6. For the self-bias configuration of Fig. 7.80: a. Sketch the transfer curve for the device. b. Superimpose the network equation on the same graph. c. Determine Ipo and VGS d. Calculate VDS, VD, VG, and Vs.

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6. For the self-bias configuration of Fig. 7.80:
a. Sketch the transfer curve for the device.
b. Superimpose the network equation on the same graph.
c. Determine Ipo and VGSQ
d. Calculate Vps, VD, VG, and Vs.
*7. Determine Ip for the network of Fig. 7.80 using a purely mathematical approach. That is,
establish a quadratic equation for Ip and choose the solution compatible with the network char-
acteristics. Compare to the solution obtained in Problem 6.
VGS
IDSS (1 - Vass) ²
Vp
PROBLEMS Self-Bias Configuration
1 ΜΩ ,
+
Vaso
18 V
'1.5 ΚΩ
IDss = 10 mA
Vp = -4 V
750 £2
FIG. 7.80
1 ΜΩ
VGSQ
12 V
• 2.2 ΚΩ
Ipe
Ipss = 6 mA
Vp = -6 V
11.6 ΚΩ
3 V
FIG. 7.81
51
Transcribed Image Text:ID = 6. For the self-bias configuration of Fig. 7.80: a. Sketch the transfer curve for the device. b. Superimpose the network equation on the same graph. c. Determine Ipo and VGSQ d. Calculate Vps, VD, VG, and Vs. *7. Determine Ip for the network of Fig. 7.80 using a purely mathematical approach. That is, establish a quadratic equation for Ip and choose the solution compatible with the network char- acteristics. Compare to the solution obtained in Problem 6. VGS IDSS (1 - Vass) ² Vp PROBLEMS Self-Bias Configuration 1 ΜΩ , + Vaso 18 V '1.5 ΚΩ IDss = 10 mA Vp = -4 V 750 £2 FIG. 7.80 1 ΜΩ VGSQ 12 V • 2.2 ΚΩ Ipe Ipss = 6 mA Vp = -6 V 11.6 ΚΩ 3 V FIG. 7.81 51
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