An op-amp is connected in an inverting configuration with R1 = 2 kΩ and R2 = 150 kΩ. a. Find the closed loop gain, G, for the cases when the open loop gain, A, is equal to 103 and 104. In each case, determine the percentage error in the magnitude of G relative to the ideal value of R2/R1 (obtained if A = ∞). Also determine the voltage that appears at the inverting terminal (v1) when vI = 0.1 V. b. If A drops by 75% from 100, 000 to 25, 000 , what is the corresponding percentage change in the magnitude of the closed loop gain?

An op-amp is connected in an inverting configuration with R1 = 2 kΩ and R2 = 150 kΩ. a. Find the closed loop gain, G, for the cases when the open loop gain, A, is equal to 103 and 104. In each case, determine the percentage error in the magnitude of G relative to the ideal value of R2/R1 (obtained if A = ∞). Also determine the voltage that appears at the inverting terminal (v1) when vI = 0.1 V. b. If A drops by 75% from 100, 000 to 25, 000 , what is the corresponding percentage change in the magnitude of the closed loop gain?

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  1. An op-amp is connected in an inverting configuration with R I = 2 k Ω and R 2 = 150 k Ω . a. Find the closed loop gain, G , for the cases when the open loop gain, A , is equal to 10 3 and 10 4 . In each case, determine the percentage error in the magnitude of G relative to the ideal value of R 2 / R 1 (obtained if A = ). Also determine the voltage that appears at the inverting terminal ( v 1 ) when v I = 0.1 V . b. If A drops by 75 % from 100,000 to 25,000 , what is the corresponding percentage change in the magnitude of the closed loop gain?

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