Bandwidth - Gain & GBW

Come on it’s pretty trivial

​@@nothingtoseehere2189 That comment translates to "I am way smarter than you and have no time for you."

@@danmarquez3971 I didn’t mean it to sound like that but you’re right it does sound rude.
The output of the opamp I’ll call vout will be Vout=g*(vp-vm) where g is open loop gain vp is non inverting input and vm is inverting input. There is a voltage divider circuit created from Vout to ground with rf and r1 the voltage going into the non inverting input can be calculated using the voltage divider equation (this applies cause high input impedance of opamp) Vm=vout*r1/(rf+r1) letting B = r1/(rf+r1) gives vm=vout*B substituting our new value for vm into our original vout gives Vout = g(Vp-B*Vout) meaning Vout + g*B*Vout = g*Vp factoring out Vout and rearranging gives Vout = Vp*g/(1+g*B). V plus is just our input voltage and gain is defined as Vout divided by vin so if we just divide left and right side by vin we get Gcl= g/(1+g*B)

@@nothingtoseehere2189 Wow! I am impressed by your response! You were very diplomatic in the first sentence and you spent great time deriving the equations! I take back what I said! Thank you for the derivation! You rock! And sorry for the misunderstanding!