1. Field of the Invention
The present invention relates to an optical assembly, and more particularly to an optical assembly having a simple structure and low profile.
2. Description of Related Arts
U.S. Pat. No. 7,329,054, issued on Feb. 12, 2008, to Epitaux et al. discloses an optical assembly. The optical assembly comprises a socket connector and an optical transceiver mounted on the socket connector. The socket comprises a bottom and four side walls to form a receiving cavity. The bottom wall defines a recess extending through one of the side walls. A plurality of contacts are mounted on the bottom wall except for the recess region. The optical module comprises a substrate defining a recess, a lens received in the recess, a laser diode and a photodetector received in the recess and between the substrate and the lens, a ribbon of fibers in optical connection with the lens, and integrated circuits such as drivers, trans-impedance amplifiers, electro-optical converters, etc. mounted on the substrate.
U.S. Pat. No. 7,373,033, issued on May 13, 2008, to Lu et al. discloses an optical module. The optical module comprises a substrate, an optoelectronic member mounted to the substrate, an optical waveguide array disposed at a bottom side of the substrate, and a mechanical support to support the optical waveguide. The waveguide array comprises a pair of alignment pins to mate with corresponding alignment holes of the substrate, or vice versa.
An improved optical assembly is desired to offer advantages over the related art.
An object of the present invention is to provide an optical assembly having a simple structure and low profile.
To achieve the above-mentioned object, an optical assembly comprises:
a socket comprising a housing and a plurality of contacts received in the housing, the housing comprising a bottom wall, a plurality of side walls extending upwardly from the bottom wall, and a receiving room formed by the bottom wall and the side walls; and
an optical module received in the receiving room and electrically connected with the contacts, the optical module comprising a carrier, a lens array mounted to a bottom of the carrier, and a waveguide extending along a first direction and optically coupling with the lens array, the lens array comprising a ferrule and a plurality of lens mounted on the ferrule, the ferrule comprising a flat wall, a pair of side walls extending from the flat wall, a receiving space formed by the flat wall and the side walls, and a first post projected from the flat wall into the receiving space along an upward direction, the side walls and the first post cooperating to align the waveguide with the lens array, the waveguide comprising a plurality of reflection potions at an end thereof to change a direction of an optical signal toward a second direction angled relative to the first direction.
According to the present invention, the waveguide comprises a plurality of reflection potions at an end thereof to change a transmission direction of an optical signal along a second direction with an angel relative to the first direction. There is no need to add additional reflection elements to the optical module. Therefore, the optical module can be designed to have a simple structure and smaller shape.
Reference will now be made in detail to a preferred embodiment of the present invention.
Referring to
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The lens array 22 comprises a ferrule 221 and a plurality of lens 222 mounted on the ferrule 221. The ferrule 221 comprises a flat wall 223, a pair of opposite side walls 224 extending from a side of the flat wall 223 along a first direction, a receiving space 225 formed by the flat wall 223 and the side walls 224, a first post 226 projected from the side of the flat wall 223 into the receiving space 225 along the first direction to mating with the mating hole 231 of the waveguide 23, and a pair of second posts 227 projected from an opposite side of the flat wall 223 along a second direction opposite to the first direction. The side walls 224, the first post 226, and the mounting hole 231 cooperated to make the waveguide 23 align with the lens array 22. The carrier 21 defines a pair of through holes 211 to mate with the pair of second posts 227 to make the lens array 22 align with the carrier 21. The flat wall 223 defines a through hole 238, the lens 222 received into the through hole 238. The lens 222 has an outer dimension measured along a extending direction of the through hole 238 that is smaller than a dimension of the through hole measured along the extending direction. Therefore, the lens 222 is recessed in the flat wall 223.
The heat sink 30 defines four through holes 31. Each of the through hole 31 is aligned with the hole 116 of the socket 10 for insertion of the bolt to fix the heat sink 30 to the housing 11 of the socket 10 and make the contacts 25 of the carrier 25 press against the contacts 12 of the socket 10. The integrated heat spreader 40 is sandwiched between the heat sink 30 and the optical-electronic engine 24 to help spread the heat from the optical-electronic engine 24 to the heat sink 30.
It is to be understood, however, that even though numerous characteristics and advanarmes of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.