Programmable hybrid memory and capacitive device in a DRAM process
A DRAM fabrication process for producing a semiconductor die adapted for having the ability to be both a hybrid memory and power supply capacitance. DRAM arrays on a semiconductor die may be individually selected to function as either a memory or as supplemental capacitance on a power distribution network serving circuits on one or more semiconductor dice in a three-dimensional active-on-active (AoA) stacked semiconductor die package configuration. Defective DRAM array trench capacitors can be repurposed to serve as supplemental capacitance on a power distribution network. DRAM array trench capacitors can be dynamically reassigned as supplemental capacitance when power supply monitors sense that additional power supply capacitance is needed.
1 . An integrated circuit (IC) stack, comprising:
a plurality of semiconductor IC dice stacked together and having circuit interconnections therebetween; and
at least one of the plurality of semiconductor IC dice comprises a plurality of dynamic random-access memory (DRAM) arrays, wherein each of the plurality of DRAM arrays comprises a plurality of trench capacitors and support circuits therefor,
wherein first trench capacitors of the plurality of trench capacitors of a first DRAM array of the plurality of DRAM arrays are adapted for coupling to a power bus rail, and second trench capacitors of the plurality of trench capacitors of the first DRAM array are adapted for memory use, and wherein a configuration selection circuit selects the second trench capacitors to be used for memory and the first trench capacitors to be coupled to the power bus.
2 . The IC stack of claim 1 , wherein the power bus is adapted for coupling to a power distribution network (PDN) of at least one of the plurality of semiconductor IC dice.
3 . The IC stack of claim 1 , wherein the first trench capacitors are adapted for coupling directly to the power bus.
4 . The IC stack of claim 1 , wherein the first trench capacitors are adapted for coupling to the power bus through the support circuits.
5 . The IC stack of claim 1 , wherein the first trench capacitors are adapted for coupling to a plurality of power buses.
6 . The IC stack of claim 1 , wherein the plurality of trench capacitors of a second DRAM array of the plurality of DRAM arrays are available for use as memory.
7 . The IC stack of claim 1 , wherein the configuration selection circuit selects, upon an increase in logic activity or current draw, which ones of the plurality of DRAM arrays have trench capacitors coupled to the power bus.
8 . The IC stack of claim 1 , wherein the configuration selection circuit dynamically allocates which ones of the plurality of DRAM arrays are used for memory and which other ones of the plurality of DRAM arrays have trench capacitors thereof coupled to the power bus.
9 . The IC stack of claim 8 , wherein the trench capacitors are selected for coupling to the power bus when power quality monitoring circuits detect a low power voltage or fault at an associated DRAM array thereof.
10 . A method for coupling capacitance to a power distribution network (PDN) in an integrated circuit (IC) stack, comprising:
selecting via a configuration selection circuit, first trench capacitors of a plurality of trench capacitors of a first dynamic random-access memory (DRAM) array to be coupled to a power bus wherein each of the plurality of DRAM arrays comprises a plurality of trench capacitors and support circuits therefor, and wherein the plurality of DRAM arrays are within at least one of a plurality of semiconductor IC dice that are stacked together and have circuit interconnections therebetween; and
selecting, via the configuration selection circuit, second trench capacitors of the plurality of trench capacitors of the first DRAM array to be used for memory, wherein the power bus is adapted for coupling to the PDN.
11 . The method of claim 10 further comprising for detecting, via power quality monitoring circuits, a low power voltage or fault at an associated DRAM array.
12 . The method of claim 11 , further comprising assigning DRAM arrays for either use for memory or for coupling trench capacitors, associated with DRAM arrays not selected for use as memory, to the power bus based on detecting the low power voltage or fault.
13 . The method of claim 10 , wherein the configuration selection circuit dynamically assigns which ones of the plurality of DRAM arrays are used for memory and which other ones of the plurality of DRAM arrays, not used for memory, have trench capacitors thereof coupled to the power bus.
14 . The method of claim 13 , storing, via the configuration selection circuit, the assignments of which of the ones of the plurality of DRAM arrays are used for memory and which of the trench capacitors, associated with the other ones of the plurality of DRAM arrays not used for memory, are coupled to the power bus.
15 . A system of integrated circuit (IC) dice arranged in a three-dimensional stacked configuration, comprising:
an interposer base adapted for connecting to external circuits;
a logic circuit IC die electrically coupled to the interposer base;
at least one memory IC die comprising a plurality of dynamic random-access memory (DRAM) arrays, each of the plurality of DRAM arrays comprising a plurality of trench capacitors and support circuits therefor; and
at least one digital logic and processing IC die,
wherein first trench capacitors of the plurality of trench capacitors of a first DRAM array of the plurality of DRAM arrays are dynamically allocated to be used for memory and second trench capacitors of the plurality of trench capacitors of the first DRAM array are dynamically allocated to be coupled to a power bus, the power bus is adapted for coupling to a power distribution network (PDN) for supplying power to the IC dice.
16 . The system of claim 15 , wherein a configuration selection circuit is programmed to select a first one or more of the plurality of DRAM arrays to be used for memory and a second one or more of the plurality of DRAM arrays have trench capacitors thereof coupled to the power bus and are not used for memory.
17 . The system of claim 15 , wherein signals and power are coupled between the stacked ICs with through silicon vias (TSV).