I'm so glad to hear that. Happy they help!

No voltage will drop across the high impedance - don't think of the connection between input and output as a continuous connection that current must flow. Think of it more as -a voltage sensor at the input -a driver at the output that will - determine what voltage the output should be based on the "sensors" and the gain of the amplifier - provide power to the load (from the voltage sources) at the voltage determined fro the step above.

@@ElectronXLab Is it right to say that little to no current flows through the source's output impedance BECAUSE of the infinite impedance at the input of the op amp?

@@RAHUL-xy1ds For this unity gain buffer circuit, that is correct.

@@ElectronXLab okay Thank you David

I think heavy load means that the impedance is high.Therefore, it causes voltage drop

I am also wondering the same thing. The high current it draws is the main problem here from my understanding. The load requires high current which is causing a high voltage drop from the Zout as a result the load is not provided with sufficient voltage. Thats what I have understood from the video.

You add 1 to the voltage gain which is a dimensionless quantity, not the actual voltage

The voltage drop across R2 occurs because the current through R2 is the same as the current through R4. In the op amp circuit, the same voltage drop doesn't occur across R3, because there is almost no current (ideally 0) going through R3. Then the feedback of the op amp causes Vb to be the same as the voltage at the non-inverting input of the op amp. The op amp makes sure that Vb is effectively the exact same as the source voltage...I hope that makes sense