Claims
- 1-26. (canceled)
- 27. A thick film millimeter wave transceiver module comprising:
a base plate; a multi-layer, thick film substrate board formed from a plurality of planar sheets of low temperature, co-fired ceramic material stacked and bonded together without intermediate conductive sheet layers so as to constitute a single, planar substrate board having one planar bottom surface and one planar top surface, said substrate board comprising: a DC signals layer formed from a separate sheet and having embedded DC signal tracks and connections, a ground layer formed from a separate sheet and having ground connections, a device layer formed from a separate sheet and having capacitors and resistors embedded therein, a plurality of MMIC chips mounted on the top surface and operable to transmit and receive millimeter wavelength signals and connected to capacitors and resistors in the device layer; and a channelization plate received over the top surface of the substrate board and having channels formed to receive the MMIC chips and provide air isolation between any transmit and receive signals.
- 28. A thick film millimeter wave transceiver module according to claim 27, and further comprising a radio frequency cover received over said channelization plate.
- 29. A thick film millimeter wave transceiver module according to claim 27, and further comprising at least one of isolation, interconnect or ground vias which extend through at least two layers.
- 30. A thick film millimeter wave transceiver module according to claim 29, wherein said vias extend through the device layer to the ground layer.
- 31. A thick film millimeter wave transceiver module according to claim 27, wherein said MMIC chips are mounted using solder, conductive adhesive or shims.
- 32. A thick film millimeter wave transceiver module according to claim 27, wherein said ground layer is positioned over said DC signals layer.
- 33. A thick film millimeter wave transceiver module according to claim 27, wherein said device layer is positioned over said ground layer.
- 34. A thick film millimeter wave transceiver module according to claim 27, and further comprising a base plate on which the planar substrate board is supported.
- 35. A thick film millimeter wave transceiver module according to claim 27, wherein each of the planar sheets is about 1 to about 4 mils thick.
- 36. A multi-layer thick film substrate board used in millimeter wave transceiver modules comprising:
a plurality of planar sheets of low temperature, co-fired ceramic material stacked and bonded together without intermediate conductive sheet layers so as to constitute a single, planar substrate board having one planar bottom surface and one planar top surface on which a plurality of MMIC chips can be mounted and operable to transmit and receive millimeter wavelength signals, and further comprising, a DC signals layer formed from a separate sheet and having embedded DC signal tracks and connections, a ground layer formed from a separate sheet having ground connections, and a device layer formed from a separate sheet having capacitors and resistors embedded therein that connect to MMIC chips.
- 37. A multi-layer thick film substrate board according to claim 36, and further comprising at least one of isolation, interconnect or ground vias which extend through at least two layers.
- 38. A multi-layer thick film substrate board according to claim 37, wherein said vias extend through the device layer to the ground layer.
- 39. A multi-layer thick film substrate board according to claim 36, and further comprising MMIC chips mounted using solder, conductive adhesive or shims.
- 40. A multi-layer thick film substrate board according to claim 36, wherein said ground layer is positioned over said DC signals layer.
- 41. A multi-layer thick film substrate board according to claim 36, wherein said device layer is positioned over said ground layer.
- 42. A multi-layer thick film substrate board according to claim 36, wherein each of planar sheets within said multi-layer substrate board is about 1 to about 4 mils thick.
- 43. A method of forming a thick film substrate board used for millimeter wave transceiver modules which comprises:
stacking and bonding together a plurality of planar sheets of low temperature cofired ceramic material stacked without intermediate conductive sheet layers to form a substantially planar board having one planar bottom surface and one planar top surface, wherein the board includes a DC signals layer formed from a separate sheet and having embedded DC signal tracks and connections, a ground layer formed from a separate sheet having ground connections, and a device layer formed from a separate sheet having capacitors and resistors embedded therein that connect to MMIC chips; and mounting at least one MMIC chip onto the top surface of the board such that the at least one MMIC chip operatively connects to selected components within at least one layer via interconnects for transmitting and receiving millimeter wavelength RF signals.
- 44. A method according to claim 43, which further comprises forming the ground layer over the DC signals layer.
- 45. A method according to claim 43, which further comprises forming the device layer over the ground layer.
- 46. A method according to claim 43, which further comprises forming at least one of isolation, interconnect or ground vias which extend through at least two layers.
- 47. A method according to claim 46, which further comprises forming the vias to extend through the device layer to the ground layer.
- 48. A method according to claim 43, which further comprises mounting the MMIC chips using solder, conductive adhesive or shims.
- 49. A method according to claim 43, which further comprises forming each of the planar sheets within the multi-layer substrate board about 1 to about 4 mils thick.
RELATED APPLICATION
[0001] This application is based upon prior filed copending U.S. provisional application Serial No. 60/231,926 filed Sep. 11, 2000.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60231926 |
Sep 2000 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
09863030 |
May 2001 |
US |
Child |
10850224 |
May 2004 |
US |