The present invention relates to integrated circuits, especially those capable of operating at high frequencies.
Numerous integrated circuits have been proposed and fabricated over the years. As devices gain faster clock speeds, a need has arisen for integrated circuits that possess the ability to function at high clock speeds with appropriate power consumption and power generation.
Some circuits, e.g. analog/digital converters, typically operate at lower frequencies as the typical method of constructing such circuits involves using printed wiring boards which can limit the functional processing speed, lower frequency integrated circuits, or a combination thereof. These circuits typically have additional cost due to the cost of housing the separate components.
Over the years, specialized devices have been developed which lend themselves to a certain class or range of operation. Pseudomorphic high electron mobility transistor (pHEMT) devices are currently used for microwave and millimeter wave integrated circuit devices (MMIC) having extremely high performance. Frequencies typically range from X-band (8 GHz) to W-band (110 GHz) for such MMIC devices.
At least three different pHEMT devices are currently fabricated: enhancement mode pHEMT, depletion mode pHEMT, and power pHEMT.
The present invention comprises an integrated circuit fabricated on a single substrate where the integrated circuit comprises devices comprising enhancement mode pHEMT, depletion mode pHEMT, and power pHEMT blocks, fabricated in a single process, wherein predetermined portions of the blocks may be interconnected to form a functional, operational electronic device.
The scope of protection is not limited by the summary of an exemplary embodiment set out above, but is only limited by the claims.
a is an exemplary depletion mode circuit;
b is a set of tables indicating typical values for enhancement mode, depletion mode and power pHEMT devices;
a is an exemplary device comprising functional blocks and showing various exemplary inputs and outputs;
a is an exemplary gain stage of an exemplary pHEMT device;
b is an exemplary 3 input “AND” cell of an exemplary pHEMT device;
Referring now to
Depletion mode pHEMT 30 may be single or multiple recess pHEMT 30. A typical circuit element using depletion mode pHEMT 30 is shown in
Typical values for enhancement mode 20, depletion mode 30 and power pHEMT 40 are shown in
Substrate 50 may be singly- or multi-layered and may comprise combinations of group III-V elements, e.g. GaAs, AlGaAs, InGaAs, InGaP, AlAs, and the like, or combinations thereof. In a preferred mode, substrate 50 comprises gallium arsenide.
Referring now to
Functional blocks 200,300,400 may themselves comprise higher level functional logic, e.g. may comprise digital gates, serial shift registers, serial to parallel converters, parallel to serial converters, level shift registers, variable gain radio frequency (RF) amplifiers, variable RF phase shifters, variable RF attenuators, resistors, inductors, capacitors, and the like, or combinations thereof.
For example, referring additionally to
Referring back to
Referring additionally to
Additional elements consisting of resistors, capacitors and inductors may be included in all blocks. Referring additionally to
a illustrates an exemplary gain stage of an exemplary pHEMT device 10.
In the operation of an exemplary embodiment, referring now to
In a currently preferred embodiment, logic circuitry design utilizes a four μm spacing for all interconnects. For depletion mode pHEMT 30, a single recess is preferred where Vp=one tenth of a volt (0.1v). For enhancement mode pHEMT 20, a single recess is also preferred where Vp=a negative one volt (−1v). For power pHEMT 30, a double recess is preferred where Vp=a negative one volt (−1v).
Referring now to
A first T-gate, as that term is understood by those of ordinary skill in the art, may then be fabricated, step 606, typically for all devices to be fabricated according to the present invention. Gate recess and metal may be fabricated, 608. Optionally, a second T-gate pass, 610, and gate recess and metal, 612, may be fabricated.
Additional elements consisting of resistors, capacitors and inductors may be included in all blocks. Additional layers may be fabricated on substrate 50, step 614, and various additional devices fabricated, e.g. resistors at step 616. These additional layers may be created on substrate 50 to form resistors, capacitors, and inductors, e.g. steps 616-622. Referring still to
An MIM top metal layer may be created, 626 followed by an air bridge metal layer, 628, and a protective overcoat, 630. Various finishing operations may then be accomplished, e.g. steps 634-642.
Using the present inventions method of fabrication, one watt power amplifiers, small signal monolithic microwave and millimeter wave integrated circuits (MMICs), and control circuits may be integrated on a single substrate such as substrate 50 (
It will be understood that various changes in the details, materials, and arrangements of the parts which have been described and illustrated above in order to explain the nature of this invention may be made by those skilled in the art without departing from the principle and scope of the invention as recited in the following claims.
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Number | Date | Country |
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EP 03102255.1 | Jul 2003 | NL |
Number | Date | Country | |
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20050124100 A1 | Jun 2005 | US |