Conceptual illustration of the Higgs particle (orange, top and bottom) being produced by colliding two protons. The protons are each composed of three quarks (green and blue) held together by the strong nuclear force carried by gluons (white squiggly lines). The Higgs boson, long expected to exist according to theory, was finally revealed in proton-proton collisions conducted using the Large Hadron Collider (LHC) at CERN in Switzerland, 2012.

1301762760

Conceptual illustration of the Higgs particle (orange, top and bottom) being produced by colliding two protons. The protons are each composed of three quarks (green and blue) held together by the strong nuclear force carried by gluons (white squiggly lines). The Higgs boson, long expected to exist according to theory, was finally revealed in proton-proton collisions conducted using the Large Hadron Collider (LHC) at CERN in Switzerland, 2012.

Photo by: MARK GARLICK/SCIENCE PHOTO LIBRARY

MARK GARLICK/SCIENCE PHOTO LIBRARY

10 Years of the Higgs Boson

Ten years ago scientists at the Large Hadron Collider had finally found evidence for the elusive Higgs boson, a particle that plays a central role in physics. And since then…we haven’t found much.

July 08, 2022

In the 1960’s physicist, Peter Higgs predicted the existence of a brand-new particle (for those of you wondering, he didn’t name it after himself; that came later). Higgs was trying to solve a major problem in physics, which had to do with the relationship between two of the fundamental forces of nature, the electromagnetic force and the weak nuclear force.

In normal everyday life, these two forces couldn’t be any different from each other. They have different carriers, different ranges, different properties, and different everything. But physicists learned that at high energies, like the kinds of fun found inside particle colliders, these two forces merge and form a single, unified force, known as the electroweak force.

Professor Peter Higgs stands in front of a photograph of the Large Hadron Collider at the Science Museum's 'Collider' exhibition on November 12, 2013 in London, England. It touches on the discovery of the Higgs boson, or God particle, the realisation of scientist Peter Higgs theory.

Professor Peter Higgs stands in front of a photograph of the Large Hadron Collider at the Science Museum's 'Collider' exhibition on November 12, 2013 in London, England. It touches on the discovery of the Higgs boson, or God particle, the realisation of scientist Peter Higgs theory.

How could these two forces merge together and then split apart at different energies? Higgs proposed that a new particle did the work. At high energies, this particle kept the two forces glued together, and at low energies, the new particle drove a wedge between the forces.

This was pretty cool, but as Higgs worked through the math he found something else. This new particle had another trick up its sleeve. The various fundamental particles, like electrons and quarks and whatnot, have no reason to have the mass that they do. Physicists had no explanation for why any kind of particle had the masses that they did. Higgs found the answer: different particles interact with his new particle in different ways, and we observe this interaction as a mass.

So the Higgs boson, as the particle is known, is kind of important.

Fast forward half a century and a collaboration of over 3,000 scientists use the world’s largest particle collider, the LHC, to find evidence for the existence of the Higgs. They find it. Pop the champaign. Hand out the Nobel prizes.

The Large Hadron Collider (LHC) is the world's largest and most powerful particle accelerator. Consists of a 27-kilometre ring of superconducting magnets with a number of accelerating structures to boost the energy of the particles along the way.

The Large Hadron Collider (LHC) is the world's largest and most powerful particle accelerator. Consists of a 27-kilometre ring of superconducting magnets with a number of accelerating structures to boost the energy of the particles along the way.

The confirmation of the Higgs cemented the Standard Model of particle physics, our modern view of the fundamental interactions of the universe. But as usual with science, for every question answered a dozen more pop up.

The Standard Model has many shortcomings and is far from complete. It doesn’t explain why the mysterious particles known as neutrinos have mass. It doesn’t include dark matter and dark energy, which together make up over 95% of the energy density of the universe. It doesn’t include the force of gravity in its quantum mechanical framework.

Scientists had hoped that in addition to finding the Higgs, the LHC would turn up some evidence of some new physics, like a new particle or interaction, that could help solve these mysteries and more. But in the 10 years since that momentous discovery, we haven’t found anything.

LHC scientists are gearing up for a new run starting this summer, using an upgraded system that will push to even higher energies. And for sure they’re hoping that they get a few surprises.

Dive Deeper into the Universe

Journey Through the Cosmos in an All-New Season of How the Universe Works

The new season premieres on Science Channel and streams on discovery+.

Paul M. Sutter

Paul M. Sutter is an astrophysicist at Stony Brook University and the Flatiron Institute, host of Ask a Spaceman and Space Radio, and author of How to Die in Space.

Next Up

How Gravity Can Make Waves – And How You’re Feeling Them Right Now

Einstein was the first to explain the force of gravity as warps and dents in the fabric of spacetime. He was also the first to realize that those warps and dents can make waves – literal waves of gravity. But he didn’t think we would ever get to measure them, because they would be so tiny.

What’s the Farthest Thing We Can See?

Beyond the most distant star you can see with the naked eye, beyond the most extreme faint galaxy that we discern with our telescopes, lays something extraordinary: the leftover light from the big bang itself.

Got You! Astronomers Find an Especially Sneaky Black Hole

Black holes are tricky creatures. Since ancient times the practice of astronomy has been to point our eyes and instruments at all the glowing things in the skies above us. But black holes are defined by the fact that nothing, not even light, can escape their gravitational clutches. So how you do see something that is completely, totally black?

This Year, James Webb will Take a Close Look at a Lava World

The James Webb Space Telescope is gearing up to be an exoplanet extraordinaire. Among many other missions and targets, astronomers plan to use the observatory, now in its final stages of preparations to study…well, a world where it might rain lava.

Scientists Watch as Stars Quake

The European Space Agency’s Gaia spacecraft has managed to watch stars tremble, their light subtly changing as starquakes ripple through their surfaces. Which is pretty cool, because Gaia wasn’t even designed to do it.

6 Months in Space Permanently Ages Bones by 10 Years

Astronauts on long-term space missions can experience bone loss equivalent to two decades of aging. New research suggests more weight-bearing exercises in space could help offset that decline.

World's First Malaria Vaccine Offers Hope to Millions

Tens of thousands of lives could be saved each year from sickness and death caused by malaria following the World Health Organization (WHO) approval of a first-ever vaccine. Scientists have recommended the RTS,S vaccine for children in sub-Saharan Africa and other high-risk areas to prevent one of the world’s oldest and deadliest infectious diseases.

Curiosity Daily Podcast: Meteorite Hunting with The Aquarius Project, Roommate Drama In Space, and Language Based On Senses

Learn why scientists are worried about roommate drama in space and why your most important sense depends on the language you speak. Plus, Adler Planetarium’s Aubrey Henretty and Chris Bresky discuss The Aquarius Project, a teen-driven underwater ROV meteorite hunt led by experts from the Adler Planetarium, the Shedd Aquarium, The Field Museum, and NASA.

Curiosity Daily Podcast: What Makes People Cultural Omnivores, Archaeologists’ Prehistoric Poop Problem, and How to Tell Stars and Planets Apart in the Sky

Learn about how archaeologists are solving a prehistoric poop problem; what leads people to be “cultural omnivores”; and an easy trick for telling stars and planets apart when you’re stargazing.

NASA Launches CAPSTONE to Test Experimental Orbit Around the Moon

In preparation for future missions, NASA is testing a never-been-flown-before orbit around the Moon in search of the most efficient deep space route for space travel.

Related To: