STRUCTURE AND METHOD FOR OPTICAL CONNECTION BETWEEN OPTICAL TRANSMITTER AND OPTICAL RECEIVER

Abstract
Provided are a method and structure for optical connection between an optical transmitter and an optical receiver. The method includes the steps of: forming on a substrate a light source device, an optical detection device, an optical transmission unit electrically connected with the light source device, and an optical detection unit electrically connected with the optical detection device; preparing a flexible optical transmission-connection medium to optically connect the light source device with the optical detection device; cutting the prepared optical transmission-connection medium and surface-finishing it; and connecting one end of the surface-finished optical transmission-connection medium with the light source device and the other end with the optical detection device. Fabrication of an optical package having a 3-dimensional structure is facilitated and fabrication time is reduced, thus improving productivity. In addition, since the optical transmission-connection medium is directly connected with the light source device and the optical detection device, a polishing operation or additional connection block is not required, thus facilitating mass production.
Description

BRIEF DESCRIPTION OF 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 in detail exemplary embodiments thereof with reference to the attached drawings in which:



FIG. 1 is a perspective view of an optical connection system according to an exemplary embodiment of the present invention;



FIGS. 2A to 2G are diagrams illustrating processes in a method of connecting a light source device and an optical detection device according to an exemplary embodiment of the present invention;



FIG. 3 is a perspective view showing an optical connection structure connecting a light source device with an optical detection device through flexible optical waveguides according to an exemplary embodiment of the present invention; and



FIG. 4 is a side cross-sectional view of an optical connection system including an optical connection structure according to an exemplary embodiment of the present invention.





DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS

Hereinafter, exemplary embodiments of the present invention will be described in detail. However, the present invention is not limited to the embodiments disclosed below, but can be implemented in various forms. The following embodiments are described to make this disclosure sufficiently detailed and comprehensive to enable one of ordinary skill in the art to embody and practice the invention.



FIG. 1 is a schematic perspective view of a structure for optical connection between an optical transmitter and an optical receiver according to an exemplary embodiment of the present invention. The illustrated structure is used for high-speed signal transfer over a very short distance, such as between general chips.


Referring to FIG. 1, an optical connection structure 100 comprises an optical transmission unit 102 and an optical detection unit 103 formed on a substrate 101, a light source device 104 and an optical detection device 105, optical transmission-connection media 106 optically connecting the light source device 104 with the optical detection device 105, and first electrical signal lines 109 receiving a signal from outside and second electrical signal lines 110 providing a signal to outside.


More specifically, an optical printed circuit board (OPCB) or silicon optical bench that neither causes nor is susceptible to electromagnetic interference (EMI) is used for the substrate 101. The light source device 104 and the optical detection device 105 optically connected with the light source device 104 and detecting light emitted from the light source device 104 are formed on the substrate 101 implemented by an OPCB or a silicon optical bench.


In order to transfer the optical signal from the light source device 104 to the optical detection device 105 without loss, the optical transmission-connection media 106 are formed between the light source device 104 and the optical detection device 105. Plastic optical fibers or flexible optical waveguides may be used as the optical transmission-connection media 106 because they are easier to cut and bard-face the cut ends than conventional glass optical fibers or polymer optical waveguides. Other types of optical fibers and waveguides may also be used according to transmission distance.


Plastic optical fibers have never been used as inter-chip optical transmission-connection media such as the optical transmission-connection media 106. Currently, plastic optical fibers have a minimum core diameter of about 500 μm and are used in lighting and display technology, and as jump cables of a few high-performance audio systems. Plastic optical fibers used in the present invention may have a core (not shown in the drawings) diameter reduced to 8 to 62.5 μm, and may have a rectangular core. Multimode plastic optical fibers having a core diameter of 50 to 62.5 μm may be used for short-distance (300 m or less) and very short-distance (1 m or less) transmission, and single-mode optical fibers having a core diameter of 7 to 8 μm may be used for long-distance transmission. When flexible optical waveguides are used, cores of the optical waveguides take the form of a 2-dimensional sheet, and a polyimide film is attached to the coverings to protect the sheet.


The light source device 104 is electrically connected with the optical transmission unit 102 by wires 107a, and the optical detection device 105 is electrically connected with the optical detection unit 103 by wires 108a. On the substrate 101, the first electrical signal lines 109 electrically connected with the optical transmission unit 102 and the second electrical signal lines 110 electrically connected with the optical detection unit 103 are formed. The optical transmission unit 102 is connected with the first electrical signal lines 109 by wires 107b, and the optical detection unit 103 is connected with the second electrical signal lines 110 by wires 108b.


In the optical connection structure 100 constituted as described above, a high-speed data signal for inter-device transmission passes through the optical transmission unit 102 along the first electrical signal lines 109 and arrives at the light source device 104, which converts the signal applied from the first electrical signal lines 109 into light. As the light source device 104, a surface emitting laser or a general laser may be used. The size of the optical transmission-connection media 106 handling transmission of the optical signal is determined according to the type of light source. The optical signal emitted for the light source device 104 passes through the optical transmission-connection media 106 and arrives at the optical detection device 105. Here, the optical transmission-connection media 106 are directly connected to the surface of the optical detection device 105. The optical signal (light) arriving at the optical detection device 105 is converted by the optical detection unit 103 into an electrical signal (current) and transmitted to the second electrical signal lines 110, thereby completing connection between two points in close proximity. With this connection method, there is almost no loss, and the specifications of all components, such as a chip, a PCB, packaging, etc., can be flexibly adjusted for packaging. Thus, it is possible to reduce the cost of optical packaging to the cost of electrical device packaging by reducing the overall cost of packaging.



FIGS. 2A to 2G are diagrams illustrating processes in a method of connecting the light source device and the optical detection device according to an exemplary embodiment of the present invention. Parts of the drawings may be drawn out of proportion for better visibility.


First, in order to connect a light source device 104 and an optical detection device 105, i.e., to perform optical link packaging, optical transmission-connection media 106 must be prepared and cut to a proper size using an appropriate tool, and then the cut end must be surface-finished. In this embodiment, plastic optical fibers are used as the optical transmission-connection media 106. More specifically, referring to FIG. 2A, the plastic optical fibers 106 prepared for optical link packaging are cut using cutting scissors 210. The plastic optical fibers 106 may be prepared in a bundle.


In the next step, referring to FIG. 2B, the cut ends of the cut plastic optical fibers 106 are thermally annealed. In the thermal annealing process, the cut ends of the cut plastic optical fibers 106 may be easily hard-faced using a soldering iron 220, and so on. Once the prepared plastic optical fibers 106 are cut and the cut end surface-finishing is completed, a post process of inserting the cut portions of the plastic optical fibers 106 into openings 201 formed on the light source device 104 is performed.


Referring to FIG. 2C(a), the cut plastic optical fibers 106 are inserted into the openings 201 of the light source device 104, and an adhesive 203 is used to fix them therein. An ultraviolet (UV) epoxy, a UV hardening resin or so on may be used as the adhesive 203. An injector 205, a pipette, or so on may be used to precisely drop the adhesive 203 into the openings 201 of the light source device 104. Alternatively, referring to FIG. 2C(b), the cut ends of the plastic optical fibers 106 are dipped in a vessel 202 containing the adhesive 203 and taken out after a predetermined time period, so that the adhesive 203 may be applied to the cut ends of the plastic optical fibers 106. In the step of applying the adhesive, one of the methods illustrated in FIGS. 2C(a) and (b) may be selected and used.



FIG. 2D illustrates a process of inserting the plastic optical fibers 106 into the openings 201 of the light source device 104 and then irradiating them with UV light using a UV irradiation device 230. Before UV irradiation, precise optical connection between the light source device 104 and the plastic optical fibers 106 must be confirmed. This includes the steps of driving the optical transmission unit 102 to cause an optical signal to be emitted from the light source device 104, connecting the other ends, i.e., connectors (e.g., subscriber connectors (SCs)), of the plastic optical fibers 106 with an optical power meter 240, and measuring the optical power.


In the next step, referring to FIGS. 2E and 2F, the other ends of the plastic optical fibers 106 inserted and fixed in the openings 201 of the light source device 104 are cut off and surface-finished. As illustrated in FIGS. 2A and 2B, the other ends are cut using the cutting device 210 and then surface-finished using the heat of the soldering iron 220.


As illustrated in FIG. 2Q, the other ends of the plastic optical fibers 106 connected with the light source device 104 are inserted and fixed into openings 204 formed on the optical detection device 105. Here, the other ends of the plastic optical fibers 106 are connected with the openings 204 of the optical detection device 105 in the same way their one ends are connected with the openings 201 of the light source device 104. In order to connect the cut and surface-finished plastic optical fibers 106 with the optical detection device 105, the adhesive 203 is inserted into the openings 204 of the optical detection device 105 and then irradiated and fixed by UV light. Here, in order to confirm precise optical connection, it is preferable to connect the optical transmission unit 102 and the light source device 104 with the optical detection unit 103 and the optical detection device 105 during operation. As the UV hardening operation is performed while the intensity of the light source is metered to check optical connection of the light source device 104, optical connection of the optical detection device 105 can be checked using an amount of current proportional to the optical signal received from the light source device 104.


A method of checking whether the light source device 104 and the light detection device 105 are properly connected with the optical transmission-connection media 106 by driving the optical transmission unit 102 and the optical detection unit 103 is described above. However, another checking method for precise optical connection is to connect the optical transmission unit 102 with the optical detection unit 103 and observe the system under a microscope (not shown in the drawings).



FIG. 3 is a perspective view showing an optical connection structure connecting a light source device with an optical detection device through flexible optical waveguides according to an exemplary embodiment of the present invention. In this embodiment, flexible optical waveguides 310 instead of plastic optical fibers are used as the optical transmission-connection media 106 for optical links. The flexible optical waveguides 310 may be fabricated by a molding method using a master and must be flexible. Like the plastic optical fibers 106, the flexible optical waveguides 310 are connected with a light source device 104 and an optical detection device 105 using an adhesive (a UV epoxy, etc.). A magnified portion of FIG. 3 shows the optical waveguides 310 as integrated into a single body having a flat rectangular shape. In order to connect the flexible optical waveguide 310 with the light source device 104 and the optical detection device 105, openings (not shown in the drawing) corresponding to both ends of the optical waveguides 310 must be formed on the respective devices 104 and 105.



FIG. 4 is a schematic side cross-sectional view of an optical connection system including an optical connection structure according to an exemplary embodiment of the present invention. Referring to FIG. 4, the optical connection system can be used as an interface between chips requiring high-speed signal processing, and more particularly, for connection between a high-speed central processing unit (CPU) 401 and a control chip 402. Recent drastic increase in the sheer quantity of information being handled has generated demand for high-speed communication circuits capable of transferring signals between chips at rates of several GHz or more. The required speed of signal transfer will continue to increase into the future, as will transmission capacity per channel between chips or even within a chip. To continue this trend, it is expected that system on chip (SOC) and system in package (SIP) technology will be developed into system on package (SOP) technology, wherein easy signal connection between chips and signal integrity will be of paramount importance. Referring to FIG. 4, the various control chips 402, a complementary metal-oxide semiconductor (CMOS)/SOC chip (not shown in the drawing), and the CPU 401 are disposed on a multilayer PCB 403, and high-speed signal transfer is required between them.


Here, a light source device 104, such as a vertical cavity surface emitting laser (VCSEL) or a laser diode (LD), and a driving unit 102 driving the light source device 104 are required. In addition, after an electrical signal is converted into light by the light source device 104, optical transmission-connection media 106 are required to transmit the light (optical signal) to another chip. Here, the transmitted signal is converted back into an electrical signal and transmitted to a desired chip by an optical detection device 105, e.g., a photodetector (PD). When an optical link is established by the method suggested in the present invention, an optical module can be easily packaged. In the future, optical device driving units 102 and 103 will be embedded in the CPU, 401 and the control chips 402 by a CMOS process.


In the above-described exemplary embodiment, the optical link is easily established by converting a high-speed signal into light. And in the future, even the light source device 104 and the optical detection device 105 may be embedded in a CMOS chip.


As described above, the present invention can be applied to an interface between chips requiring high-speed signal processing, and has the effects of speeding-up the transfer of a high-speed signal and increasing transmission capacity per channel between the chips or within a chip.


In addition, unlike conventional optical connection methods, since no separate optical connection device or apparatus is required and packaging can be completed in a short time at low cost, the present invention call be easily applied to all optical devices and productivity can be improved. Even an optical device chip can be embedded in a CMOS chip by the optical link technology of the present invention, thus opening the door to the optical packaging era.


While the invention has been shown and described with reference to certain exemplary embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims.

Claims
  • 1. A method for optical connection between an optical transmitter and an optical receiver, comprising the steps of: (a) forming on a substrate a light source device, an optical detection device, an optical transmission unit electrically connected with the light source device, and an optical detection unit electrically connected with the optical detection device;(b) preparing a flexible optical transmission-connection medium to optically connect the light source device with the optical detection device;(c) cutting the prepared optical transmission-connection medium and surface-finishing it; and(d) directly connecting one end of the surface-finished optical transmission-connection medium with the light source device and the other end with the optical detection device.
  • 2. The method of claim 1, wherein step (c) comprises the steps of: cutting the optical transmission-connection medium using a cutting device; andthermally annealing a cut end of the optical transmission-connection medium using a soldering iron.
  • 3. The method of claim 2, wherein step (d) comprises the steps of: applying an adhesive to regions of the light source device and the optical detection device;connecting one end of the optical transmission-connection medium to the region of the light source device to which the adhesive is applied, and the other lend of the optical transmission-connection medium to the region of the optical detection device to which the adhesive is applied; andirradiating the regions of the light source device and the optical detection device to which the optical transmission-connection medium is connected with ultraviolet (UV) light.
  • 4. The method of claim 3, further comprising the step of: when one end of the optical transmission-connection medium is connected to the region of the light source device or the optical detection device, connecting an optical power meter with the other end of the optical transmission-connection medium and checking whether or not the optical transmission-connection medium is properly connected with the light source device or the optical detection device.
  • 5. The method of claim 4, wherein step (d) further comprises the step of: driving the optical transmission unit or the optical detection unit and checking whether or not the optical transmission-connection medium is properly connected with the light source device or the optical detection device.
  • 6. The method of claim 1, wherein the optical transmission-connection medium is a plastic optical fiber or a flexible optical waveguide.
  • 7. The method of claim 6, wherein the flexible optical waveguide has the form of a two-dimensional sheet with a polyimide film attached to it.
  • 8. A structure for optical connection between an optical transmitter and an optical receiver, comprising: an optical transmission unit for transmitting a signal applied through an electrical signal line formed on a substrate;a light source device electrically connected with the optical transmission unit, converting the applied signal into light and emitting it;an optical detection device optically connected with the light source device and detecting the light converted and emitted by the light source device;an optical detection unit electrically connected with the optical detection device and converting the light received at the optical detection device into an electrical signal; anda flexible optical transmission-connection medium whose one end is connected with the light source device and whose other end is directly connected with the optical detection device.
  • 9. The structure of claim 8, wherein the flexible optical transmission-connection medium is a plastic optical fiber or a flexible optical waveguide.
  • 10. The structure of claim 9, wherein the plastic optical fiber or the flexible optical waveguide is used in a single mode for long-distance transmission of an optical signal and is used in a multimode for short-distance or very short-distance transmission of an optical signal.
  • 11. The structure of claim 8, wherein the substrate is a printed circuit board (PCB) or an optical bench.
Priority Claims (1)
Number Date Country Kind
2006-94172 Sep 2006 KR national