1. Technical Field
The present invention relates generally to a method for manufacturing lens groups.
2. Description of Related Art
At present, small scale cameras are widely used in many electronic products, such as mobile phones. Micro-lens modules comprising a plurality of aligned lenses are used in the small scale cameras. The micro-lens module is typically manufactured by a wafer level package method. The method is described in detail as follows.
In the wafer level package method, a plurality of micro-lens arrays is formed by a press molding process and then the micro-lens arrays are aligned with each other. Each micro-lens array includes a plurality of micro-lenses. The micro-lenses of each micro-lens array are arranged in rows. The lens arrays are sequentially stacked on one another in a manner that lenses of one lens array are aligned with respective lenses of other lens arrays. Then lens arrays are packaged together and cut into lens groups comprising a plurality of lenses aligned with each other.
This wafer level package method has an advantage in mass production. However, misalignment among the lenses of each lens array may inevitably occur in the wafer level package method. This may reduce the quality of the lens group.
What is needed, therefore, is a method for manufacturing lens groups to overcome the above-described deficiencies.
Many aspects of the present method for manufacturing lens groups can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present method for manufacturing lens groups. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Reference will now be made to the drawings to describe present embodiments of micro-lens array assembly and method for manufacturing the same.
Referring to
Each micro lens 40 includes an optical portion 402 and a non-optical portion 404 surrounding the optical portion 402. Each micro lens 70 includes an optical portion 702 and a non-optical portion 704 surrounding the optical portion 702. The optical portion 402 of the lens 40 and the optical portion 702 are configured for performing transmission, refraction and reflection of light passing therethrough. The optical portion 402 of the micro lens 40 has a concave surface 42 and a convex surface 44 aligned with each other. The optical portion 702 of the micro lens 70 has a concave surface 72 and a convex surface 74 aligned with each other.
The first lens array 30 has a first surface 302 and a second surface 304 facing away from the first surface 302. The concave surfaces 42 of the micro lens 40 are formed in the first surface 302 and the convex surfaces 44 protrude from the second surface 304. The second lens array 60 has a third surface 602 and a fourth surface 604 facing away from the third surface 602. The concave surfaces 72 of the micro lens 70 are formed in the third surface 602 and the convex surfaces 74 are protruded from the fourth surface 604. Each non-optical portion 404 has two opposite surfaces (not labeled) belonging to the first surface 302 and the second surface 304 respectively. Each non-optical portion 704 has two opposite surfaces (not labeled) belonging to the first surface 602 and the second surface 604 respectively.
The optical portion 402 of the micro lens 40 has a principal axis O1. Two positioning structures are formed on each non-optical portion 404. The two positioning structures are axisymmetric about the principal axis O1. The optical portion 702 of the micro lens 70 has a principal axis O2. Two positioning structures are formed on each non-optical portion 704. The two positioning structures are axisymmetric about the principal axis O2. The two positioning structures corresponding to the first lens array 30 are two positioning recesses 3013 formed in first surface 302 of the first lens array 30. The two positioning structures corresponding to the second lens array 60 are two positioning protrusions 6013 extending from the third surface 602 of the second lens array 60. The positioning protrusions 6013 of the second lens array 60 are configured for being matingly engaged in the corresponding positioning recesses 3013 of the first lens array 30, thereby the lenses 40 of the first lens array 30 are aligned with the respective lenses 70 of the second lens array 60.
It is understood that the lenses 40 and lenses and can also be plano-concave lenses or other types. Also, the two positioning structures can also be non-axisymmetric. The number of the positioning structure corresponding to one lens 40 or one lens 70 can also be one or more than two. A shape of the positioning protrusion 6013 can be cylindrical, cuboid, pyramidal, etc.
A method for manufacturing the micro-lens array assembly 80 in accordance with a second exemplary embodiment is described as follows. The method includes following steps. Step 1: a first mold used for forming the first lens array 30 is provided. Step 2: a first light-pervious substrate is formed with a molding material on two opposite surfaces thereof and is press molded by the first mold to form the first lens array 30. Step 3: a second mold used for forming the second lens array 60 is provided. Step 4: a second light-pervious substrate is formed with a molding material on two opposite surfaces thereof and is press molded by the second mold to form the second lens array 60. Step 5: the first lens array 30 and the second lens array 60 are stacked on one another in a manner that the positioning protrusions 6013 of the second lens tray 60 are matingly engaged in the respective positioning recesses 3013 of the first lens array 30, thus aligning the micro lenses of the first and second lens arrays 30 and 60.
Referring to
In step 2, a first light-pervious substrate 300, such as a silicon panel, is provided. A first molding material layer 302 and a second molding material layer 304 are formed on two opposite surfaces of the first light-pervious substrate 300, respectively. The first light-pervious substrate 300 formed with the first and second molding material layers 302 and 304 are positioned between the first half mold 22 and the second half mold 24. Generally, a material of the first and second lens arrays 30 and 60 can be optical plastics. In this embodiment, the first molding material layer 302 and the second molding material layer 304 are different from the material of the light-pervious substrate 300. The first and second molding material layers 302 and 304 are heated. Then the first half mold 22 is moved towards and presses firmly against the first molding material layer 302 and the second half mold 24 is moved towards and presses firmly against the first molding material layer 304. Then the light-pervious substrate 300 and the first and second molding material layers 302 and 304 are solidified by a method, such as irradiating ultraviolet light. Referring to
A material of the first mold 20 can be metal. The first mold 20 can be formed by a precision machining process. Referring to
When the material of the first, second molding material layers 302, 304 and the light-pervious substrate 300 are same, the first and second molding material layers 302 and 304 can be omitted. Also, the first and second molding material layers 302 and 304 can have same or different materials.
Referring to
Referring to
For use in cameras, the lens array assembly 80 can be cut into a plurality of lens modules, each of which includes a micro lens 40 and a micro lens 70 aligned with each other. Also, the lens array assembly 80 can be aligned with other optical element arrays, for example spacer array and infrared-cut filter array, to form a lens module array. An image sensor array may be stacked with the lens module array to form a camera module array.
Referring to
Referring to
In this embodiment, the spacer 12 is configured for spacing the micro lens module 11 and the image sensor 13. In some cases, the spacer can be omitted.
The micro camera module 10 can be formed by following steps. A lens array assembly 80, a spacer array, and an image sensor array are sequentially stacked on one another to form a camera module array. Then the camera module array is cut into a plurality camera modules. The camera module generally has a cuboid shape. Furthermore, the camera module is installed in the respective receiving members 100, thus forming the micro camera module 10. Corresponding to the shape of the camera module, the receiving member 100 generally has a cuboid shape.
It is to be understood that the above-described embodiment is intended to illustrate rather than limit the invention. Variations may be made to the embodiment without departing from the spirit of the invention as claimed. The above-described embodiments are intended to illustrate the scope of the invention and not restrict the scope of the invention.
Number | Date | Country | Kind |
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200810302750.9 | Jul 2008 | CN | national |