Semiconductor device and methods of manufacture
An optical interposer is utilized in order to send and receive signals from external sources such as an optical fiber. The optical interposer receives the signals, routes the signals to various attached components, and when desired, converts the signals between optical and electrical signals. The various attached components may include memory devices such as a high bandwidth memory, processing components, such as an xPU, combinations of these, or the like.
1 . A method of manufacturing a semiconductor device, the method comprising:
receiving a photonic interposer, the photonic interposer comprising:
at least one optical input; and
electrical external connections;
bonding a first semiconductor device to a first set of the electrical external connections;
bonding a second semiconductor device to a second set of the electrical external connections;
bonding a third semiconductor device to a third set of the electrical external connections;
bonding a first I/O semiconductor device to a fourth set of the electrical external connections, wherein the first I/O semiconductor device is operably connected to both the first semiconductor device and the second semiconductor device through at least one first optical component; and
bonding a second I/O semiconductor device to a fifth set of the electrical external connections, wherein the second I/O semiconductor device is fully electrically connected to the third semiconductor device.
2 . The method of claim 1 , wherein the first semiconductor device is a high bandwidth memory device.
3 . The method of claim 1 , wherein the first semiconductor device is a processing unit.
4 . The method of claim 1 , further comprising:
bonding a fourth semiconductor device to a sixth set of the electrical external connections, wherein the second I/O semiconductor device is operably connected to the fourth semiconductor device through at least one second optical component.
5 . The method of claim 1 , further comprising bonding a laser die to a sixth set of the electrical external connections.
6 . The method of claim 1 , further comprising:
bonding a fourth semiconductor device to a sixth set of the electrical external connections, wherein the second I/O semiconductor device is operably connected to the fourth semiconductor device without passing through an optical component.
7 . The method of claim 6 , wherein after the bonding the second I/O semiconductor device, the second I/O semiconductor device is physically located between the third semiconductor device and the fourth semiconductor device.
8 . A method of transmitting information, the method comprising:
receiving a first optical signal in an optical interposer;
converting the first optical signal to a first electrical signal in the optical interposer;
sending the first electrical signal to a first I/O die;
sending a second electrical signal from the first I/O die to the optical interposer;
converting the second electrical signal to a second optical signal;
routing the second optical signal to a region beneath a first semiconductor device, the first semiconductor device being adjacent to a second semiconductor device and a third semiconductor device, the second semiconductor device and the third semiconductor device being electrically connected to the optical interposer;
routing a third optical signal from the first I/O die to a second I/O die through the optical interposer; and
routing a third electrical signal from the second I/O die to the third semiconductor device.
9 . The method of claim 8 , further comprising:
converting the second optical signal to a fourth electrical signal; and
sending the fourth electrical signal to the first semiconductor device.
10 . The method of claim 8 , wherein the first semiconductor device is a high bandwidth memory device.
11 . The method of claim 8 , wherein the first semiconductor device is a processing unit.
12 . The method of claim 8 , further comprising receiving a laser from a laser die bonded to the optical interposer.
13 . The method of claim 8 , further comprising:
converting the second optical signal to a fourth electrical signal; and
sending the fourth electrical signal to a third I/O die.
14 . The method of claim 13 , further comprising sending a fifth electrical signal from the third I/O die to the first semiconductor device without converting the fifth electrical signal into an optical signal.
15 . A semiconductor device comprising:
an optical interposer;
a first electronic integrated circuit die electrically connected to the optical interposer;
a second electronic integrated circuit die electrically connected to the optical interposer;
a first I/O device electrically connected to the optical interposer; and
a second I/O device electrically connected to the optical interposer and at least partially optically connected to the first I/O device through the optical interposer, wherein the second I/O device is fully electrically connected to a third electronic integrated circuit die, wherein the third electronic integrated circuit die is electrically connected to the optical interposer.
16 . The semiconductor device of claim 15 , further comprising a laser die electrically and optically connected to the optical interposer.
17 . The semiconductor device of claim 15 , wherein the second I/O device is physically located between the third electronic integrated circuit die and a fourth electronic integrated circuit die.
18 . The semiconductor device of claim 15 , further comprising an optical fiber attached over the first I/O device.
19 . The semiconductor device of claim 15 , further comprising an optical fiber attached to the optical interposer.
20 . The semiconductor device of claim 15 , wherein the first electronic integrated circuit die is a stacked high bandwidth memory module.