical transmission unit using the wafer-level packaging process, attaching a second heat sink, which is configured to emit heat, to the second optical transmission unit, and stacking the first optical transmission unit and the second optical transmission unit.
The above-described configurations and operations of the present disclosure will become more apparent from embodiments described in detail below with reference to the drawings.
The above and other objects, features, and advantages of the present invention will become more apparent to those of ordinary skill in the art by describing exemplary embodiments thereof in detail with reference to the accompanying drawings, in which:
Advantages and features of the present disclosure and methods for achieving them will be made clear from embodiments described in detail below with reference to the accompanying drawings. However, the present disclosure may be implemented in many different forms and should not be construed as being limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete and will fully convey the scope of the present disclosure to those of ordinary skill in the technical field to which the present disclosure pertains. The present disclosure is defined by the claims. Meanwhile, terms used herein are for the purpose of describing the embodiments and are not intended to limit the present disclosure. As used herein, the singular forms comprise the plural forms as well unless the context clearly indicates otherwise. The term “comprise” or “comprising” used herein does not preclude the presence or addition of one or more other elements, steps, operations, and/or devices other than stated elements, steps, operations, and/or devices. Hereinafter, exemplary embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. Further, in describing the present disclosure, the detailed description of a related known configuration or function will be omitted when it obscures the gist of the present disclosure.
A light path of the bottom optical transmission unit 10 is illustrated in an enlarged view shown in an upper portion of
After the internal components shown in
Further, an anti-reflective (AR) coating portion 31 is comprised in the cover glass 28 (preferably on an inner side) so that the output light 21 emitted to the outside from the mirror 14 located below the cover glass 28 is not reflected by the cover glass 28 and is completely emitted to the outside. In addition, one side of the cover glass 28 comprises an interposer region 29 in which an electrode 36, which is connected to the transmission line 25 formed on an upper surface of the dielectric submount 24, is formed to be drawn out. That is, through the electrode 36 formed in the interposer region 29, the transmission line 25 formed on the upper surface of the dielectric submount 24 of the bottom optical transmission unit 10 may be connected to an external circuit.
The difference from the bottom optical transmission unit 10 of
As described above, the half-wave plate 18 (see
A support spacer 30, which is configured to space the bottom optical transmission unit 10 and the top optical transmission unit 20 from each other and support them, is interposed between the cover glasses 28 and 28′ respectively covered on the bottom optical transmission unit 10 and the top optical transmission unit 20.
An optical multiplexer 32, a lower interposer 34, and an upper interposer 34′ are installed in a space between the bottom optical transmission unit 10 and the top optical transmission unit 20 that are stacked with a gap due to the support spacer 30.
The lower interposer 34 is connected to the electrode 36, which is connected to the transmission line 25, through a via 33 formed in the interposer region 29 of the cover glass 28 for the bottom optical transmission unit 10 Similarly, the upper interposer 34′ is connected to an electrode 36′, which is connected to the transmission line 25, through a via 33′ formed in an interposer region 29′ of the cover glass 28′ for the top optical transmission unit 20. The lower interposer 34 and the upper interposer 34′ are bonded together by epoxy and exposed out of the package as a glass interposer terminal 38. Through the additional glass interposer terminal 38, signals to be transmitted are applied to the optical transmission module.
The optical multiplexer 32 includes a mirror 40, a PBS 42, a lens 44, and a fiber block 46 and multiplexes combined output light emitted from the bottom optical transmission unit 10 and the top optical transmission unit 20 and transmits the multiplexed output light through an optical fiber.
Referring to an enlarged view illustrated in a lower portion of
As a first packaging process, as shown in
Next, as a second packaging process (
As described above, the eight-channel optical transmission module composed of four channels in a bottom side and four channels in a top side may be manufactured, and even in this case, heat emission may be effectively performed by separately arranging a heat sink 260 in each of the bottom optical transmission unit and the top optical transmission unit.
Conventionally, in the manufacturing of a four or more-channel optical transmission module utilizing a wavelength division multiplexer, packaging difficulty is rapidly increased according to the increase in channel, resulting in a drop in product completion yield. However, when the present disclosure is applied, in manufacturing an optical transmission module with an eight-channel light source, light may be multiplexed using polarization characteristics and a PBS so that four channels may be distributed to each of the bottom optical transmission unit and the top optical transmission unit, thereby reducing manufacturing difficulty.
Unlike a conventional multi-channel optical module, a multi-channel optical module of the present disclosure is manufactured by stacking a first optical transmission unit and a second optical transmission unit using a wafer-level packaging process, and thus has an advantage of being applicable to a mass production process. In addition, since a stacked structure of the first and second optical transmission units is a structure in which both light output is combined, effective heat dissipation performance can be obtained by improving from a conventional one side heat dissipation structure to a first/second both sides heat dissipation structure, and a mounting area per unit module can be minimized by reducing a mounting area per transmission channel by half.
Although the present disclosure has been described in detail above with reference to the exemplary embodiments, those of ordinary skill in the technical field to which the present disclosure pertains should be able to understand that various modifications and alterations can be made without departing from the technical spirit or essential features of the present disclosure. Therefore, it should be understood that the disclosed embodiments are not limiting but illustrative in all aspects. Further, the scope of the present disclosure is defined not by the above description but by the following claims, and it should be understood that all changes or modifications derived from the scope and equivalents of the claims fall within the scope of the present disclosure.
| Number | Date | Country | Kind |
|---|---|---|---|
| 10-2020-0121652 | Sep 2020 | KR | national |
| 10-2020-0176413 | Dec 2020 | KR | national |