Post on 20-Jan-2016
description
MOS Transistors as Switches
G(gate)
D(drain)
S(source)
G
DS
nMOS transistor: Closed (conducting) when Gate = 1 (VDD)
Open (non-conducting) when Gate = 0 (ground, 0V)
pMOS transistor: Closed (conducting) when Gate = 0 (ground, 0V)
Open (non-conducting) when Gate = 1 (VDD)
For nMOS switch, source is typically tied to ground and is used to pull-down signals:
G
Out
S
when Gate = 1, Out = 0, (OV) when Gate = 0, Out = Z (high impedance)
For pMOS switch, source is typically tied to VDD, used to pull signals up:
Out
G
Swhen Gate = 0, Out = 1 (VDD)
when Gate = 1, Out = Z (high impedance)
Note: The MOS transistor is a symmetric device. This means that the drain and source terminals are interchangeable. For a conducting nMOS transistor, VDS > 0V; for the pMOS transistor, VDS < 0V (or VSD > 0V).
The CMOS Inverter
OutII Out
Truth Table
I Out
0 1
1 0
GND
VDD
Rin→∞
Note: Ideally there is no static power dissipation. When "I" is fully is high or fully low, no
current path between VDD and GND exists (the output is usually tied to the gate of another MOS
transistor which has a very high input impedance).
Power is dissipated as "I" transistions from 0→1 and 1→0 and a momentory current path exists
between Vdd and GND. Power is also dissipated in the charging and discharging of gate
capacitances.
Parallel Connection of Switches
A
Y
B
Y = 0, if A or B = 1 A + B
Y
A B
Y = 1 if A or B = 0 A + B
Series Connection of Switches
A
Y
B
Y = 0, if A and B = 1
A ⋅ B
A
B
Y
Y = 1, if A and B = 0
A ⋅ B
NAND Gate Design
p-type transistor tree will provide "1" values of logic function
n-type transistor tree will provide "0" values of logic function
Truth Table (NAND):
AB
00 1
01 1
10 1
11 0
K-map (NAND):
1 1
1 0
0 1
0
1
AB
NAND circuit example:
Y
A
B
Vdd
Ptree = A + BNtree = A ⋅ B
YAB
NOR Gate Design
p-type transistor tree will provide "1" values of logic function
n-type transistor tree will provide "0" values of logic function
Truth Table:
AB
00 1
01 0
10 0
11 0
K-map:
1 0
0 0
0 1
0
1
AB
NOR circuit example:
Y
A
B
Vdd
YAB
Ptree = A ⋅ BNtree = A + B
What logic gate is this?
Y
A
B
Vdd
Y = 1 when A ⋅ BY = 0 when A + B
Answer: AND function, but poor design!
Why? nMOS switches cannot pass a logic "1" without a threshold voltage (VT) drop.
G
D SVDD
VDD
VDD - VT
where VT = 0.7V to 1.0V (i.e.,
threshold voltage will vary)
output voltage = 4.3V to 4.0V,
a weak "1"
The nMOS transistor will stop conducting if VGS < VT. Let VT = 0.7V,
G 5V
S →D0V → 5V
D → ?0V → ?
As source goes from 0V → 5V, VGS goes from 5V → 0V.
When VS > 4.3V, then VGS < VT, so switch stops conducting.
VD left at 5V − VT = 5V − 0.7V = 4.3V or VDD − VT.
What about nMOS in series?
5V
0V → 5V 0V → 4.3V 0V → 4.3V 0V → 4.3V5V - 0.7V
4.3V
5V 5V 5V
0V → (VDD−VT)
Only one threshold voltage drop across series of nMOS transistors
For pMOS transistor, VT is negative.
pMOS transistor will conduct if |VGS| > |VTp| (VSG > |VTp|),
or VGS < VTp
G0V
5VS D
conducting
VTp = −0.7V VGS = 0V − 5V = −5V
VGS < VTp or |VGS| > |VTp|
−5V < −0.7V 5V > 0.7V
How will pMOS pass a "0"?
G 0V
S →D5V → ?
D → ?5V → 0V
When |VGS| < |VTp|, stop conducting
So when |VGS| < |−0.7V|, VD will go from 5V
→ 0.7V,
a weak "0"
How are both a strong "1" and a strong "0" passed?
Transmission gate pass transistor configuration
I
A B
When I = 1,
B = strong 1, if A = 1;
B = strong 0, if A = 0
When I = 0, non-conducting
About that AND Gate...
Y
A
B
Vdd
No!!! Poorly designed AND (circuit designer fired)
Instead use this,
YAB
A
Vdd
Y
B
More Complex Gates
F = AB + CD ⇒ Ntree will provide 0's, Ptree will provide 1's
0's of function F is F, ⇒ F = AB + CD = AB + CD
nMOS transistors need high true inputs, so it is desirable for all input variables to be high true,
just as above.
Y
A
B
C
D
AB + CD
Likewise, a Ptree will provide 1's.
F = AB + CD, need a form involving A, B, C, D
Apply DeMorgan's Theorem:
F = AB ⋅ CD = (A + B) ⋅ (C + D)
Implementation ⇒
Y
A B
C D
Can also use K-maps:
F = AB + CD
1 1
1
AB
CD
0
01
0
000
11 1
0
1
1
For Ntree, minimize 0's; for Ptree, minimize 1's
AB
CD
0
0
0
000 0
Ntree = AB + CD
1 1
1
AB
CD1
11 1
1
1
Ptree = A⋅C + A⋅D + B⋅C + B⋅D
= A (C + D) + B (C + D)= (A + B) ⋅ (C + D)
Introduction to Static Load Inverters
1)
I
R
O
resistor load
VOH = 5V,
VOL close to 0V, depends on ratio R/RON
When I = 1, inverter dissipates static power.
Switching point of inverter depends on ratio of
R to RON (on resistance of nMOS device.
Note: output can swing from almost 0V to 5V (VDD)
2)
I
O
D
S
Load is enhancement-mode nMOS device.
Again, static power dissipation occurs when I = 1.
Note: output swings from nearly 0V to (VDD − VTn) Using a transistor as a load tends to require much less silicon area than a resistor. VOH = VDD − VTn, VOL can be close to 0V, depending on ratio of RON of two enhancement devices
Depletion-mode nMOS
nMOS device with VTn < 0V (negative threshold voltage). Device is always conducting if VGS > 0V. 3)
I
O
D
S
VGS = 0V always
Load device is always on, looks like a load resistor.
Dissipates static power when I = 1
VOH = 5V; VOL nearly 0V, depending on ratio of RON,dep to RON,enh. Depletion-mode devices were used before it was economical to put both p-type and n-type devices on the same die. 4) pMOS device as static load
I
OD
S
Here also the load device is always on (conducting).
Dissipates static power when I = 1.
VOH = 5V; VOL nearly 0V, depending on ratio of RON,p to RON,n
Basic MOS Device Equations
Gate
Source
Drain
Bulk (or substrate for nMOS device in n-well technology)
The nMOS device is a four terminal device: Gate, Drain, Source, Bulk. Bulk (substrate) terminal is normally ignored at schematic level, usually tied to ground for the nMOS case. In analog applications, however, the bulk terminal may not be ignored. Gate controls channel formation for conduction between Drain and Source. Drain at higher potential than Source — Source usually tied to GND to act as pull-down (nMOS). Three regions of operations — first-order (ideal) equations: Cutoff region ID = 0A VGS ≤ VTn (nMOS threshold voltage) Linear region
ID = ß
−−
2V)VV(V
2
DSDSTGS n 0 < VDS < VGS − VTn
Note: ID is linear with respect to (VGS − VTn) only when ( )2V 2
DS is small. Saturation region
ID = ( 0 < V)2TGS VV
2ß
n− GS − VTn < VDS
Device parameters: ß = transistor gain factor, dependent on process parameters and device geometry (Kn)
ß = µεtox
WL
process dependent, constant
under control of the designer As W/L increases, effective RON of device decreases µ = surface mobility of the carriers in the channel ε = permittivity of the gate insulator tox = thickness of the gate insulator See Figure 2.5, 2.8 concerning µ, ε, and tox SPICE represents ß by a factor given by
K' = µCox = µ ε
tox = KP
So,
ID = ( 2TGS VV
LW
2K'
n− ) ; saturation region
VI characteristic
VDS
VGS
ID
V GS4
V GS5
GS
|VGS - V T| = |VDS|
boundary betweenlinear & saturation
regions (dashed line)
LINEAR
V
DI
Things to no In th
This
High
given
V DS
V GS1
V GS2
V GS3
SATURATION
CUTOFF
te: e "linear" region, ID becomes less and less linear with VGS as VDS becomes large.
is because the ( )2V 2
DS term in the linear region grows large.
er VGS values increase channel conductance allowing for higher values of ID for a VDS.
*MOSFET Characteristics Vds 1 0 DC 10 Vgs 2 0 DC -.723 Vdummy 3 0 DC 0 M1 1 2 3 3 Mfet .MODEL Mfet NMOS(KP=3686U VTO=2.30 LAMBDA=0.137) .DC Vds 0 10 .2 Vgs 2.5 5 .5 .probe .end
What do W and L physically look like? nMOSFET layout:
W
L
Drain n+ diffusion
Source n+ diffusion
Gate (polysilicon)
In digital logic, typically will draw all transistors with the minimum gate length and vary the width. Larger W ⇒ larger transconductance (more current flow for given gate voltage), higher gate capacitance During fabrication process, the actual width and length of the channel can be reduced by diffusion from the bulk, source, and drain into the device channel. SPICE has some MOSFET model parameters to account for this effect, LD and WD, where the actual the actual length and width is calculated as Leffective = Ldrawn - 2 × LD Weffective = Wdrawn - 2 × WD If LD, WD parameters not specified in the model, then SPICE assumes they are 0.
Ideal Inverter Vout
Vin
VDD
VDD2
switching point
Actual Inverter Characteristics, some definitions
Vin (V)
VOH
VOL
VIL VIH
Vth
Vout (V)
• VIL represents the maximum logic 0 (LOW) input voltage that will guarantee a logic 1 (HIGH) at the output
• VIH represents the minimum logic 1 (HIGH) input voltage that will guarantee a logic 0
(LOW) at the output
Noise Margin Illustration of Noise Margin:
NML
NMH
Vin
Input logic 1
Input logic 0
0V
VIL
VIH
VDD
Vout
VOH
VDD
0V
VOL
Output logic 1
Output logic 0
Calculate noise margin using NML = VIL - VOL NMH = VOH - VIH How do we determine VIL, VOL, VOH, and VIH? We must exam the inverter's transfer characteristic.
CMOS Inverter Regions of Operation
0
1
2
3
4
5
0 10 0
3 10 -5
6 10 -5
9 10 -5
1.2 10-4
1.5 10-4
0 1 2 3 4 5
Vou
t (V
) IDD
(A)
V in (V)
Vout
IDD
A B D E
C
Region A: 0 ≤ Vin < VTn ⇒ pMOS nonsaturated; nMOS cutoff • nMOS is cutoff because Vin < VTn
Why is the pMOS device in the linear region? Linear region ≡ VSDp < VSGp - |VTp| (5 − 5)V < (5 − 0)V − |−0.7|V [for VDD = 5V and VTp = −0.7V] 0V < 4.3V Note that the pMOS device can be in linear region even if IDp ≅ 0A!
Region B: VTn ≤ Vin < Vth ⇒ pMOS nonsaturated, nMOS saturated Why is nMOS saturated? Is VDSn > VGSn - VTn? Because (VDSn = Vout) > Vth and (VGSn = Vin) < Vth , then VDSn > VGSn - VTn Vout > Vin - VTn [B-1] Why is pMOS in linear region? It started out in linear and will remain in linear as long as
VSDp < VSGp - |VTp|
(VDD - Vout) < (VDD - Vin) - |VTp|
Vin < Vout - |VTp| [B-2] Vout in the above expression (Eqn. [B-2]) is decreasing towards Vth and Vin is increasing
towards Vth. When Eqn. [B-2] no longer holds, then the pMOS device will become saturated.
For the pMOS device, then
regions A ⇒ B ⇒ C correspond to
linear ⇒ linear ⇒ saturated, respectively.
How can you predict the output voltage for region B?
The nMOS is saturated, so IDn = 2Tin )V(V
2ß
nn − = 2
TGS )V(V2ß
nnn −
The pMOS is linear, so
IDp = ( )2SDSDTSG )(V|)VV|2(V
2ß
ppppp −−
IDp = ( )2outDDoutDDTinDD )V(V)V|)(VV|V2(V
2ß
−−−−− pp
Can solve for Vout since
IDn = IDp
GND
S
D
D
S
IDp
IDn
VDD
Equivalent circuit for region B ⇒
Vout
IDn
Region C: Vin = Vth ⇒ pMOS saturated, nMOS saturated
In order for nMOS to be saturated, need
VDSn > VGSn − VTn
Vout > Vin − VTn In order for pMOS to be saturated, need
VSDp > VSGp − |VTp|
VDD − Vout > VDD − Vin − |VTp|
Vout < Vin + |VTp| So Vout in region C,
Vin − VTn < Vout < Vin + |VTp|
The CMOS inverter has very high gain in region C so small changes in Vin produce large
changes in Vout. No closed form equation for Vout. Somewhere in this region, Vout = Vin, which is the switching point for this gate.
Equivalent circuit for region C:
Vout
IDn
IDp
VDD
What is Vin in region C? In region C, both devices in saturation so
IDp = 2TinDD |)V|V(V
2ß
pp −−
IDn = 2Tin )V(V
2ß
nn −
So, using IDn = IDp, Vin can be solved for (more on this later....) Region D: Vth < Vin ≤ VDD − |VTp| ⇒ pMOS saturated, nMOS linear
Hence, IDp = 2TinDD |)V|V(V
2ß
pp −−
IDn = ( )2
outoutTinn V)VV2(V
2ß −− n
Again, since IDp = IDn, we can solve for Vout:
Vout2 − 2(Vin − VTn)Vout + 2
TinDD |)V|V(Vßß
pn
p −− = 0
using x = a
acbb2
42 −±−
and, recognizing from above,
a = 1, b = −2(Vin − VTn), c = 2TinDD |)V|V(V
ßß
pn
p −−
we get
Vout = (Vin − VTn) − 2TDDin
2Tin |)V|V(V
ßß
)V(V pn
pn −−−− .
Equivalent circuit for region D ⇒
Vout
IDp
Region E: Vin > VDD − |VTp| ⇒ pMOS is cutoff, nMOS is linear mode Since VSGp = VDD − Vin (< |VTp|),
∴ Vout ≅ 0V due to nMOS acting as pull-down while pMOS in cutoff.
CMOS Inverter Transfer Characteristic
0
1
2
3
4
5
0 10 0
3 10 -5
6 10 -5
9 10 -5
1.2 10-4
1.5 10-4
0 1 2 3 4 5
Vou
t (V
) IDD
(A)
V in (V)
Vout
IDD
A B D E
C
Analysis:
VOH: Vin < VTn, the nMOS transistor is in cutoff while the pMOS transistor is turned-on (inversion layer established). The result is
VOH ≅ VDD. VOL: (VDD − Vin) < |VTp|, the pMOS is in cutoff while the nMOS is on and providing a
conduction channel to ground. Hence, VOL ≅ 0V. VIL: Input low voltage, here the nMOS transistor is saturated and the pMOS is nonsaturated.
Equating the currents provides
2TIL )V(V
2ß
nn − = ( )2
outDDoutDDTILDD )V(V)V|)(VV|V2(V2
ß−−−−− p
p .
VIL: (continued) Since two unknowns exist, Vin = VIL and Vout, a second equation is needed. Use the unity-gain condition to obtain this second equation,
in
out
dVdV
= )V/I(
)V/I()V/I(
outD
inDinD
∂∂∂∂−∂∂
p
pn = −1,
provides
VIL
+
p
n
ßß1 = 2Vout +
p
n
ßß
VTn − VDD − |VTp|.
Now the two equations needed to solve for VIL and Vout exist. VIH: Input high voltage, here the nMOS is nonsaturated and the pMOS is saturated.
Equating the drain currents yields
( )2outoutTIH V)VV2(V
2ß
−− nn = 2
TIHDD |)V|V(V2
ßp
p −− ,
the first of two equations needed to solve two unknowns, Vin = VIH and Vout. Use the
unity-gain condition to get the second,
in
out
dVdV
= )V/I(
)V/I()V/I(
outD
inDinD
∂∂∂∂−∂∂
n
np = −1.
This provides
VIH
+
n
p
ßß
1 = 2Vout + VTn + |)V|(Vßß
TDD pn
p − ,
the second equation needed to solve for the two unknowns.
Vth: At the CMOS inverter's switching point, or inverter threshold, Vth = Vin = Vout and both the pMOS and nMOS transistors are saturated. Again, equating the drain currents,
2Tth )V(V
2ß
nn − = 2
TthDD |)V|V(V2
ßp
p −−
is obtained which can be easily solved to provide Vth,
Vth =
+
−+
n
p
pn
pn
ßß
1
|)V|(Vßß
V TDDT
Note: switching point of gate (Vth) is 2
VDD -if- p
n
ßß
= 1 and VTn = −VTp.
So, switching point of inverter is function of the ratio of the nMOS/pMOS gains and the threshold voltages of the nMOS, pMOS transistors.
βn/βp Ratio The ßn (gain of nMOS) / ßp (gain of pMOS) ratio determines the switching point of the CMOS
inverter.
0
1
2
3
4
5
0 1 2 3 4 5
Vout (V)
Vin (V)
ßnßp
= 10 ßnßp
= 1 ßnßp
= 0.1
Strongpull-down
Strongpull-up
Equal pull-up/pull-down"strength"
VDD2
Switching point = VDD/2if ßn/ßp = 1 and VTn = |VTp|
Recall that
ß = µεtox
WL .
If we assume that the nMOS and pMOS transistors have equal W/L ratios, then
ßnßp =
µnεtox
WnLn
µpεtox
WpLp
= µnµp =
electron mobilityhole mobility .
In silicon, the ratio µn/µp is usually between 2 to 3. This means, that if Ln = Lp, then Wp must be 2 to 3 times Wn in order for ßn = ßp .
0
1
2
3
4
5
0 1 2 3 4 5
Vout
Vin
if WpLp
= WnLn
because ßnßp
> 1
VDD2
Calculate the switching point of a static load inverter as function of ßn/ßp: In region C, already know nMOS device is saturated from previous analysis.
Vin
Vout
VDD
For pMOS to be saturated need:
VSDp > VSGp − |VTp|
VDD − Vout > VDD − 0V − |VTp| Vout < |VTp| Not true!!!
(If Vout in region C is about 2
VDD and 2
VDD >
|VTp| (typically this is true))
∴ pMOS must be in linear region
Then 2TGSD )V(V
2ß I nn
nn −= 2
Tin )V(V2
ß nn −=
and ( )2SDSDTSGD V|)VV|2(V
2ß
I ppppp
p −−=
( )2outDDoutDDTDDD )V(V)V|)(VV|2(V
2ß
I −−−−= pp
p
Equate IDn = IDp and solve for Vout.
2Tin
2TDDTout )V(V
ßß|)V|(V |V| V n
p
npp −−−+=
Can also solve for ßn/ßp,
2Tin
2Tout
2TDD
)V(V
|)V|(V|)V|(V
ßß
n
pp
p
n−
−−−=
Consider again
2Tin
2Tout
2TDD
)V(V
|)V|(V|)V|(V
ßß
n
pp
p
n−
−−−=
for the pseudo-nMOS inverter.
Let |VTp| = VTn = 0.2VDD and Vin = Vout = 2
VDD . Then, for VDD = 5V,
p
n
ßß
≅ 6.1 !!!
Note that this is very different result from the CMOS inverter case! If VDD = 3.3V, but the value of VTn = |VTp| is unchanged (i.e., 1V in the above example), then
p
n
ßß
≅ 11.5
for a switching point equal to 2
VDD .
The ßn/ßp ratio depends on the absolute value of VDD! This means that the operation of the pseudo-nMOS inverter will NOT scale with VDD (for a given CMOS technology). For the CMOS inverter, the ßn/ßp ratio for a switching point of VDD/2 is independent of VDD so its operation will scale with supply voltage. This is a another big advantage of CMOS technology. Not unusual for static CMOS circuits to operate over a very large range of power supply voltages, i.e., 2.0V to 6.0V is common.