Parallel microled-based free space optical interconnects
Optically coupling two or more optical transceiver integrated circuits (OTRIC) using OTRIC-on-substrate assemblies is disclosed. The optical transceiver integrated circuits may be attached to different substrates, where the substrates may allow the passage of optical signals to and from the optical transceiver integrated circuits. The OTRIC-on-substrate assemblies may comprise one or more optoelectronic device arrays, lenses and mirrors, mounts, and optical transmission medium. The optical transmission medium may be free space or and optical fiber. An optical coupling mechanism may be used in conjunction with the OTRIC-on-substrate assemblies to link optical signals between the optical transceiver integrated circuits.
1 . An optical interconnect system having one or more optical transceiver integrated circuits, comprising:
a first substrate;
a first integrated circuit mounted to the first substrate;
a first optical transceiver integrated circuit mounted to the first substrate, the first optical transceiver integrated circuit having a first optoelectronic device array on a side of the first optical transceiver integrated circuit facing a plane defined by the first substrate, the first optoelectronic device array configured to emit parallel optical signals;
the first optoelectronic device array having a first set of microLEDs bonded to the first optical transceiver integrated circuit;
the first substrate including electrical connections to the first integrated circuit and the first optical transceiver integrated circuit and the first substrate including a first aperture positioned to allow passage of the parallel optical signals to and from the first optoelectronic device array; and
a first lens in the first aperture configured to relay parallel optical signals from the first optoelectronic device array.
2 . The optical interconnect system of claim 1 , wherein the first substrate is transparent to allow the relaying of parallel optical signals.
3 . The optical interconnect system of claim 2 , wherein the first lens is mounted to a first lens mount on an opposite side of the first substrate, relative to the first optoelectronic device array.
4 . The optical interconnect system of claim 1 , further comprising a heat sink on the first integrated circuit.
5 . The optical interconnect system of claim 4 , wherein the heat sink is also on the first optical transceiver integrated circuit.
6 . The optical interconnect system of claim 5 , wherein the heat sink is attached to a first surface of the first integrated circuit opposite to a second surface of the first integrated circuit used to mount the first integrated circuit to the first substrate.
7 . The optical interconnect system of claim 1 , further comprising:
a second substrate;
a second integrated circuit mounted to the second substrate;
a second optical transceiver integrated circuit mounted to the second substrate, the second optical transceiver integrated circuit having a second optoelectronic device array facing a plane defined by the second substrate and configured to receive parallel optical signals;
the second optoelectronic device array having a first set of photodetectors;
a second lens facing the second optoelectronic device array and configured to relay parallel optical signals to the second optoelectronic device array; and
an optical transmission medium between the first optical transceiver integrated circuit and the second optical transceiver integrated circuit.
8 . The optical interconnect system of claim 7 , wherein the first integrated circuit is a memory integrated circuit, and the second integrated circuit is a processor integrated circuit.
9 . The optical interconnect system of claim 7 , wherein the first and second optical transceiver integrated circuits face each other.
10 . The optical interconnect system of claim 9 , wherein the optical transmission medium is free-space.
11 . The optical interconnect system of claim 10 , wherein the first and second optical transceiver integrated circuits are on different package substrates and printed circuit boards.
12 . The optical interconnect system of claim 7 , wherein the first and second optical transceiver integrated circuits are placed side-by-side to each other.
13 . The optical interconnect system of claim 12 , wherein the optical transmission medium is free-space and an optical coupling mechanism having one or more turning mirrors is located between the first and second optoelectronic device arrays.
14 . The optical interconnect system of claim 13 , wherein the first and second optical transceiver integrated circuits are on different package substrates.
15 . The optical interconnect system of claim 12 , wherein the optical transmission medium is a multicore optical fiber.