Low threshold transistor logic, e.g., CMOS, is desirable because it facilitates reducing the footprint of circuits, requires a smaller power supply capability, etc. But low threshold voltage logic suffers substantial leakage current during a non-active mode that can, e.g., negate the benefit of the reduced power consumption during an active mode.
The Background Art addressed the leakage problem with a multi-threshold MOS (MTMOS) architecture, e.g., MTCMOS-type, that serially couples a sleep transistor and a low threshold logic circuit between a system-supply voltage (VDD) and a system-ground voltage (VSS). The sleep transistor has a high threshold voltage and so exhibits low leakage current in a sleep mode, but is slower to switch to the active mode than a comparable low-threshold transistor. As its name suggests, the sleep transistor reduces the non-active mode current of the low-threshold device because it serially connects the low-threshold logic to VSS. The sleep transistor imposes little in the way of a switching-speed penalty because it is always on during the active mode of the low-threshold logic.
High threshold voltages are typically achieved by applying a body bias voltage (Vbb) to the sleep transistor. The requisite Vbb generator circuitry increases the foot print of the overall device. Also, the high threshold of the sleep transistor requires a larger channel size to obtain comparable current capability, which also increases the overall footprint.
The Background Art addressed the footprint problem associated with the Vbb generator circuitry by using a dynamic threshold MOS (DTMOS) transistor as the sleep transistor. In a DTMOS transistor, the gate is connected to the well (or, in other words, the transistor body), which forward biases the source/body junction. This eliminates the need for a separate Vbb generator circuit. As the gate voltage (Vgg) is used to bias the body, the threshold voltage varies with (or, in other words, is dynamic in proportion to) changes in the gate voltage.
Sub-threshold voltage leakage of a DTMOS transistor is generally low. But a high gate voltage which is also applied as Vbb can, in effect, forward bias one of the gate junctions (analogous to forward-biasing a diode) in the transistor and cause a forward-biased-diode-type leakage current. This is generally depicted in the circuit diagram of Background Art
In Background Art
Such junction forward-biasing can be solved by limiting Vgg to about 0.6 volts, which in Background Art
At least one embodiment of the present invention provides an arrangement to ease restriction upon gate voltage (Vgg) magnitudes for a dynamic threshold MOS (DTMOS) transistor. Such an arrangement may include: an MOS transistor including a gate and a body; and a body-bias-voltage (Vbb) governor (Vbb-governor) circuit to provide a governed version of Vgg of the MOS transistor to the body of the MOS transistor as a dynamic body bias-voltage (Vbb).
Additional features and advantages of the invention will be more fully apparent from the following detailed description of example embodiments, the accompanying drawings and the associated claims.
Excluding
In developing the present invention, the following problem with the Background Art was recognized and a path to a solution identified. The Background Art prevents unwanted forward biasing of one of the gate junctions in a DTMOS (again, dynamic threshold MOS) transistor by placing a limit on the magnitude of VDD (again, the system-supply voltage), and consequently on the magnitude of Vgg (again, the gate voltage). This is a simplistic solution that can at least frustrate, if not preclude, the use of one or more DTMOS transistors in circuits for which values of VDD and/or Vgg above a threshold voltage of the DTMOS transistor (e.g., about 0.6 volts, assuming that the DTMOS transistor is N-type) can (desirably) be present, which is a problem. An arrangement to impose an upper bound on the magnitude of Vbb (again the body bias voltage), e.g., Vbb≦Vsleepthreshold, would ease restrictions upon VDD and/or Vgg, and thus solve the problem mentioned above. At least one embodiment of the present invention provides such an arrangement.
In
In architecture 100A, LT-circuit 102 and sleep device 104 are serially connected between VDD (again, system-supply voltage) and VSS (again, system-ground voltage). More particularly, LT-circuit 102 is connected between VDD and sleep device 104. And sleep device 104 is connected between LT-circuit 102 and VSS.
Sleep device 104 includes: a DTMOS (again, dynamic threshold MOS) transistor QN1, e.g., of NMOS fabrication; and a body-bias-voltage (again, Vbb) governor (hereafter Vbb-governor) circuit 106 to provide a dynamic body-bias voltage (Vbb) to the body of DTMOS transistor QN1.
Vbb-governor circuit 106 is arranged as a voltage divider that includes a first part and a second part coupled at a node 120. The voltage on node 120 is provided to transistor QN1 as its Vbb. The first part can be, e.g., a buffer circuit BUF2 that couples Vgg of transistor QN1 to node 120. Additionally, buffer circuit BUF2 also can be coupled between VDD and VSS. The second part can be, e.g., a diode D2 that couples node 120 to VSS. Diode D2 can be, e.g., a PMOS transistor whose gate and drain are connected to VSS and whose source is connected to node 120 (discussed further below), a PN junction connected between node 120 and VSS, a Schottky barrier connected between node 120 and VSS, etc.
While transistor QN1 is considered a DTMOS transistor because Vbb is a function of Vgg, sleep device 104 differs from the Background Art because Vbb is not merely Vgg connected substantially directly to the body of transistor QN1. Instead, Vbb is a governed version of Vgg: A governed version of a signal has had at least one of an upper and a lower bound imposed upon it, which is analogous to a clipped signal albeit without the connotation of noise associated with saturation-induced clipping. In other words, Vbb can be dependent, e.g., non-linearly dependent, upon Vgg. Here, the terms “governor, “governed,” etc. are to be understood in a context that is analogous to the term “governor” in the automotive art. There, a governor is a device that automatically prevents the speed or position of some part (e.g., engine speed, transmission speed, etc) from exceeding a maximum desired value.
Here, Vbb-governor circuit 106 is operable to impose a bound (e.g., here an upper bound because transistor QN1 is N-type) on the magnitude of Vbb (|Vbb|bound) such that a there can be a non-negligible difference Δ between a corresponding bound of Vgg (e.g., here, an upper bound because transistor QN1 is N-type, |Vgg|bound=|Vgg|max) and |Vbb|max,
Δ=∥Vgg|max−|Vbb|max|. 1)
And further because transistor QN1 is N-type,
|Vbb|max≦|Vgg|max. 2)
Difference Δ (also referred to as the “Vgg margin”) is greater than or equal to a threshold (or, in other words, turn-on) voltage of diode D2,
For example, |Vgg|bound=|Vgg|max≦1.2 volts while |Vbb|max≈0.6 volts.
The operation of Vbb-governor circuit 106, in an active mode, can be described according to the following relation.
An effect of the operation of Vbb-governor circuit 106 is to substantially stabilize Vbb against fluctuations in Vgg.
In
Sleep device 104 includes: a DTMOS transistor QP4, e.g., of PMOS fabrication; and a Vbb-governor circuit 110 to provide a dynamic Vbb to the body of transistor QP4. Vbb-governor circuit 110 is similar to Vbb-governor circuit 104 of
Vbb-governor circuit 110 is arranged as a voltage divider that includes a first part and a second part coupled at a node 122. The voltage on node 122 is provided to transistor QP4 as its Vbb. The first part can be, e.g., a buffer circuit BUF1 that couples Vgg of transistor QP4 to node 122. Additionally, buffer circuit BUF1 also can be coupled between VDD and VSS. The second part can be, e.g., a diode D1 that couples node 122 to VDD. Diode D1 can be, e.g., an NMOS transistor whose gate and drain are connected to VDD and whose source is connected to node 122 (discussed further below), a PN junction connected between VDD and node 122, a Schottky barrier connected between VDD and node 122, etc.
While transistor QP4 is considered a DTMOS transistor because Vbb is a function of Vgg, sleep device 108 differs from the Background Art because Vbb is not merely Vgg connected substantially directly to the body of transistor QP4. Instead, Vbb is a governed version of Vgg. In other words, again, Vbb can be dependent, e.g., non-linearly dependent, upon Vgg. Vbb-governor circuit 110 is operable to impose a bound (e.g., here a minimum bound because transistor QP4 is P-type, |Vbb|bound=|Vbb|min) such that there can be (as with Vbb-governor circuit 104) the non-negligible difference Δ between the corresponding value of Vgg (e.g., here, a minimum value because transistor QP4 is P-type) |Vgg|bound=|Vgg|min and |Vbb|min. Further, because transistor QP4 is P-type,
|Vgg|min≦|Vbb|min. 5)
For example, |Vgg|bound=|Vgg|min≈0 volts while |Vbb|min≈VDD−VD1threshold.
The operation of Vbb-governor circuit 110, in an active mode, can be described according to the following relation.
An effect of the operation of Vbb-governor circuit 110 (as with Vbb-governor circuit 106) is to substantially stabilize Vbb against fluctuations in Vgg.
Architecture 100C includes a serial connection of LT-circuit 102 and both of sleep devices 104 and 108 between VDD and VSS. More particularly, sleep device 104 is connected between LT-circuit 102 and VSS. And sleep device 108 is connected between VDD and LT-circuit 102. Further description of architecture 100C would be repetitive of that presented above and is omitted for the sake of brevity.
In
The source of transistor QP2 can be connected to VDD and its drain connected to the drain of transistor QN2 at a node 202. The source of transistor QN2 can be connected to VSS. The gates of transistors QP3 and QN3 also can be connected to node 202. The source of transistor QP3 can be connected to VDD and its drain connected to the drain of transistor QN3 at a node 204. The source of transistor QN3 can be connected to VSS. Node 204 is connected as Vbb for DTMOS transistor QN1. Hence, node 204 corresponds to node 120 of
Diode D2 is connected between node 204 and VSS. More particularly, diode D2 in
The operation of the circuitry of
In an active mode, namely when Vgg2 for DTMOS transistor QN1 is raised above VQN1threshold, then so is the voltage on node 206, which causes transistor QP2 to turn-off and transistor QN2 to turn-on. As a result, the voltage on node 202 is reduced to about VSS. This causes transistor QN3 to turn-off and transistor QP3 to turn-on, which initially raises the voltage on node 204 in proportion to increases in Vgg2 (starting at Vgg≈VSS). The clipping effect of diode-configured transistor P7, however, places an upper bound on the voltage at node 204 as follows
while transistor QP3 is on and transistor QN3 is off. As such, Vbb is no longer effected by the degree to which Vgg2 is raised above
If VSS=0, then
In a non-active or sleep mode, namely when Vgg2 for DTMOS transistor QN1 is set low, e.g., Vgg2≈VSS, then so is the voltage on node 206, which causes transistor QP2 to turn-on and transistor QN2 to turn-off. As a result, the voltage on node 202 is raised to
This causes transistor QN3 to turn-on and transistor QP3 to turn-off, which reduces the voltage on node 204 to about VSS, namely
In
The source of transistor QP5 can be connected to VDD and its drain connected to the drain of transistor QN5 at a node 208. The source of transistor QN5 can be connected to VSS. The gates of transistors QP6 and QN6 also can be connected to node 208. The source of transistor QP6 can be connected to VDD and its drain connected to the drain of transistor QN6 at a node 210. The source of transistor QN6 can be connected to VSS. Node 210 is connected as Vbb for DTMOS transistor QP4. Hence, node 210 corresponds to node 122 of
Diode D1 is connected between VDD and node 210 More particularly, diode D1 in
The operation of the circuitry of
In an active mode, namely when Vgg4 for DTMOS transistor QP4 is set low, then so is the voltage on node 212, which causes transistor QN5 to turn-off and transistor QP5 to turn-on. As a result, the voltage on node 208 is raised to about VDD. This causes transistor QP6 to turn-off and transistor QN6 to turn-on, which reduces the voltage at node 210 initially in proportion to decreases in Vgg (starting from Vgg4≈VDD). The clipping effect of diode-configured transistor N7, however, places a lower bound on the voltage at node 210 while transistor QN6 is on and transistor QP6 is off, as follows.
As such, Vbb is no longer effected by the degree to which Vgg4 is reduced below
In an non-active or sleep mode, namely when Vgg4 for DTMOS transistor QP4 is set high, e.g., VggQP4≈VDD, then so is the voltage on node 212, which causes transistor QN5 to turn-on and transistor QP5 to turn-off. As a result, the voltage on node 208 is reduced to
This causes transistor QP6 to turn-on and transistor QN6 to turn-off, which reduces the voltage on node 210 to about VDD, namely.
Of course, although several variances and example embodiments of the present invention are discussed herein, it is readily understood by those of ordinary skill in the art that various additional modifications may also be made to the present invention. Accordingly, the example embodiments discussed herein are not limiting of the present invention.
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10-2004-0004947 | Jan 2004 | KR | national |
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