Lesson 3.13
3.13 Electronics: semiconductors, signals and operational amplifiers Quiz: AQA Physics, Unit 13
20 questions
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Lesson 3.13, Electronics: semiconductors, signals and operational amplifiers: 20 multiple choice questions for the AQA Physics (7408), Unit 13: Electronics (A-level option), written with Revision Ninja.
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The 20 questions
-
What is the threshold voltage Vth of an enhancement-mode MOSFET?
- the drain-source voltage when the device is switched off
- the gate-source voltage above which a conducting channel forms between drain and source
- the breakdown voltage of the gate oxide layer
- the maximum current the drain can carry
-
Why does a MOSFET gate have a very high input resistance?
- the gate is connected directly to the drain
- the gate is a diode in forward bias
- the gate is a metal wire that carries a heavy current
- the gate is insulated by an oxide layer, so almost no current flows into it
-
How is a Zener diode used as a constant voltage reference?
- it is used only as a light detector
- it stores charge like a capacitor
- it is run in reverse breakdown, where its voltage stays nearly constant over a range of currents
- it is run in forward bias, conducting above about 0.7 V
-
How is a photodiode used as a detector in photoconductive mode?
- it is reverse biased, and its current is proportional to the light intensity
- it generates current only at night
- it is forward biased, and it produces a voltage in the dark
- it emits light when it is illuminated
-
How does a Hall effect sensor help to measure rotation in a tachometer?
- it converts light into a voltage through a rotating disc
- it generates heat in proportion to the current through it
- it produces a voltage related to the magnetic field, which changes as a magnet passes it
- it measures temperature from changes in resistance
-
In analogue-to-digital conversion, what sets the number of voltage levels that can be represented?
- the mass of the audio source
- the sampling duration only
- the number of bits per sample
- the colour of the signal
-
What must the sampling rate of a signal be, at minimum, to represent a signal of highest frequency f_max without loss?
- at least half the highest frequency present
- at least twice the highest frequency present
- independent of the frequency of the signal
- equal to the number of bits per sample
-
How many voltage levels can an 8-bit analogue-to-digital converter represent?
- 256
- 128
- 512
- 8
-
What is the denary value of the binary number 1010?
- 10
- 5
- 12
- 8
-
A coil of inductance 10 mH is connected in parallel with a capacitor of capacitance 100 microfarad. What is the resonant frequency?
- about 50 Hz
- about 1.6 kHz
- about 5.0 Hz
- about 160 Hz
-
A resonant filter has a centre frequency of 1.0 kHz and a bandwidth of 50 Hz. What is its Q factor?
- 50
- 1000
- 20
- 0.05
-
A resonant filter with Q = 10 has a centre frequency of 500 Hz. What is its bandwidth?
- 50 Hz
- 500 Hz
- 10 Hz
- 5 Hz
-
An ideal inverting amplifier has Rf = 10 k ohm and Rin = 1 k ohm. What is the voltage gain?
- -10
- +10
- -0.1
- -11
-
A non-inverting amplifier has Rf = 9 k ohm and Rl = 1 k ohm. What is its voltage gain?
- -10
- 9
- 10
- 1
-
A summing amplifier has feedback resistor Rf equal to each input resistor. Inputs are 1 V and 2 V. What is the output voltage?
- -2.0 V
- +3.0 V
- -1.5 V
- -3.0 V
-
A difference amplifier has Rf / Rl = 5, with V+ = 2.0 V and V- = 1.5 V. What is the output?
- 10 V
- 2.5 V
- 0.5 V
- -2.5 V
-
An ideal op-amp is used as a comparator. What is the output when V+ is greater than V-?
- it is driven to the negative supply rail
- it is driven to the positive supply rail
- it is driven to zero volts
- it sits at half the supply voltage
-
Why does an ideal op-amp draw no current at its inputs?
- its output current is infinite
- its power supply supplies all of its input current
- its input resistance is zero, so all the current flows in
- its input resistance is infinite, so no current flows into either input
-
Why is the inverting input of an inverting amplifier at 0 V, a virtual earth?
- the very large open-loop gain forces the inverting input to the same potential as the grounded non-inverting input
- the input resistor carries the full output voltage
- the inverting input is connected to earth through a diode
- the output is always zero, so the input is grounded
-
Which is a limitation of a real operational amplifier?
- infinite input impedance and zero output impedance at all frequencies
- finite open-loop gain, with the gain falling off at high frequency
- no need for a power supply
- unlimited output current from the supply
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