Technologies for current biasing for three-dimensional crosspoint memory cells
Techniques for current biasing for memory cells are disclosed. In the illustrative embodiment, a source follower sets a voltage on a bitline of a memory cell. The current through the source follower is limited by a current mirror in series with the source follower. When additional current is required that the source follower cannot supply, a feedback transistor is activated to provide additional current. Additionally, in some embodiments, the current through the feedback transistor is copied to a current mirror, and the copied current is used to sense the state of the memory cell.
1 . A memory die comprising:
a plurality of three-dimensional crosspoint memory cells; and
a voltage regulator to drive a bitline of the plurality of three-dimensional crosspoint memory cells, the voltage regulator to drive the bitline comprising:
a first PMOS transistor, wherein a source of the first PMOS transistor is connected to a positive rail;
an NMOS transistor, wherein a drain of the NMOS transistor is connected to a drain of the first PMOS transistor, wherein a source of the NMOS transistor is connected to the bitline; and
a second PMOS transistor, wherein a source of the second PMOS transistor is connected to the positive rail, wherein a drain of the second PMOS transistor is connected to the source of the NMOS transistor, wherein a gate of the second PMOS transistor is connected to the drain of the first PMOS transistor and the drain of the NMOS transistor.
2 . The memory die of claim 1 , further comprising:
a current mirror bias voltage regulator connected to a gate of the first PMOS transistor; and
a bitline voltage demarcation bias voltage regulator connected to a gate of the NMOS transistor.
3 . The memory die of claim 1 , further comprising:
a third PMOS transistor, wherein a source of the third PMOS transistor is connected to the positive rail, wherein a gate of the third PMOS transistor is connected to the drain of the first PMOS transistor and the drain of the NMOS transistor; and
one or more digital logic gates to sense a voltage at a drain of the third PMOS transistor.
4 . The memory die of claim 3 , further comprising:
a second NMOS transistor, wherein a drain of the second NMOS transistor is connected to the drain of the third PMOS transistor, wherein a source of the second NMOS transistor is connected to a negative rail, wherein a gate of the second NMOS transistor is connected to a bias voltage to limit current through the second NMOS transistor.
5 . The memory die of claim 4 , wherein the bias voltage is to limit current through the second NMOS transistor to between 5 and 15 microamps.
6 . The memory die of claim 3 , wherein the third PMOS transistor has a width/length ratio at least twice a width/length ratio of the second PMOS transistor.
7 . The memory die of claim 1 , further comprising a voltage regulator to drive a wordline of the plurality of three-dimensional crosspoint memory cells, the voltage regulator to drive the wordline comprising:
a second NMOS transistor, wherein a source of the second NMOS transistor is connected to a negative rail;
a third PMOS transistor, wherein a drain of the third PMOS transistor is connected to a drain of the second NMOS transistor, wherein a source of the third PMOS transistor is connected to the wordline; and
a third NMOS transistor, wherein a drain of the third NMOS transistor is connected to the source of the third PMOS transistor, wherein a gate of the third NMOS transistor is connected to the drain of the second NMOS transistor and the drain of the third PMOS transistor.
8 . The memory die of claim 7 , further comprising a fourth NMOS transistor, wherein a source of the third NMOS transistor is connected to a drain of the fourth NMOS transistor, wherein a source of the fourth NMOS transistor is connected to the negative rail.
9 . The memory die of claim 8 , further comprising a current limit bias voltage regulator connected to a gate of the fourth NMOS transistor.
10 . A system comprising the memory die of claim 1 , the system comprising:
one or more processors; and
one or more storage devices communicatively coupled to the one or more processors, the one or more storage devices comprising the memory die.
11 . A memory die comprising:
a plurality of three-dimensional crosspoint memory cells;
sensor circuitry comprising:
a current mirror PMOS transistor, wherein a source of the current mirror PMOS transistor is connected to a positive rail, wherein a gate of the current mirror PMOS transistor is connected to a drain of a second PMOS transistor that is to provide current to a memory cell of the plurality of three-dimensional crosspoint memory cells; and
one or more digital logic gates to sense a voltage at a drain of the current mirror PMOS transistor based on a state of the memory cell; and
a voltage regulator to drive a bitline of the plurality of three-dimensional crosspoint memory cells, the voltage regulator to drive the bitline comprising:
a third PMOS transistor, wherein a source of the third PMOS transistor is connected to the positive rail;
an NMOS transistor, wherein a drain of the NMOS transistor is connected to a drain of the third PMOS transistor, wherein a source of the NMOS transistor is connected to the bitline; and
the second PMOS transistor, wherein a source of the second PMOS transistor is connected to the positive rail, wherein a drain of the second PMOS transistor is connected to the source of the NMOS transistor, wherein a gate of the second PMOS transistor is connected to the drain of the third PMOS transistor and the drain of the NMOS transistor.
12 . The memory die of claim 11 , further comprising:
a second NMOS transistor, wherein a drain of the second NMOS transistor is connected to the drain of the current mirror PMOS transistor, wherein a source of the second NMOS transistor is connected to a negative rail, wherein a gate of the second NMOS transistor is connected to a bias voltage to limit current through the second NMOS transistor.
13 . A memory die comprising:
a plurality of three-dimensional crosspoint memory cells; and
means for providing a demarcation voltage to a bitline of the plurality of three-dimensional crosspoint memory cells;
means for limiting current through the means for providing the demarcation voltage;
means for providing additional current to the bitline in response to sensing that current through the means for providing the demarcation voltage is limited; and
means for sensing current through the means for providing additional current to the bitline.
14 . The memory die of claim 13 ,
wherein the means for limiting current through the means for providing the demarcation voltage comprises a first PMOS transistor, wherein a source of the first PMOS transistor is connected to a positive rail,
wherein the means for providing the demarcation voltage comprises an NMOS transistor, wherein a drain of the NMOS transistor is connected to a drain of the first PMOS transistor, wherein a source of the NMOS transistor is connected to the bitline,
wherein the means for providing additional current to the bitline comprises a second PMOS transistor, wherein a source of the second PMOS transistor is connected to the positive rail, wherein a drain of the second PMOS transistor is connected to the source of the NMOS transistor, wherein a gate of the second PMOS transistor is connected to the drain of the first PMOS transistor and the drain of the NMOS transistor.
15 . The memory die of claim 14 , further comprising:
a current mirror bias voltage regulator connected to a gate of the first PMOS transistor; and
a bitline voltage demarcation bias voltage regulator connected to a gate of the NMOS transistor.
16 . The memory die of claim 14 , further comprising a voltage regulator to drive a wordline of the plurality of three-dimensional crosspoint memory cells, the voltage regulator to drive the wordline comprising:
a second NMOS transistor, wherein a source of the second NMOS transistor is connected to a negative rail;
a third PMOS transistor, wherein a drain of the third PMOS transistor is connected to a drain of the second NMOS transistor, wherein a source of the third PMOS transistor is connected to the wordline; and
a third NMOS transistor, wherein a drain of the third NMOS transistor is connected to the source of the third PMOS transistor, wherein a gate of the third NMOS transistor is connected to the drain of the second NMOS transistor and the drain of the third PMOS transistor.
17 . The memory die of claim 16 , further comprising a fourth NMOS transistor, wherein a source of the third NMOS transistor is connected to a drain of the fourth NMOS transistor, wherein a source of the fourth NMOS transistor is connected to the negative rail.
18 . The memory die of claim 17 , further comprising a current limit bias voltage regulator connected to a gate of the fourth NMOS transistor.
19 . The memory die of claim 13 , wherein the means for sensing current through the means for providing additional current comprises:
a current mirror PMOS transistor, wherein a source of the current mirror PMOS transistor is connected to a positive rail, wherein a gate of the current mirror PMOS transistor is connected to a drain of a second PMOS transistor that is part of the means for providing additional current; and
one or more digital logic gates to sense a voltage at a drain of the current mirror PMOS transistor.
20 . The memory die of claim 19 , further comprising:
an NMOS transistor, wherein a drain of the NMOS transistor is connected to the drain of the current mirror PMOS transistor, wherein a source of the NMOS transistor is connected to a negative rail, wherein a gate of the NMOS transistor is connected to a bias voltage to limit current through the NMOS transistor.
21 . A system comprising the memory die of claim 14 , the system comprising:
one or more processors; and
one or more storage devices communicatively coupled to the one or more processors, the one or more storage devices comprising the memory die.