Measuring helium in distant galaxies may give physicists insight into why the universe exists

New measurements from Japanโ€™s Subaru telescope have helped researchers study the matter-antimatter asymmetry problem. Javier Zayas Photography/Moment via Getty

Anne-Katherine Burns, University of California, Irvine

When theoretical physicists like myself say that weโ€™re studying why the universe exists, we sound like philosophers. But new data collected by researchers using Japanโ€™s Subaru telescope has revealed insights into that very question.

A cylindrical building sitting on a cliff overlooking a sunset.
Japanโ€™s Subaru telescope, located on Mauna Kea in Hawaii. Panoramio/Wikimedia Commons, CC BY-ND

The Big Bang kick-started the universe as we know it 13.8 billion years ago. Many theories in particle physics suggest that for all the matter created at the universeโ€™s conception, an equal amount of antimatter should have been created alongside it. Antimatter, like matter, has mass and takes up space. However, antimatter particles exhibit the opposite properties of their corresponding matter particles.

When pieces of matter and antimatter collide, they annihilate each other in a powerful explosion, leaving behind only energy. The puzzling thing about theories that predict the creation of an equal balance of matter and antimatter is that if they were true, the two would have totally annihilated each other, leaving the universe empty. So there must have been more matter than antimatter at the birth of the universe, because the universe isnโ€™t empty โ€“ itโ€™s full of stuff thatโ€™s made of matter like galaxies, stars and planets. A little bit of antimatter exists around us, but it is very rare.

As a physicist working on Subaru data, Iโ€™m interested in this so-called matter-antimatter asymmetry problem. In our recent study, my collaborators and I found that the telescopeโ€™s new measurement of the amount and type of helium in faraway galaxies may offer a solution to this long-standing mystery.

After the Big Bang

In the first milliseconds after the Big Bang, the universe was hot, dense and full of elementary particles like protons, neutrons and electrons swimming around in a plasma. Also present in this pool of particles were neutrinos, which are very tiny, weakly interacting particles, and antineutrinos, their antimatter counterparts.

An image showing a burst of light and color against black space and stars.
The Big Bang created fundamental particles that make up other particles like protons and neutrons. Neutrinos are another type of fundamental particle. Alfred Pasieka/Science Photo Library via Getty Images

Physicists believe that just one second after the Big Bang, the nuclei of light elements like hydrogen and helium began to form. This process is known as Big Bang Nucleosynthesis. The nuclei formed were about 75% hydrogen nuclei and 24% helium nuclei, plus small amounts of heavier nuclei.

The physics communityโ€™s most widely accepted theory on the formation of these nuclei tells us that neutrinos and antineutrinos played a fundamental role in the creation of, in particular, helium nuclei.

Helium creation in the early universe happened in a two-step process. First, neutrons and protons converted from one to the other in a series of processes involving neutrinos and antineutrinos. As the universe cooled, these processes stopped and the ratio of protons to neutrons was set.

As theoretical physicists, we can create models to test how the ratio of protons to neutrons depends on the relative number of neutrinos and antineutrinos in the early universe. If more neutrinos were present, then our models show more protons and fewer neutrons would exist as a result.

As the universe cooled, hydrogen, helium and other elements formed from these protons and neutrons. Helium is made up of two protons and two neutrons, and hydrogen is just one proton and no neutrons. So the fewer the neutrons available in the early universe, the less helium would be produced.

Because the nuclei formed during Big Bang Nucleosynthesis can still be observed today, scientists can infer how many neutrinos and antineutrinos were present during the early universe. They do this by looking specifically at galaxies that are rich in light elements like hydrogen and helium.

A diagram showing how protons and neutrons form helium atoms.
In a series of high-energy particle collisions, elements like helium are formed in the early universe. Here, D stands for deuterium, an isotope of hydrogen with one proton and one neutron, and ฮณ stands for photons, or light particles. In the series of chain reactions shown, protons and neutrons fuse to form deuterium, then these deuterium nuclei fuse to form helium nuclei. Anne-Katherine Burns

A clue in helium

Last year, the Subaru Collaboration โ€“ a group of Japanese scientists working on the Subaru telescope โ€“ released data on 10 galaxies far outside of our own that are almost exclusively made up of hydrogen and helium.

Using a technique that allows researchers to distinguish different elements from one another based on the wavelengths of light observed in the telescope, the Subaru scientists determined exactly how much helium exists in each of these 10 galaxies. Importantly, they found less helium than the previously accepted theory predicted.

With this new result, my collaborators and I worked backward to find the number of neutrinos and antineutrinos necessary to produce the helium abundance found in the data. Think back to your ninth grade math class when you were asked to solve for โ€œXโ€ in an equation. What my team did was essentially the more sophisticated version of that, where our โ€œXโ€ was the number of neutrinos or antineutrinos.

The previously accepted theory predicted that there should be the same number of neutrinos and antineutrinos in the early universe. However, when we tweaked this theory to give us a prediction that matched the new data set, we found that the number of neutrinos was greater than the number of antineutrinos.

What does it all mean?

This analysis of new helium-rich galaxy data has a far-reaching consequence โ€“ it can be used to explain the asymmetry between matter and antimatter. The Subaru data points us directly to a source for that imbalance: neutrinos. In this study, my collaborators and I proved that this new measurement of helium is consistent with there being more neutrinos then antineutrinos in the early universe. Through known and likely particle physics processes, the asymmetry in the neutrinos could propagate into an asymmetry in all matter.

The result of our study is a common type of result in the theoretical physics world. Basically, we discovered a viable way in which the matter-antimatter asymmetry could have been produced, but that doesnโ€™t mean it definitely was produced in that way. The fact that the data fits with our theory is a hint that the theory weโ€™ve proposed might be the correct one, but this fact alone doesnโ€™t mean that it is.

So, are these tiny little neutrinos the key to answering the age old question, โ€œWhy does anything exist?โ€ According to this new research, they just might be.The Conversation

Anne-Katherine Burns, Ph.D. Candidate in Theoretical Particle Physics, University of California, Irvine

This article is republished from The Conversation under a Creative Commons license. Read the original article.



Not All at Once [Short Fantasy Story]

It was the nineteenth day of the siege of Port Staine when the assembled forces of the Fourth, Six, and Seventh armies received a special shipment from the supply caravans supporting the Ninth Crusade’s assault on the Dark Continent.

โ€œSir! Sir!โ€ his trusty aide Thomas shouted excitedly as he ran down the trenches seeming not to notice the plumes of dirt following him from enemy mage fire.

โ€œWhat is it?โ€ Captain Peter asked, raising a bemused eyebrow at his aide.

โ€œWe have just the thing to grant us victory. Straight from the alchemists of the Theocracy, Sir! We will be able to take down these werebeasts with ease using this,โ€ Thomas declared, holding up a small vial of a green liquid.

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