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Lab 8 The Diode

Objective: Measure the current-voltage curve of a silicon diode.

Reverse current

1.) Construct the circuit below using a DC power supply, a diode.

2.) Attach an Oscilloscope with internal resistance [math] R_{scope}= 1M\Omega[/math]. The scope will measure the voltage drop across R and thus the current will be given by this voltage difference divided by R.

3.) Determine a value for R which will allow you to measure a current of at least 10 mA (prefeferably 50 mA) at the diodes reverse bias cut off voltage. Show your power calculation. (5 pnts)

For low current measurements I am going to use [math]R=988\ \Omega[/math]. Using this resistors and assuming the minimum voltage I can measure is [math]V_R=1\ mV[/math] I will be able to measure current equal [math]I=\frac{V_R}{R}=\frac{1\ mV}{988\ \Omega}=1\ uA[/math]. And assuming the maximum voltage I can measure is [math]V_R=20\ V[/math] I will be able to measure current equal [math]I=\frac{V_R}{R}=\frac{20\ V}{988\ \Omega}=20\ mA[/math].

To measure some current points above [math]I=20\ mA[/math] I am going to use [math]R=98.4\ \Omega[/math]. Using this resistors and assuming the max voltage I will measure is [math]V_R=4\ V[/math] I will be able to measure current about [math]I=\frac{V_R}{R}=\frac{4\ V}{98.4\ \Omega}=40\ uA[/math].

So I am going to cover during my measurements the range from [math]I=1\ uA[/math] to [math]I=20\ mA[/math] using resistor of [math]R=988\ \Omega[/math]. And the range from [math]I=20\ mA[/math] to [math]I=40\ mA[/math] using resistor of [math]R=98.4\ \Omega[/math].

About my power calculation see my table below.

4.) Measure the diode reverse current [math]1 \mu A \lt I_r \lt 40 mA[/math] as a function of the DC supply voltage.

5.) Fill in the blank. The reverse biased diode acts as a constant current source before the turn on voltage. As we can see from the plot below it keeps the constant current before the turn on voltage point. And it acts as a constant voltage source beyond the turn on voltage. As we can see from the plot below it keeps the constant voltage beyond the turn on voltage point(5 pnts)

Forward Current

1.) now swap the diode direction and repeat the measurement in the previous section.

2.) Attach an Oscilloscope with internal resistance [math] R_{scope}= 1M\Omega[/math]. The scope will measure the voltage drop across R and thus the current will be given by this voltage difference divided by R.

3.) Determine a value for R which will allow you to measure a current of at least 10 mA (preferably 50 mA) at the diodes forward bias cut off voltage.

All my R calculation is the same as for reverse current case above. I am going to cover during my measurements the range from [math]I=1\ uA[/math] to [math]I=20\ mA[/math] using resistor of [math]R=988\ \Omega[/math]. And the range from [math]I=20\ mA[/math] to [math]I=40\ mA[/math] using resistor of [math]R=98.4\ \Omega[/math].

About my power calculation see my table below. [math]\pm[/math]

4.)Measure the diode reverse current [math]1 \mu A \lt I_r \lt 40 mA[/math] as a function of the DC supply voltage.

5.) Fill in the blank. The forward biased diode act as a constant voltage source. As we can see from the plot below it keeps the constant voltage beyond the turn on voltage point. (5 pnts)

Graph

1. Plot the diode current (on the ordinate) versus the diode voltage (on the abscissa)for the forward and reverse biased diode on the same graph. (35 pnts)

Questions

1.) Plot the reverse biased diode for voltages beyond the turn on voltage and measure the effective impedance of the diode using a linear fit. (20 pnts)

From the plot above the fitting line beyond the turn on reverse voltage is given by

[math]I[mA]=p_0+p_1\times V[Volts][/math]

where [math]p_0=(854.9\pm 77.94)[/math] and [math]p_1=(181.6\pm 15.96)[/math].

To find the effective impedance we just need the slope of this line so

[math]R=\frac{1}{p_1}\ \left[ \frac{V}{mA} \right] = \frac{1}{(181.6\pm 15.96)}\ k\Omega = (5.51\pm 0.48)\ \Omega[/math]

2.)The measured reverse biased turn on voltage is _________ Volts for silicon diode type # IN_____________. The % difference between the measured turn on voltage and the one given in the specification is __________%. Circle the correct answer in the parentheses. This % difference (is / is not) within the measurement uncertainty. ( 10 pnts). See the answer below.

We can find the reverse biased turn on voltage using the same fitting line equation above [math]I[mA]=p_0+p_1\times V[Volts][/math]. The intersection of this line with voltage axis are:

[math]V=\frac{p_0}{p_1} = \frac{(854.9\pm 77.94)}{(181.6\pm 15.96)} = 4.71\pm 0.59\ [Volts][/math]. 

The measured reverse biased turn on voltage is [math]4.71\pm 0.59\ [Volts][/math] for silicon diode type # 1N5230B-T. The % difference between the measured turn on voltage and the one given in the specification is [math]\frac{4.71-4.70}{4.70} = 0.21\ %[/math]. Circle the correct answer in the parentheses. This % difference (is / is not) within the measurement uncertainty.

3.) Plot the forward biased diode and measure the effective impedance of the diode using a linear fit in the linear region at large bias voltages. ( 20 pnts)

From the plot above the fitting line beyond the turn on reverse voltage is given by

[math]I[mA]=p_0+p_1\times V[Volts][/math]

where [math]p_0=(-707.7\pm 60.18)[/math] and [math]p_1=(868.6\pm 70.71)[/math].

To find the effective impedance we just need the slope of this line so

[math]R=\frac{1}{p_1}\ \left[ \frac{V}{mA} \right] = \frac{1}{(868.6\pm 70.71)}\ k\Omega = (1.15\pm 0.09)\ \Omega[/math]

Show and tell

1.) Use a two channel oscilloscope in "x-y" mode to illustrate the V-vs-I curve to your instructor.

2.) Create a circuit to cause an LED to illuminate.

I just replaced the diode 1N5230B-T with the red LED LN21RPH. The plot below represents the forward current versus the applied voltage. 

The LED starts to illuminate [math]V_{LED} = 1.869\ [V][/math] and illumination becomes stable and bright at about [math]V_{LED} = 1.890\ [V][/math]
that corresponds to [math]2\ -\ 3\ mA[/math] current through the LED

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