SOLID-STATE IMAGE PICKUP DEVICE, A CAMERA MODULE AND A METHOD FOR MANUFACTURING THEREOF
A solid-state image pickup device includes a solid-state image sensor chip having a solid-state image sensor having a photosensitive element formed on a main surface of a semiconductor substrate and chip electrodes led to the back surface of the semiconductor substrate, a passive chip bonded on the back surface of the solid-state image sensor chips having passive parts mounted in its thickness and electrically connected to the chip electrodes of the solid-state image sensors. The device further includes a lens holder fixed to enclose the photosensitive element of the solid-state image pickup sensor chip and a lens barrel to fit into the lens holders, wherein the passive chip is formed having a size equal to or smaller than a size of the solid-state image sensors.
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This application is based upon and claims the benefit of priority from prior Japanese Patent Application No. 2006-106246, filed Apr. 7, 2006, the entire contents of which are incorporated herein by reference.
TECHNICAL BACKGROUND OF INVENTIONThe present invention relates to a solid-state image pickup device, a solid-state image pickup device equipped with an optical lens (called as a camera module in the following description) and its manufacturing method.
The construction of a conventional camera module using such a solid-state image pickup device as a CCD image sensor, CMOS image sensor or the like will be described with reference to
In the lens holder 1, an optical filter 8 such as an infrared rays cutting filter is joined to the lens holder by a bonding agent 9. Inside of the lens barrel 4, an optical lens 10 is fixed. The lens barrel 4 is adjusted and fixed at a prescribed height in the cylindrical section 1-1 of the lens holder 1 by a screw. At the position of this prescribed height, an image taken by the optical lens 10 is formed on the sensing section (not shown) of the solid-state image sensor 6.
A method for manufacturing parts in the conventional camera module shown in
Next,
In the conventional camera module manufacturing process, such problems as described below are normally generated.
1) As shown in
2) As shown in
Further, when capacitors are mounted on the surface of the circuit board 2 by the reflow soldering, it becomes necessary to adapt solder to the electrodes on the sides of capacitors and this will also be disadvantageous for the downsizing of module size.
3) As shown in
4) As shown in the camera module manufacturing process in
5) As shown in
6) Deviation of the mounting position of the lens holder 1 to the circuit board 2, flaw of the optical lens 10, defective optical characteristic, flaw and deviation of optical characteristic of optical filters, dust adhered to the lens holder, flaw, deviation of optical characteristic in the camera module manufacturing process are finally judged in the camera module test. Thus, if defects are determined at this stage, all component parts associated to the camera modules will be wasted.
Accordingly, it is an object of the present invention to provide camera modules that are small in size and easy to manufacture and to provide a manufacturing method thereof.
SUMMARY OF THE INVENTIONAccording to an embodiment of the present invention, a solid-state image sensor is provided. This solid-state image sensor includes a solid-state image sensor chip having a solid-state image sensor including a photosensitive element formed on a main surface of a semiconductor substrate and chip electrodes led to the back surface of the semiconductor substrate, and a passive chip bonded on the back surface of the solid-state image sensor chips having passive parts mounted in its thickness and electrically connected to the chip electrodes of the solid-state image sensors, wherein the passive chip is formed having a size equal to or smaller than a size of the solid-state image sensors.
According to another embodiment of the present invention, a camera module is provided. The camera module includes a solid-state image sensor chip having a solid-state image sensor including a photosensitive element formed on a main surface of a semiconductor substrate and chip electrodes led to the back surface of the semiconductor substrate, a passive chip bonded on the back surface of the solid-state image sensor chips having passive parts mounted in its thickness and electrically connected to the chip electrodes of the solid-state image sensors, a lens holder fixed to enclose the photosensitive element of the solid-state image pickup sensor chip, and lens barrels to fit into the lens holders, wherein the passive chip is formed having a size equal to or smaller than a size of the solid-state image sensors.
Further, according to another embodiment of the present invention, a method for manufacturing a camera module is provided including steps of;
forming passive components and a wiring section for connecting the passive components with each other in a plurality of chip areas on the main surface of the first semiconductor wafer respectively,
forming a first lead-through electrode at a peripheral part of each of the chip areas, to which the wiring section in each chip area is connected,
forming a solid-state image sensor in the plural number of chip areas on the main surface of the second semiconductor wafer respectively and pads connected to the solid-state image sensors at a peripheral part of each of the chip areas,
forming a second lead-through electrode that is connected to the pads at the peripheral parts of each of the chip areas,
bonding the second semiconductor wafer on the main surface of the first semiconductor wafer by aligning the first and the second lead-through electrodes formed in each of the chip areas so as to contact with each other,
forming a dam-shaped spacer at the peripheral part of each of the chip areas of the second semiconductor wafer,
fixing an optical filter on the dam-shaped spacer formed at the peripheral part of each of the chip areas,
fixing a lens holder on the optical filter in each of the chip areas, and
cutting and separating the first and the second semiconductor wafers laminated and fixed to each other for every chip area.
Embodiments of the present invention will be described with reference to the accompanying drawings. It should be noted that the drawings are schematic ones and the dimension ratios shown herein are different from the actual ones. The dimensions vary from drawing to drawing and so do the ratios of dimensions. The following embodiments are directed to a device and a method for embodying the technical concept of the present invention and the technical concept does not specify the material, shape, structure or configuration of components of the present invention. Various changes and modifications can be made to the technical concept without departing from the scope of the claimed invention.
Embodiment 1In
Cox=Cox=εox*εo*L*YV/tox (1)
Where εox is a dielectric constant of the oxidized membrane of 3.9, εo is the dielectric constant in vacuum of 8.86E-14 F/cm, L is a width of the capacitor, w is the length of the capacitor, and tox is the thickness of the oxidized membrane.
According to this formula, in the case of 2 mm square capacitor having a gate oxidized membrane of 75 angstrom (A) for example, Cox is 0.018 μF in the structure without the trench. While Cox is 0.1 μF when D/L is 5 in the trench structure shown in
There is a fear that, in a MOS capacitor, the depletion layer is produced in addition to the above-mentioned oxidizing membrane capacity by the voltage applied to the gate electrodes and the entire capacity may drop. However, the capacitor of camera module is normally applied with plus potential only and thus only the oxidizing membrane capacity is provided by using a N type semiconductor substrate, thereby stabilizing the characteristic of the capacitor.
Nextly, a bump is formed on a bonding pad 12′. This bump can be a metal wire stud bump or a bump formed in a plating process (
Then, the main front surface of the second semiconductor wafer 11 is coated with a spacer resin 34 (
Further, the lens holder 1 is installed on the optical filter 35. In this case, the bonding process of the optical glass shown in
In the processes described above, the solid-state image sensor can be manufactured at a wafer base as a manufacturing unit using the first semiconductor wafer 29′ and the second semiconductor wafer 11. The first semiconductor wafer 29′ and the second semiconductor wafer 11 integrated into one unit are cut along the dicing line into chips. At this time, the camera module 36 is formed by cutting the optical filter 35, the dam shape spacer resin 34′ and the anisotropic conductive paste 25 together (
In the camera module 36 thus constructed, the solid-state image sensor and the passive chip 29 are connected jointly by the second lead-through electrode 23′ and the lead-out electrode 23″ connected o the second lead-through electrode 23′ are formed on the lower surface of the passive chip 29 as shown in
However, there is a fear that a part of the incident light may transmits through the optical filter 35 and the dam shape spacer resin 34′ leaking into the solid-state image sensor. As a countermeasure, this defect can be solved by covering the outer surface of the camera module with a light shielding cover 37. More simply, a black shielding paint is blown over the camera module with the lens 10 covered in the process shown in
The camera module completed in the manner as described above can be tested according to the conventional camera module testing method shown in
In the next, there is a fear that gas may come out from the resin in the manufacturing process described above. However, there will be no problem because the through-holes 23, 15 for the lead-through electrodes in the structure according to the embodiment shown above provide an escaping way for the output gas. That is, in the state where no electrode material is filled in the through-holes 23, 15, the hollows of the through-holes 23, 15 blocked only by metallic layers 12′ and 12 of the bonding pad portion. If gas was generated, these metallic layers 12′ and 12 are easily broken and gas is discharged outside. When the lead-through electrode portion used for discharging the gas is shielded in the final process, a module kept air-tight is completed.
In the method for manufacturing the camera module of the present invention shown in
That is, in this manufacturing method, the lens holder 1 can be bonded by confirming the position of the lens holder 1 to the photosensitive region 13, because it is possible to bond the lens holder 1 while the wafer testing in the state shown in
The optical filter 35 can be of injection molded plastic material. In this case, the filter is formed in advance by covering the photosensitive area 13 only without covering the bonding pad 12 and the dicing line. Then, hooking up the optical filter 35 with a peripheral flame (not shown) by a fishing pin and cut off this fishing pin at the time of dicing. Thus, the structure shown in
The optical filter 35 is supported by the spacer resin 34″ and a space is formed between the filter 35 and the micro-lens of the solid-state image sensor. As a result, the lens effect of the micro-lens 14 will not be impaired. The optical filter 35 can be a infrared rays cut filter or a low-pass filter for suppressing the optical moire or a combination of them.
Embodiment 4In this embodiment, after the process shown in
The present invention is not limited to the embodiments described above but can be modified variously. For example, although the lens holder 1 was arranged on the optical filter 35 in Embodiments 1 and 2, it may be fixed directly on the surface of the solid-state image sensor 6.
Further, although the optical filer 35 was formed on the dam-shape spacer resin 34, it may be formed in the lens holder 1 and a transparent plate may be formed on the spacer resin 34 instead of an optical filer.
Further, although the bonding pad portion is exposed after the optical filter 35 was bonded and formed on the whole surface of the wafer in Embodiment 3, as shown in
According to the embodiments of the present invention described above, the following various advantages are obtained.
(1) Because passive parts are arranged on the back side of the solid-state image sensor and the lead-through electrode is used for a leading out electrode without using a bonding wire, camera modules can be downsized to the same size of the solid-state image sensor.
(2) There is the photosensitive portion of the solid-state image sensor at the focusing position of the lens surface as conventional. However, the module becomes thin by the thickness of the printed circuit board (normally 0.3 mm-0.6 mm) because the module has no printed circuit board conventionally used. Although the thickness of the passive chip is added, it is normally possible to make the wafer thickness to be as thin as about 100 μm because a lead-through electrode is applied to the wafer. Accordingly, the module in which passive parts is composed by a semiconductor chip becomes further thinner by about 0.2 mm to 0.5 mm than the conventional one being close to the limit of the module size.
(3) The manufacturing process is hardly affected by the influence of dust generated in the assembling process of image sensors by forming a transparent board like the optical filter 35 covering the photosensitive area at the early assembling stage of the solid-state image sensor. In particular, the adhesion of Si waste generated in the dicing of the wafers after the completion of semiconductor final process to the photosensitive area can be prevented by covering the photosensitive area with the spacer resin, optical filter, lens holder and optical lens. Further, for the same reason, adhesion of dust in the assembling process can be prevented and the yield of solid-state image sensors can be promoted.
(4) In such a type solid-state image sensor which is assembled in wafer states with the bonding pad exposed on the top surface, the module test can be made at the stage of the wafer processing. Using a lens holder with a lens 10 fixed directly to the lens holder 1 instead of the conventional structure wherein the lens level 4 moves in the lens holder 1, it is possible to focus without moving the lens in the lens holder 1 in the wafer state by changing the pressing degree of the lens holder while monitoring the focus signal of the solid-state image sensor. This allows to repair a defective lens during the assembling process and realize the effective use of parts as well as reduction of manhour. It is a large advantage for promoting the full automation of the module test.
(5) The assembling of modules in the wafer state brings many advantages in addition to those described above. First, the location of the solid-state image sensor chips are recognized accurately in the wafer state. As a result, the assembling can be realized more accurately and with higher throughput by cooperating with an automatic mounting machine of the lens holder. That is, it was necessary to judge a chip position to adjust the position of the lens holder based on the chip position judged in a conventional optical module assembling system. While in the embodiment of the present invention, all the chip positions are readily known in the wafer state and lens holders can be mounted automatically at the position of every solid-sate image sensor 6 in a wafer when a chip position in a wafer is once determined, thereby saving a process for judging the chip positions.
(6) In the conventional process after sealing the photosensitive area with a transparent plate using bonding agent, the adhesion of dust to the surface of the optical filter or transparent plate has been a problem. However, according to the embodiments of the present invention, there is provided a distance determined by the thickness of the transparent plate and of the bonding agent between the optical filter of a transparent plate and the photosensitive area. Therefore, images of the dusts is unfocussed on the photosensitive area because they are on the way of the light path for focusing by the lens. Accordingly, the influence to black flaws can be greatly reduced when compared with dusts put on the photosensitive area of conventional solid-state image sensor.
(7) Because the wafer test can be made after sealing the photosensitive area with the transparent plate using bonding agent, the deterioration of assembling yield due to the dusts adhered on a transparent plate can be prevented. Thus, loss of lens holders, printed circuit board in the camera modules completed can be decreased.
Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details and representative embodiments shown and described herein. Accordingly, various modifications may be made without departing from the spirit or scope of the general inventive concept as defined by the appended claims and their equivalents.
Claims
1. A solid-state image pickup device comprising:
- a solid-state image sensor chip having a solid-state image sensor including a photosensitive element formed on a main surface of a semiconductor substrate and chip electrodes led to the back surface of the semiconductor substrate; and
- a passive chip bonded on the back surface of the solid-state image sensor chips having passive parts mounted in its thickness and electrically connected to the chip electrodes of the solid-state image sensors;
- wherein the passive chip is formed having a size equal to or smaller than a size of the solid-state image sensors.
2. A solid-state image pickup device according to claim 1, wherein the passive chip further comprises:
- a printed circuit board;
- a passive component buried in the printed circuit board;
- a wiring circuit printed on the surface of the printed circuit board for electrically connecting the chip electrode of the solid-state image sensor chip to the passive component of the passive chip and to mutually connect the passive components; and
- a lead-through electrode for connecting the chip electrode of the solid-state image sensing chip connected to the wiring element to an outer connecting terminal on the back surface of the passing chip.
3. A solid-state image pickup device according to claim 1, wherein the passive chip further comprises;
- a semiconductor substrate;
- a passive component formed on the main surface of the semiconductor substrate;
- a wiring circuit formed on the main surface of the semiconductor substrate for electrically connecting chip electrode of the solid-state image sensor chip to the passive component of the passive chip; and
- a lead-through electrode for connecting the chip electrode of the solid-state image sensor chip to the external connecting terminal on the back surface of the passive chip.
4. A solid-state image pickup device according to claim 3, wherein the passive component is a capacitor comprising an oxidized membrane formed on the surface of the semiconductor substrate and an electrode formed thereon.
5. A solid-state image pickup device according to claim 3, wherein the passive component is a capacitor comprising:
- a trench groove formed on the surface of the semiconductor substrate;
- an oxidized membrane formed on the surface of the semiconductor substrate including the trench groove and an electrode formed thereon.
6. A camera module comprising:
- a solid-state image sensor chip having a solid-state image sensor including a photosensitive element formed on a main surface of a semiconductor substrate and chip electrodes led to the back surface of the semiconductor substrate;
- a passive chip bonded on the back surface of the solid-state image sensor chips having passive parts mounted in its thickness and electrically connected to the chip electrodes of the solid-state image sensors;
- a lens holder fixed to enclose the photosensitive element of the solid-state image pickup sensor chip; and a lens barrel to fit into the lens holders;
- wherein the passive chip is formed having a size equal to or smaller than a size of the solid-state image sensors.
7. A solid-state image pickup device according to claim 6, wherein the passive chip further comprises:
- a printed circuit board;
- a passive component buried in the printed circuit board;
- a wiring circuit printed on the surface of the printed circuit board for electrically connecting the chip electrode of the solid-state image sensor chip to the passive component of the passive chip and to mutually connect the passive components; and
- a lead-through electrode for connecting the chip electrode of the solid-state image sensing chip connected to the wiring element to an outer connecting terminal on the back surface of the passing chip.
8. A camera module according to claim 6, wherein the passive chip further comprises;
- a semiconductor substrate;
- a passive component formed on the main surface of the semiconductor substrate;
- a wiring circuit formed on the main surface of the semiconductor substrate for electrically connecting chip electrode of the solid-state image sensor chip to the passive component of the passive chip; and
- a lead-through electrode for connecting the chip electrode of the solid-state image sensor chip to the external connecting terminal on the back surface of the passive chip.
9. A camera module according to claim 8, wherein the passive component is a capacitor comprising an oxidized membrane formed on the surface of the semiconductor substrate and an electrode formed thereon.
10. A camera module according to claim 8, wherein the passive component is a capacitor comprising:
- a trench groove formed on the surface of the semiconductor substrate;
- an oxidized membrane formed on the surface of the semiconductor substrate including the trench groove and an electrode formed thereon.
11. A camera module according to claim 10, wherein the solid-sate image sensor chip further comprises: and wherein the lens holder is fixed on the optical filer.
- a dam-shape spacer formed on a portion other than the photosensitive area on the main surface of the semiconductor substrate; and
- an optical filter fixed on the dam-shape spacer;
12. A camera module according to claim 11, wherein the outer surfaced of the lens holder, the solid-state image sensor chips and the passive chips mutually laminated by bonding, and the lens holder fixed on the solid-state image sensor chip surface are provided with a light shielding cover or are coated with the light shielding paint.
13. A method for manufacturing a camera module comprising steps of:
- forming passive components and a wiring section for connecting the passive components with each other in a plurality of chip areas on the main surface of the first semiconductor wafer respectively;
- forming a first lead-through electrode at a peripheral part of each of the chip areas, to which the wiring section in each chip area is connected;
- forming a solid-state image sensor in the plural number of chip areas on the main surface of the second semiconductor wafer respectively and pads connected to the solid-state mage sensors at a peripheral part of each of the chip areas;
- forming a second lead-through electrode that is connected to the pads at the peripheral parts of each of the chip areas;
- bonding the second semiconductor wafer on the main surface of the first semiconductor wafer by aligning the first and the second lead-through electrodes formed in each of the chip areas so as to contact with each other;
- forming a dam-shaped spacer at the peripheral part of each of the chip areas of the second semiconductor wafer;
- fixing an optical filter on the dam-shaped spacer formed at the peripheral part of each of the chip areas;
- fixing a lens holder on the optical filter in each of the chip areas; and
- cutting and separating the first and the second semiconductor wafers laminated and fixed to each other for every chip area.
14. A method for manufacturing a camera module according to claim 13, wherein the passive component is a capacitor comprising an oxidized membrane formed on the surface of the first semiconductor wafer and an electrode formed thereon.
15. A method for manufacturing a camera module according to claim 14, wherein the passive component is a capacitor comprising a trench groove formed on the surface of the semiconductor substrate, an oxidized membrane formed on the surface of the semiconductor substrate including the trench groove and an electrode formed thereon.
16. A method for manufacturing a camera module according to claim 15, wherein the first semiconductor wafer and the second semiconductor wafer are bonded to each other by anisotropic conductive paste.
17. A method for manufacturing camera module according to claim 16, wherein the first semiconductor wafer is an N type Si circuit board.
18. A method for manufacturing a camera module comprising steps of: removing a potion of the optical filter between the adjacent chip areas; and
- forming passive components and a wiring section for connecting the passive components with each other in a plurality of chip areas on the main surface of the first semiconductor wafer respectively;
- forming a first lead-through electrode at a peripheral part of each of the chip areas, to which the wiring section in each chip area is connected;
- forming a solid-state image sensor in the plural number of chip areas on the main surface of the second semiconductor wafer respectively and pads connected to the solid-state image sensors at a peripheral part of each of the chip areas;
- forming a second lead-through electrode that is connected to the pads at the peripheral parts of each of the chip areas;
- bonding the second semiconductor wafer on the main surface of the first semiconductor wafer by aligning the first and the second lead-through electrodes formed in each of the chip areas so as to contact with each other;
- forming a dam-shaped spacer at a portion other than the portion where the pad is formed in the peripheral part of each of the chip areas of the second semiconductor wafer;
- fixing an optical filter on the dam-shaped spacer formed at the peripheral part of each of the chip areas;
- fixing a lens holder on the optical filter in each of the chip areas;
- cutting and separating the first and the second semiconductor wafers laminated and fixed to each other for every chip area.
19. A method for manufacturing a solid-state image pickup device according to claim 18, wherein the passive component is a capacitor comprising an oxidized membrane formed on the surface of the first semiconductor wafer and an electrode formed thereon.
Type: Application
Filed: Apr 6, 2007
Publication Date: Oct 11, 2007
Applicant: Kabushiki Kaisha Toshiba (Tokyo)
Inventors: Hirokazu SEKINE (Fujisawa-City), Masanori Ashino (Kitakami-City)
Application Number: 11/697,451
International Classification: H04N 5/225 (20060101);