I think at 10:20, V_th of N_1 should be greater than N_0. ( Sir is saying lesser than N_0.)
@sanjeevkrishnan52582 жыл бұрын
Yah you are correct.
@rddinesh42 жыл бұрын
he is saying the same in the prev lecture also :)
@descreteinfo5663Ай бұрын
Yeah you are right
@Prince_62992 жыл бұрын
Thanks for the content!
@subhrasen13952 жыл бұрын
Ajit Agarkar of Electronics field 🌚🔥
@socialogic97772 жыл бұрын
He talks like Rahul Gandhi though!
@socialogic97772 жыл бұрын
Even in steady state the output is driven to High by VDD using PMOS, and Output is driven to LOW by ground using NMOS. Then in sleep mode both NMOS and PMOS are off, how will the output be continuosly driven to low or high states in steady state? Or maybe there is no discharge path/charge path in sleep mode and output stays high/low.
@AbhishekSingh-up4rv Жыл бұрын
your last line is the answer. I had the same doubt, but it made me understand, tysm
@AbhishekSingh-up4rv Жыл бұрын
We use sleep = 0 in transient state when we have to change the input, in steady state , sleep = 1, As there is no current through CMOS in steady state, so only off state current will flow through both sleep transistors
@pawansharma62268 ай бұрын
what a explanation
@vermatushant8 ай бұрын
if dibl is dominating how is vth of n1 increasing shouldn't it be reducing then???
@utwxyz1238 ай бұрын
same question , did you get any solution?
@pawansharma62268 ай бұрын
I guess , he was mistaken earlier. He should have told that Vth of N1 is greater than No due to DIBL
@UpendraBadisa-kl3jn6 ай бұрын
Vgs will be decreased as source having Vx, then Vgs-Vtx need to be more to cross the Vth.. If I am wrong please make me correct...