This relates generally to clock input buffers.
Typically, clock input buffers are used to control inputs to a variety of circuits. For example, in connection with a low power double data rate 2 (LPDDR2) synchronous dynamic random access memory (LPDDR2-S (SDRAM)) or non-volatile memory (LPDDR2-N), the input buffers of all signals, except the clock, can be disabled using a clock enable (CKE) input signal. The clock input buffer consumes power, even when the clock is stable, because the clock input buffer is implemented with a differential amplifier.
Referring to
In some embodiments, enable circuit 50 powers down the buffer 24 in particular to reduce its power consumption by providing an enable signal to the EN input of that buffer. Then when it is desired to operate the integrated circuit 52, the buffer 24 can be enabled quickly, in some embodiments. For example, in some embodiments, in response to a given number of toggles of a clock signal, buffer 24 may be quickly enabled. This is particularly advantageous in connection with low power double data rate 2 memories, for example.
Contacts 10, 12, 16, 18, and 20 may be on the outside of an integrated circuit package 11 and circuit 52 may be an integrated circuit chip within package 11. It may, for example, be a memory circuit and, as one example, the chip 52 may be a low power double data rate 2 memory.
Input buffers 14 (only one shown in
Referring to
Clock contact 18 may be coupled to a buffer 24, that outputs a signal CLK_int 28, which is the clock (CK) input to DQ flipflop 34. The negative input to buffer 24 is from clock inverse contact 20.
The clock signal from the contact 18 may also go through a low power consumption complementary metal oxide semiconductor (CMOS) buffer 26 to create CLK_CMOS signal 30, which becomes the clock input to the clock detector 31 in one embodiment. The clock detector output (CLK_EN_SET) 33 may be provided to the set terminal of an SR latch 32. The reset terminal may be coupled to the CLK_EN _RST signal 37 from the output of a falling edge detector 35. The falling edge detector 35 detects the falling edge of the INPUT_ENABLE signal 36 from the DQ flipflop 34, in one embodiment.
The Q output of SR latch 32 is the signal CLK_BUFF_ENABLE 38, provided to the enable input of the buffer 24 in one embodiment. SR latch 32 output Q may be low when set is pulsed low and reset is high and may be high when set is high and reset is low. Buffer 24 may be enabled when signal 38 from output Q of SR latch 32 is high. When signal 38 is low, buffer 24 may be disabled, resulting in power savings.
Clock input buffer 24 may consume power even when the clock CLK is stable, for example, when buffer 24 is implemented with a differential amplifier. Clock differential input buffer 24 may be disabled during power down of clock enable signal to reduce the current consumption. In fact, current consumption may be in the range of standby current in some embodiments. The time needed to enable the clock input buffer 24 at power down exit may be material, in some embodiments, because the clock input is used to latch the command/address bus in a LPDDR2 memory, for example.
In the case where circuit 52 is an LPDDR2 memory, the clock may toggle two times before raising the clock enable signal to exit power down in one embodiment. Clock detector 31 may detect clock toggling with dedicated circuitry to enable, in advance, the clock differential input buffer.
Clock differential input buffer 24 may be disabled when integrated circuit 52 enters the power down mode and may be enabled when the clock starts to toggle again. Detector 31 may detect clock toggling (e.g. one or two toggles) and may enable clock differential input buffer 24.
Thus, referring to
The falling of the clock enable signal (
Thus, power consumption transitions from high power consumption, due to consumption of power in input buffers, including the buffer 24, and enters a lower power consumption state where all the input buffers, including the buffer 24, are powered down.
When the CLK signal (
At the first CLK_int rising edge with rising clock enable, the output INPUT_ENABLE signal 36 (
In the embodiments described herein, the clock signal (
Referring to
Initially, a check at diamond 56 determines whether a clock enable signal has gone low. If so, a power down or power reduction is implemented, as indicated in block 58. Then, at block 60, when the clock signal starts up again, the clock signal is detected. This detection may include counting the number of clock toggles. When detected (or, for example, with a threshold number of toggles is exceeded), as determined in diamond 62, then the circuit is powered up, as indicated in block 64.
References throughout this specification to “one embodiment” or “an embodiment” mean that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one implementation encompassed within the present invention. Thus, appearances of the phrase “one embodiment” or “in an embodiment” are not necessarily referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be instituted in other suitable forms other than the particular embodiment illustrated and all such forms may be encompassed within the claims of the present application.
While the present invention has been described with respect to a limited number of embodiments, those skilled in the art will appreciate numerous modifications and variations therefrom. It is intended that the appended claims cover all such modifications and variations as fall within the true spirit and scope of this present invention.
| Filing Document | Filing Date | Country | Kind | 371c Date |
|---|---|---|---|---|
| PCT/IT2009/000592 | 12/30/2009 | WO | 00 | 8/24/2012 |
| Publishing Document | Publishing Date | Country | Kind |
|---|---|---|---|
| WO2011/080773 | 7/7/2011 | WO | A |
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| Number | Date | Country | |
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| 20120314522 A1 | Dec 2012 | US |