Log in Sign up
Back to Discover
🚀

Pulsar

space Maturity 9-11

Some stars blink in the sky.

Lightsmall-optimised.gif
Lightsmall-optimised.gif
They spin very fast. They send out beams of light. It is like a lighthouse in space. We use them to tell time.
Pulsar anim.ogv
Pulsar anim.ogv
Can you see the blinking star?

38 words

Some stars blink in the sky.

Lightsmall-optimised.gif
Lightsmall-optimised.gif

These are called pulsars. They are very heavy stars. They spin around very fast.

Pulsar anim.ogv
Pulsar anim.ogv

A pulsar sends out beams of light. This is like a lighthouse. We only see the light when it points at us.

These stars are very steady. They act like clocks in space. Some spin many times in one second.

People once thought they were from aliens. They even called them "little green men." But they are just stars.

Chart Showing Radio Signal of First Identified Pulsar.jpg
Chart Showing Radio Signal of First Identified Pulsar.jpg

90 words

A pulsar is a special kind of star. It is a neutron star. These stars are very dense and heavy.

Pulsar anim.ogv
Pulsar anim.ogv
They spin around very fast. A pulsar has a strong magnetic field. This field sends out beams of light from its poles.
Lightsmall-optimised.gif
Lightsmall-optimised.gif
We only see these beams when they point at Earth. This makes the star look like it is blinking. It works just like a lighthouse.
Pulsar schematic.svg
Pulsar schematic.svg
Pulsars are very steady. They can act like clocks in space. Some spin many times in just one second.

In 1967, Jocelyn Bell found the first pulsar. At first, people thought the signals were from aliens. They even used the nickname "little green men."

Chart Showing Radio Signal of First Identified Pulsar.jpg
Chart Showing Radio Signal of First Identified Pulsar.jpg
Soon, they found a second pulsar. This proved the signals were natural. We now know pulsars are real stars. They can even have planets around them. These planets are far from our own sun.

164 words

A pulsar is a very special kind of star. It is a neutron star that spins very fast. These stars are extremely dense and have strong magnetic fields.

Pulsar anim.ogv
Pulsar anim.ogv
A pulsar sends out beams of radiation from its magnetic poles. We only see these beams when they point toward Earth. This creates a pulsing effect that looks like a blinking light.
Lightsmall-optimised.gif
Lightsmall-optimised.gif
This works just like a lighthouse sweeping its beam across the sea. Because they spin so steadily, pulsars are amazing tools for astronomers. They can even act as clocks that are more accurate than atomic clocks on Earth.

To understand how a pulsar works, we must look at its spin. The star rotates at a very regular speed. This rotation happens in a precise interval. Some pulsars pulse every few seconds. Others, called millisecond pulsars, spin hundreds of times in a single second.

Pulsar schematic.svg
Pulsar schematic.svg
As the star spins, the magnetic field stays in place. The beams of light or radio waves shoot out from the poles.
Pulsar formation spinup animation.gif
Pulsar formation spinup animation.gif
When the beam sweeps past our telescopes, we see a pulse. This happens over and over again with great timing. This steady rhythm is what makes them so useful for science.

Humans first discovered these signals in 1967. A student named Jocelyn Bell was looking at data from a new radio telescope. She noticed a series of pulses every 1.337 seconds. At first, people wondered if the signals came from aliens. They even used the nickname LGM-1, which stood for "little green men."

Pulsar anim.ogv
Pulsar anim.ogv
However, Bell found a second pulsar in a different part of the sky. This proved the signals were natural and not from another civilization. Her supervisor, Antony Hewish, later shared a Nobel Prize for this discovery.

There are many important facts about these stars. In 1934, Walter Baade and Fritz Zwicky first proposed that neutron stars exist.

Chandra-crab.jpg
Chandra-crab.jpg
In 1992, Aleksander Wolszczan found the first planets outside our solar system. These planets were orbiting a pulsar named PSR B1257+12. Some pulsars are found in pairs, called binary systems. In 1974, Joseph Hooton Taylor, Jr. and Russell Hulse found a pulsar orbiting another star. This helped prove that gravitational waves exist in our universe. These discoveries changed how we see the deep reaches of space.

Today, we use pulsars to learn about the whole universe. Astronomers use them to measure the movement of stars. They also use them to study the space between stars.

Vela Pulsar jet.jpg
Vela Pulsar jet.jpg
Some pulsars are even found in the middle of colorful clouds like the Crab Nebula.
Chandra-crab.jpg
Chandra-crab.jpg
We can see them using different kinds of light, like X-rays or gamma rays. Even though they are far away, they connect to our understanding of physics. They show us how gravity and magnetism work in the most extreme places. Studying them helps us map the paths of energy through the cosmos.

498 words

A pulsar is a highly magnetized, rotating neutron star. These objects are among the most extreme environments in the universe. They emit beams of electromagnetic radiation from their magnetic poles. We only observe these beams when they point toward Earth. This creates a pulsing appearance, much like a lighthouse sweeping its light across the sea.

Lightsmall-optimised.gif
Lightsmall-optimised.gif
Because neutron stars are incredibly dense, they possess very short and regular rotational periods. This consistency produces precise intervals between pulses. These intervals can range from mere milliseconds to several seconds.
Pulsar anim.ogv
Pulsar anim.ogv

The mechanism of a pulsar relies on its intense magnetic field and rapid spin. As the neutron star rotates, its magnetic field remains fixed relative to its structure. This field directs radiation out of the magnetic poles in narrow beams.

Pulsar schematic.svg
Pulsar schematic.svg
When the star spins, these beams sweep through space. If a beam crosses our line of sight, we detect a pulse. This cycle repeats with extreme regularity. Some pulsars, known as millisecond pulsars (MSPs), rotate hundreds of times per second.
Pulsar formation spinup animation.gif
Pulsar formation spinup animation.gif
These rapid rotations are often the end product of X-ray binaries. In these systems, a pulsar may gain energy and spin faster by interacting with a companion star.

Pulsars can be classified into several distinct types based on their behavior. Millisecond pulsars are a notable class known for their extraordinary stability. They can spin at rates such as 38,500 rpm.

PIA23863-NeutronStars-Types-20200624.jpg
PIA23863-NeutronStars-Types-20200624.jpg
These objects are so steady they can rival the accuracy of atomic clocks on Earth. Another type involves pulsars in binary systems. These are pairs of stars orbiting one another. Some pulsars even exist in systems with white dwarfs. While white dwarfs can act like pulsars, they rotate much slower. Their rotation periods are measured in minutes rather than milliseconds due to their higher moment of inertia.

The history of pulsar discovery began with a surprising observation in 1967. Jocelyn Bell was analyzing data from a newly commissioned radio telescope. She noticed a series of pulses occurring every 1.337 seconds. At first, her supervisor, Antony Hewish, thought the signals might be interference. Some even joked that the signals came from "little green men," or LGM-1. This was a playful name for extraterrestrial intelligence. However, Bell discovered a second pulsar in a different part of the sky. This confirmed that the signals were natural astronomical phenomena.

Pulsar anim.ogv
Pulsar anim.ogv
In 1974, Hewish was awarded the Nobel Prize in Physics for this work.

Scientific importance is found in the precise timing of these pulses. Astronomers use pulsar timing to measure many things. They can determine a pulsar's 3D position and its proper motion through space. They can also study the electron content of the interstellar medium.

Vela Pulsar jet.jpg
Vela Pulsar jet.jpg
Pulsars are also candidates for the source of ultra-high-energy cosmic rays. In 1974, Joseph Hooton Taylor, Jr. and Russell Hulse discovered a pulsar in a binary system. Their observations of the pulsar PSR B1913+16 confirmed the existence of gravitational radiation. This discovery provided the first evidence for gravitational waves.
Pulsar anim.ogv
Pulsar anim.ogv
This work earned them the Nobel Prize in 1993.

Notable discoveries have expanded our understanding of planetary systems. In 1992, Aleksander Wolszczan discovered the first extrasolar planets. These planets were found orbiting the pulsar PSR B1257+12. While these planets exist in a high-radiation environment, their discovery proved that planets are common in the galaxy. Another famous example is the Crab Pulsar. It is located at the center of the Crab Nebula.

Chandra-crab.jpg
Chandra-crab.jpg
This pulsar has a 33-millisecond pulse period. It helped confirm the rotating neutron star model proposed by scientists like Thomas Gold and Franco Pacini.

Pulsars connect to many broader fields of physics and astronomy. They allow scientists to test the theory of general relativity. By using a pulsar timing array, researchers hope to detect background gravitational waves.

Pulsar schematic.svg
Pulsar schematic.svg
This involves comparing deviations in arrival times between many different pulsars. Pulsars also help us understand how matter behaves under extreme density. They serve as natural laboratories for studying magnetism and high-energy particles. From radio waves to X-rays and gamma rays, they offer a window into the most powerful processes in the cosmos.

708 words
🖼️ Images & Media (12)
File:PIA18848-PSRB1509-58-ChandraXRay-WiseIR-20141023.jpg
PIA18848-PSRB1509-58-ChandraXRay-WiseIR-20...
Pulsar anim.ogv
File:Lightsmall-optimised.gif
Lightsmall-optimised.gif
File:Chart Showing Radio Signal of First Identified Pulsar.jpg
Chart Showing Radio Signal of First...
File:Chandra-crab.jpg
Chandra-crab.jpg
File:Vela Pulsar jet.jpg
Vela Pulsar jet.jpg
File:Artist's concept of PSR B1257+12 system.jpg
Artist's concept of PSR B1257+12 system.jpg
File:Pulsar schematic.svg
Pulsar schematic.svg
File:Pulsar formation spinup animation.gif
Pulsar formation spinup animation.gif
File:PIA23863-NeutronStars-Types-20200624.jpg
PIA23863-NeutronStars-Types-20200624.jpg
File:Pioneer plaque sun.svg
Pioneer plaque sun.svg
File:Fermi's Gamma-ray Pulsars.jpg
Fermi's Gamma-ray Pulsars.jpg
Up Next
🚀
PSR B1937+21
Space
More to explore

What is Nepedia?

A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.