ECE315 / ECE515 Lecture 5 Date:
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1 Lecture 5 ate: MOSFET Small Signal Models, and Analysis Common Source Amplifier Introduction
2 MOSFET Small Signal Model To determine the small-signal performance of a given MOSFET amplifier circuit, we can replace the BJT with its small-signal model: i g = 0 i d Equivalent T-Model i d i g = 0 i d = g m v gs + v ds r o i s = i d with channel length modulation
3 MOSFET Small Signal Model (contd.) Recall that due to channel-length modulation, the MOSFET drain current is slightly dependent on v S, and thus is more accurately described as: 2 1 i K v V v GS T S In order to determine the relationship between the small-signal voltage v gs and small-signal current i d we can apply a small signal analysis of this equation: i d di GS GS vgs id 2K VGS VT vgs dvgs v V id gmvgs Note that we evaluated the derivative at the C bias point V GS. The result, as we expected, was the transconductance g m
4 MOSFET Small Signal Model (contd.) We can likewise determine the relationship between small-signal voltage v ds and the small-signal current i d : i d di dv v 2 S v GS V GS ds i K V V v d GS T ds i d v r ds o where we recall that r o is the MOSFET output resistance: r o 1 2 K V V GS T r o 1 I The small signal drain current i d of a MOSFET (biased at a C operating point V GS and I ) is therefore: i d = g m v gs + v ds r o
5 MOSFET Small Signal Analysis Steps Complete each of these steps if you choose to correctly complete a MOSFET Amplifier small-signal analysis. Step 1: Complete a.c. Analysis Turn off all small-signal sources, and then complete a circuit analysis with the remaining.c. sources only. Complete this C analysis exactly, precisely, the same way you performed the C analysis in lecture-3. That is, you assume (the saturation mode), enforce, analyze, and check (do not forget to check!). Note that you enforce and check exactly, precisely the same equalities and inequalities as discussed in lecture-3. Remember, if we turn off a voltage source (e.g., v i t = 0), it becomes a short circuit. However, if we turn off a current source (e.g., i i t = 0), it becomes an open circuit!
6 Step 1: Complete a.c. Analysis (contd.) Small-signal amplifiers frequently employ large capacitors. Remember, the impedance of a capacitor at C is infinity a C open circuit. The goal of this C analysis is to determine: 1) The C voltage V GS for each MOSFET. 2) The C voltage V S for each MOSFET (you need this value for the CHECK). Step 2: You do not necessarily need to determine any other C currents or voltages within the amplifier circuit! Once you have found these values, you can CHECK your saturation assumption, and then move on to step 2. Calculate the small-signal circuit parameters for each MOSFET. g 2K V V m GS T r o 1 2 K V V GS T
7 Step 3: Carefully replace all MOSFETs with their small-signal circuit model. This step often gives students fits! However, it is actually a very simple and straight-forward step. It does require four important things from the student patience, precision, persistence and professionalism! First, note that a MOSFET is: a device with three terminals, called the gate, drain, and source. Its behavior is described in terms of current i and voltages v GS, v S. G i S i
8 Now, contrast the MOSFET with its small-signal circuit model. A MOSFET small-signal circuit model is: a device with three terminals, called the gate, drain, and source. Its behavior is described in terms of current i d and voltages v gs, v ds. G S Exactly the same what a coincidence! Therefore, replacing a MOSFET with its small-signal circuit model is very simple you simply change the stuff within the orange box!
9 Note the parts of the circuit external to the orange box do not change! In other words: 1) every device attached to the MOSFET terminals (i.e, gate, drain, source) is attached in precisely the same way to the terminals of the circuit model. 2) every external voltage or current (e.g., v i, v o, i R ) is defined in precisely the same way both before and after the MOSFET is replaced with its circuit model is (e.g., if the output voltage is the drain voltage in the MOSFET circuit, then the output voltage is still the drain voltage in the small-signal circuit!). Step 4: Set all.c. sources to zero. A zero voltage C source is a short. A zero current C source is an open. Replace the large capacitors with a (AC) short. The schematic now in front of you is called the small-signal circuit. Note that it is missing two things C sources and MOSFET transistors!
10 Note that steps three and four are reversible. You could turn off the C sources first, and then replace all MOSFETs with their small-signal models the resulting small-signal circuit will be the same! Step 5: Analyze small-signal circuit. For small-signal amplifiers, we typically attempt to find the smallsignal output voltage v o in terms of the small-signal input voltage v i. From this result, we can find the voltage gain of the amplifier. o not attempt to insert any MOSFET knowledge into your smallsignal circuit analysis there are no MOSFETs in a small-signal circuit!!!!! Remember, the MOSFET circuit model contains all of our MOSFET small-signal knowledge, we do not indeed must not add any more information to the analysis. You must trust completely the MOSFET small-signal circuit model. It will give you the correct answer!
11 Example 1 i t = I + i d (t) V = 5K Perform a small-signal analysis to determine the small-signal opencircuit voltage gain A v = v o(t) v i (t) v O t = V S + v o (t) v i (t) 4. 0 V K = ma V 2 V T = 2. 0 V
12 Step 1: C Analysis Turning off the small signal source leaves a C circuit of: R 40V. 5K 15.0 V I V S We CHECK our results and find: VGS ECE315 / ECE515 We ASSUME saturation, so that we ENFORCE: I K V V 2 GS It is evident that: V GS 4.0 V 4.0 V 2.0 V 10.0 V V 2.0 t S Therefore the C drain current is: I K V V 2 GS 0.25(4 2) 1.0 ma Thus, the C voltage V S can be determined from KVL as: GS t V t 15.0 I R S (5) 10.0 V 2 t
13 Step 2: etermine the small-signal parameters g 2K V V m GS 2(0.25)( ) 1 ma V t Note that no value of was given, so we will assume 0, and thus output resistance r o =. Steps 3 and 4: etermine the small-signal circuit We now turn off the two C voltage source, and replace the MOSFET with its small signal model. The result is our smallsignal circuit.
14 Step 5: Analyze the small-signal circuit ECE315 / ECE515 The analysis of this small-signal circuit is fairly straightforward. First, we note from KVL that: and that: i d g v m 1.0v v gs gs gs and that from Ohm s Law: v o 5i Combining these equations, we find that: vo 5v d i v gs v i And thus the small-signal open-circuit voltage gain of this amplifier is: A vo vo () t v () t i 5.0
15 Example 2 ECE315 / ECE515 Perform a small-signal analysis to determine the small-signal open-circuit voltage gain A v = v o(t) v i (t) Here the C s are large
16 Single Stage CMOS Amplifier Possible I/O Connections to a MOS transistor Of all the possible I/O connections to a MOS transistor, only (a,d), (a,e) and (b,d) are functional. I/O connections (a,d): Common Source (CS) I/O connections (a,e): Common rain (C) I/O connections (b,d): Common Gate (CG)
17 Common Source (CS) Amplifier ECE315 / ECE515 If the input is applied to the gate and the output is sensed at the drain, the circuit is called a common-source (CS) stage. From now on: to make it simple, all the voltages and currents will be mentioned beforehand whether in that particular context it denotes dc+ac, ac or only dc.
18 Common Source (CS) Amplifier Large Signal Analysis ECE315 / ECE515 If V in (signal+dc) increases from zero, M 1 is off and V out = V. M 1 begins to turn on once V in reaches V T draws current from R and lowers V out. For adequate level of V, M 1 turns on in saturation and we have: 1 W V V R C V V 2 L 2 out n ox in T
19 Common Source (CS) Amplifier (contd.) For V in > V in1 eep Triode Region R V on out V R R on
20 Common Source (CS) Amplifier (contd.) For the transistor s operation in the saturation region (V out > V in V T ), i.e, in the region left of point A. the small signal gain is: V W A R C V V out v n ox in T Vin L g m A g R v m This can also be obtained from a simple observation M 1 converts input voltage change ΔV in to a drain current change g m ΔV in hence an output voltage change -g m R ΔV in. V g R V A g R out m in v m Vin Vin
21 Common Source (CS) Amplifier (contd.) Alternatively, let us look through the small signal representation of the CS stage: KVL at input v v 1 in gv m 1 v R out KCL at this node gv m in v R out v A g R out v m vin
22 Common Source (CS) Amplifier (contd.) Input and Output Impedances: R in V x x out I x I x R V R
23 Common Source (CS) Amplifier (contd.) Observations and iscussions A g R v m g m changes substantially if the input signal is large if the gain changes significantly with the signal swing then the circuit operates in large signal mode. The dependence of the gain (A v ) upon the signal level leads to nonlinearity undesirable condition. To minimize the nonlinearity, the gain (A v ) should be a weak function of g m design and layout of amplifier circuit critical.
24 Common Source (CS) Amplifier (contd.) Alternative expression for gain: W V A C L I R v 2n ox V R : voltage drop across R A v can be increased by increasing W/L or V R or decreasing I if other parameters are fixed. However, large W/L leads to greater device capacitance, and a higher V R limits the maximum voltage swings. If V R remains constant and I is reduced, then R must increase results in greater time constant at the output node. In addition, for large R the effect of channel length modulation comes into play and therefore the output voltage becomes: 1 W V 2 out V R ncox Vin VT (1 Vout ) 2 L
25 Common Source (CS) Amplifier (contd.) V 1 out W W (1 ) 2 V Av RnCox Vin VT Vout R ncox Vin VT V L 2 L V in Av Rgm RI Av Where, 1 W I 2 R ncox Vin VT 2 L out in gmr rr o Av Av gm 1 R I r R o Where, r o 1 I Eventual Lower Gain
26 Common Source (CS) Amplifier (contd.) Alternatively, the same expression can be achieved from following small signal model: v v g v ( ) 1 r R v 1 in vout Av gm( ro R ) v in m o out
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