Voltage Dividers For each of 1.6 Figure P1.6(a) shows a two-resistor voltage divider. Its function is to generate a voltage V, (smaller than the power-supply voltage Vpp) at its output node X. The cir- cuit looking back at node X is equivalent to that shown in Fig. P1.6(b). Observe that this is the Thévenin equivalent of the voltage divider circuit. Find expressions for Vo and Ro. are shown the resistor VDD using stan- 4 W, 1/2 W, R1 Re Ro or relate V, I, ent. For each (a) (b) Figure P1.6

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Voltage Dividers
istor. For each of
1.6 Figure P1.6(a) shows a two-resistor voltage divider.
Its function is to generate a voltage V, (smaller than the
power-supply voltage V) at its output node X. The cir-
cuit looking back at node X is equivalent to that shown in
Fig. Pl.6(b). Observe that this is the Thévenin equivalent
of the voltage divider circuit. Find expressions for V,
and R
em:
istors are shown
ated in the resistor
eration using stan-
W, 1/4 W, 1/2 W,
V DD
RT
resistor relate 11
dependent. For each
(a)
(b)
Figure P1.6
Transcribed Image Text:Voltage Dividers istor. For each of 1.6 Figure P1.6(a) shows a two-resistor voltage divider. Its function is to generate a voltage V, (smaller than the power-supply voltage V) at its output node X. The cir- cuit looking back at node X is equivalent to that shown in Fig. Pl.6(b). Observe that this is the Thévenin equivalent of the voltage divider circuit. Find expressions for V, and R em: istors are shown ated in the resistor eration using stan- W, 1/4 W, 1/2 W, V DD RT resistor relate 11 dependent. For each (a) (b) Figure P1.6
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