Voltage Follower (Unity Gain Buffer) Explained

Share:
Analog Electronics
Voltage Follower (Unity Gain Buffer) Explained

This circuit copies its input voltage to its output exactly, without amplifying it, and that single trait makes it one of the most quietly useful op amp configurations in analog design.

Voltage Follower Unity Gain Buffer Impedance Matching

A Voltage Follower takes advantage of an op amp's near infinite input impedance and near zero output impedance, isolating a sensitive source from a load that would otherwise pull its voltage down.

Hello everyone, today we are going to look at this simple but powerful op amp circuit, why its gain works out to exactly one, and where it quietly solves loading problems in real designs.

This circuit is one of the simplest applications built on the general operational amplifier basics every analog design starts from.
Voltage Follower

Voltage Follower Working Principle

The op amp's output is fed directly back into its inverting input, forming negative feedback with no resistors in the loop at all.

That direct feedback forces the output voltage to track the non inverting input voltage as closely as the op amp's open loop gain and bandwidth allow.

Close up of an integrated circuit chip similar to an op amp used in a voltage follower circuit
Image credit: Bermix Studio, Unsplash

Because the gain works out to almost exactly one, the circuit passes the input signal through unchanged in amplitude while contributing a large amount of current drive at the output.

4 Steps in Buffered Signal Transfer

1
Source Presents Voltage
A high impedance source, such as a sensor, presents its signal to the buffer input.
2
Op Amp Draws Almost No Current
The near infinite input impedance means the source is barely loaded at all.
3
Feedback Forces Unity Gain
Direct feedback keeps output voltage equal to input voltage at all times.
4
Buffer Drives the Load
Low output impedance lets the buffer supply current without dropping voltage.

Related Buffer Configurations

Op Amp Voltage Follower

The classic configuration, offering the highest input impedance and best precision.

Best for: precision sensor buffering
Precision
Emitter Follower

A transistor based buffer with lower input impedance but higher current capability.

Best for: driving low impedance loads
High Current
Source Follower

A FET based buffer offering very high input impedance with moderate drive strength.

Best for: ultra high impedance sources
Ultra High Z

Buffer Isolating Source from Load

High Impedance Source
Buffer Stage, Gain = 1
Low Impedance Load
Input side, high impedance Output side, low impedance
Tip
Not every op amp is stable in this configuration without a small series output resistor, so check the datasheet's stability notes before wiring the feedback path directly with no resistor at all.

Closed Loop Gain Check

Closed Loop Gain = 1 (ideal, no resistors in feedback path)

Example:
Input voltage = 2.5 V
Output voltage = 2.5 V
Gain error mainly comes from open loop gain and offset voltage, not the formula itself

Because there is no resistor network to size, a voltage follower avoids the resistor tolerance and thermal drift issues that affect a standard common emitter amplifier stage.

Where a Voltage Follower Is Used

Sensor Signal Buffering
Isolating a high impedance sensor output from a lower impedance ADC input.
Reference Voltage Buffering
Preventing a voltage reference from sagging under a varying load current.
Filter Stage Isolation
Preventing one filter stage from loading and distorting the stage before it.

Common Mistakes When Using a Buffer

Assuming perfect gain accuracy is a common oversight, since real op amps have finite open loop gain and input offset voltage that introduce small but nonzero error.

Ignoring output current limits is another frequent mistake. A buffer with a large input impedance can still be overloaded if the connected load demands more current than the op amp can supply.

This current limit consideration is much like the tradeoffs that matter when selecting resistor types for a power sensitive stage.

Skipping compensation for capacitive loads causes ringing or outright oscillation in some op amps, since a follower configuration has zero phase margin to spare against added output capacitance.

Choosing a general purpose op amp for a high frequency buffering task without checking bandwidth is also common, and it results in signal attenuation well below the intended operating frequency.

Power supply decoupling is often underestimated in buffer stages. A small ceramic capacitor placed close to the op amp's supply pins prevents transient current demands from injecting noise into the signal path.

Input bias current is another subtle source of error, especially with high source impedance. Even a few nanoamps of bias current flowing through a large source resistance can create a measurable offset at the output.

Choosing between a bipolar and a CMOS input op amp changes this tradeoff considerably, since CMOS inputs typically offer far lower bias current at the cost of somewhat higher input offset voltage drift, a tradeoff similar to the ones seen in cascode amplifier design.

Loading Error Calculator

Source Loading Error Estimator
Voltage loss without a buffer
90.91 %

Reference Document

PDF
Analog Engineer's Circuit: Buffer (Follower)
A Texas Instruments design reference for buffer amplifier circuits

Watch: Op Amp Voltage Follower Explained

Frequently Asked Questions

Why is the gain exactly one?
Direct feedback from output to inverting input forces the output to track the input voltage.
What is this circuit typically used for?
It isolates a high impedance source from a lower impedance load without loading it down.
Does it amplify the signal at all?
No, the voltage amplitude stays the same, only the current drive capability increases.
Can any op amp be used in this configuration?
Most can, but some require a small series resistor to remain stable with capacitive loads.
How is this different from an emitter follower?
An emitter follower uses a single transistor and has lower input impedance and higher output drive.
What causes gain error in this circuit?
Finite open loop gain and input offset voltage in the real op amp cause small gain errors.
Is feedback resistor needed for this configuration?
No resistors are required, since the entire output connects directly to the inverting input.
Why might this circuit oscillate?
Capacitive loading combined with zero phase margin in some op amps can trigger instability.

Related Articles

External References

What We Learn Today

  • A unity gain buffer copies its input voltage exactly while providing high input impedance and low output impedance.
  • Direct feedback with no resistors sets the gain to one, avoiding resistor tolerance and drift issues.
  • Stability with capacitive loads and output current limits deserve attention despite the circuit's simplicity.
I hope you like above blog. There is no cost associated in sharing the article in your social media. Thanks for reading!! Happy Learning!!

Leave a Reply

Your email address will not be published. Required fields are marked *