Derive the gain of the Inverting amplifier shown in Fig. 2 in variable form using Nodal analysis (Use ideal op-amp assumptions, note: v, is the input voltage and can be taken as vin and the output voltage v, is at pin 6.)

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Part 1: Inverting Amplifier (Calculations & Simulations)
Xsc1
R.- 100 kn
VC
15V
E T
+15V
U1
R,- 20 k2
R3
20ka
R1
741
741
Vs
20ka
10 kHz
0.5Vpk
10kHz
VEE
- 15V
R,- 20 ka
R2
-15V
100ka
Fig. 2: Inverting Amplifier (on left textbook circuit, on right Multisim circuit)
1. Derive the gain of the Inverting amplifier shown in Fig. 2 in variable form using Nodal
analysis (Use ideal op-amp assumptions, note: v, is the input voltage and can be taken as vin and
the output voltage v, is at pin 6.)
ILAN DCAL CULATIONS.
Transcribed Image Text:Part 1: Inverting Amplifier (Calculations & Simulations) Xsc1 R.- 100 kn VC 15V E T +15V U1 R,- 20 k2 R3 20ka R1 741 741 Vs 20ka 10 kHz 0.5Vpk 10kHz VEE - 15V R,- 20 ka R2 -15V 100ka Fig. 2: Inverting Amplifier (on left textbook circuit, on right Multisim circuit) 1. Derive the gain of the Inverting amplifier shown in Fig. 2 in variable form using Nodal analysis (Use ideal op-amp assumptions, note: v, is the input voltage and can be taken as vin and the output voltage v, is at pin 6.) ILAN DCAL CULATIONS.
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