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Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen
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Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Dec 14, 2015

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Page 1: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Op-AmpEE174 – SJSULecture #1Tan Nguyen

Page 2: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Operational Amplifier

• Introduction• Brief of History• Fundamentals of Op-Amps• Applications

Page 3: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Introduction• Operational Amplifier (Op-Amp) is an active

circuit element design to perform mathematic operations.

• Op-Amp is a low cost integrating circuit consisting of transistors, resistors and capacitors.

• Op-Amp amplify an input signal produces an output voltage equal to the difference between the two input terminals multiplied by the gain A

Page 4: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Op-Amps are commonly used for both linear and nonlinear applications:

• Inverting/Non-inverting Amplifiers• Variable Gains Amplifiers• Summers• Integrators/Differentiators • Filters (High, Low, Band Pass and Notch

Filters)• Schmitt trigger• Comparators• A/D converters

Page 5: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Brief History• Vacuum Tubes Op-Amp (use ±300 to ±100V) built in

1930’s-1940’s• Solid State Discrete Op-Amps (use ±15 to ±10V) 1960’s• Integrated Circuit Op-Amp (µA702 in 1963 and µA741 in

1968)

Page 6: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

The Equivalent Circuit of the Op-Amp

Parameters of Typical Range vs Ideal Values of the Op Amp

vd = v+ - v-

vo = Avd = A(v+ – v-)

Note: v+ = v2, v- = v1

Page 7: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

The Ideal Op-Amp

1) The input impedance Ri is infinite - i.e. no current flows into either

input.2) The output impedance Ro is zero - i.e. the op-amp can drive any

load impedance to any voltage.3) The open-loop gain (A) is infinite.4) The bandwidth is infinite.5) The output voltage is zero when the input voltage difference is zero.

V-

V+

Page 8: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Op-Amp Gain

Open loop gain: This form of gain is measured when no feedback is applied to the op amp. Figures are often quoted in the op amp datasheets in terms of volts per millivolt, V/mV.

Closed loop gain: This form of gain is measured when the feedback loop is operation, i.e. a closed loop.

Page 9: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.
Page 10: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

The Voltage Gain (AV) of the operational amplifier can be found using the following formula:

and in Decibels or (dB) is given as:

Op-Amp Gain

Page 11: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Closed Loop Gain

Example: A closed-loop gain of A = 10 or 20 log (10) = 20dB.

Page 12: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

BANDWIDTH AND FREQUENCY

The bandwidth (BW) of an amplifier is the range of frequencies, from lowest to highest, over which the amplifier delivers sufficient gain. The meaning of "sufficient" depends on your application, but one common meaning is when the gain (20 Log Av) has dropped by 3dB. ".

How much bandwidth does an audio amplifier need? In a telephone circuit, 300 Hz to 3300 Hz is adequate bandwidth. In high-fidelity audio, 20 Hz to 20 kHz would be required. In some applications, 100 kHz is considered to be an "audio" frequency.

Page 13: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Feedback vs bandwidth

Applying feedback will reduce the gain but increase the bandwidth.

Page 14: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Gain Bandwidth (GBW)

The GBW of a given amplifier is a constant. If you set the amplifier to a gain of A (ratio, not dB), then the bandwidth is given by:

BW = GBW / A

For example, suppose the unity GBW is 1,000,000. At a gain of 10, the amplifier will have a bandwidth of 100,000 Hertz. At a gain of 100, the amplifier will have a bandwidth of only 10,000 Hertz.

Page 15: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

An Operational Amplifiers Bandwidth

Example: Find BW for the gain of 37dB.

Using the formula 20 log (A), we can calculate the bandwidth of the amplifier as:

37 = 20 log A   therefore, A = anti-log (37 ÷ 20) = 70.8GBW ÷ A = Bandwidth,  therefore, 1,000,000 ÷ 70.8 = 14,124Hz, or

14kHz

Page 16: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Slew RateThe slew rate of an op amp or any amplifier circuit is the rate of change in the output voltage caused by a step change on the input.

Page 17: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Whereslew rate is measured in volts / second, although actual measurements are often given in v/µsf = the highest signal frequency, HzV = the maximum peak voltage of the signal.

As an example, take the scenario where an op amp is required to amplify a signal with a peak amplitude of 5 volts at a frequency of 25kHz. An op amp with a slew rate of at least 2 π x 25 000 x 5 = 785,000V/s or 0.785V/µs would be required

Slew rate calculation & formula

Page 18: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Op Amp Offset Null

The offset null capability is used to reduce small DC offsets that can be amplified. These can be important in DC amplifiers where these small voltages can then become significant where large gains are required.

This input offset voltage is small and arises from mismatches in the differential input stage of the op amp chip. These small offsets are caused by a variety of unavoidable issues within the manufacture of the op amp. They include aspects including mismatched transistor pairs, collector currents, current-gain betas (β), collector or emitter resistors, etc..

Page 19: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

To remove or null the offset, many op-amp chips provide two pins that enable this to be done. Using the offset null adjustment requires a potentiometer with its wiper connected to the negative supply with some op amps or to 0 V with othersVR1 is typical 10 KΩ to 100 KΩ.

Page 20: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

The Voltage Follower

VOUT = V-

VOUT = A(V+ - V-) VOUT = A/(A+1) V+

VOUT = V+= VIN

Voltage followers are used to buffer or isolate a low impedance load from a voltage source.

V+

V-

VOUT = VIN

Page 21: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

The Inverting Op Amp

Apply KCL at node A: i1 = i2 (vin – v-)/R1= (v- – vOUT)/R2

Since v-= v+ = 0, vi /R1 = - vOUT/R2 or

vOUT = - (R2 /R1)vin

The V- terminal is referred to as a "virtual ground“ due to negative feedback.

VOUT = A(0-V-) thus

Page 22: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

v- = v+ = vi n vi n = R1 i1

Since no current flows into either of the Op-Amp inputs i1 = i2

Vout = R1 i1 + R2 i2 = Vin + R2 Vin/R1

vout= (1 + R2 /R1)vin

The Non-Inverting Amp

Page 23: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

The Summing Amp

i = i1 + i2 + i3

i1 = (v1 – va)/R1 i2 = (v2 – va)/R2

i3 = (v3 – va)/R3 i = (va – vo)/Rf

Since va= 0

Page 24: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

The Difference AmpApply KCL at node a

(v1 – va)/R1 = (va – vo)/R2 or

vo = (R2/R1+ 1)va- (R2/R1)v2

Apply KCL at node b

(v2 – vb)/R3 = (vb – 0)/R4 or

vb = {R4/(R3+R4)}v2

Since va = vb

or

If R1/R2 = R3/R4 then

vo = R2/R1 (v2 - v1)

Page 25: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Comparator

A typical comparator circuit will have one of the inputs held at a given voltage. This may often be a potential divider from a supply or reference source. The other input is taken to the point to be sensed.

Page 26: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.
Page 27: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Example: Uses a 301 op amp as a comparator.When vI < VT vO = - Vsat and vI > VT vO = + Vsat

If VT ≠ 0V, the circuit is aptly called a threshold detector. If VT = 0 V, the circuit is referred to as a zero-crossing detector.

Page 28: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Inverting Schmitt Trigger Use a voltage divider to provide positive dc feedback for a 301 op amp. The circuit can be viewed as an inverting- type threshold detector whose threshold is controlled by the output. Since the output has two stable states, this threshold has two possible values, namely,

Page 29: Op-Amp EE174 – SJSU Lecture #1 Tan Nguyen. Operational Amplifier Introduction Brief of History Fundamentals of Op-Amps Applications.

Reference:• Fundamental of Electric Circuit by Charles K. Alexander and Matthew

N.O. Sadiku• Lecture EE122, Stanford University, Prof. Greg Kovacs• “Op Amp History.” Analog Devices.

http://www.analog.com/library/analogDialogue/archives/39-05/Web_ChH_final.pdf

• www.learningaboutelectronics.com/Articles/• http://www.radio-electronics.com/info/circuits/opamp_basics/operational-

amplifier-slew-rate.php• Design With Operational Amplifiers And Analog Integrated Circuits, 4th

Edition by Sergio Franco• http://users.ece.gatech.edu/mleach/ece3050/notes/OpAmps/opampbw.pdf• http://www.electronics-tutorials.ws/opamp/opamp_1.html• https://www.globalspec.com• http://

masc2279.no-ip.org/Plone/best-diy/diy-knowledge-articles/choosing-components-part-2