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Particle physics

physical science Maturity 9-11 Vital Level 3

Everything is made of tiny bits.

Quark structure proton.svg
Quark structure proton.svg
These bits are very, very small. They make up our whole world. They help make you and me. We can study them with big machines. Can you imagine something so small?

50 words

Everything is made of tiny bits.

Quark structure proton.svg
Quark structure proton.svg
These bits are very, very small. They make up our whole world.

Some bits are called quarks. Quarks join together to make protons and neutrons.

Quark structure proton.svg
Quark structure proton.svg
These make up most of our world.

There are also bits called electrons. These are very small too. They live inside atoms.

Some bits carry forces. These forces act like glue. They hold the tiny bits together.

Scientists use big machines to study them. These machines help us see the small world. It is a very big mystery!

103 words

Everything in our world is made of tiny bits. Scientists call this study particle physics. They look at the smallest parts of matter. They also study the forces between them.

Most matter comes from two types of particles. These are called fermions. One type is the quark. Quarks join together to make protons and neutrons.

Quark structure proton.svg
Quark structure proton.svg
Another type is the electron.

Other particles are called bosons. These are force-carrying particles. They act like messengers. They help forces work. For example, the photon carries electromagnetism.

Beta Negative Decay.svg
Beta Negative Decay.svg
Gluons act like glue to hold quarks together.

Some particles have a twin. These twins are called antiparticles. They have the same mass. But they have an opposite charge. For example, an electron is negative. Its twin, the positron, is positive.

View inside detector at the CMS cavern LHC CERN.jpg
View inside detector at the CMS cavern LHC CERN.jpg
When they meet, they vanish and turn into other things.

Scientists use huge machines to study these bits. These machines are called particle accelerators. One famous machine is the Large Hadron Collider. It helps us find new particles like the Higgs boson.

189 words

Particle physics is the study of the tiniest building blocks in our universe. Scientists look at the fundamental particles that make up all matter and radiation. They also study the forces that act between these small pieces. This field is divided into two main parts. Experimental particle physics uses machines to watch particles in action. Theoretical particle physics uses math to understand how these particles behave in space.

Everything we see is made of two main groups of particles. The first group is called fermions, which are the matter particles. There are three generations of fermions, but our world uses only the first. This generation includes up and down quarks, which build protons and neutrons. It also includes electrons and electron neutrinos. The second group is called bosons, which carry forces like messengers.

Beta Negative Decay.svg
Beta Negative Decay.svg
For example, photons carry electromagnetism and gluons hold quarks together. There are also W and Z bosons that manage the weak interaction.

Humans have been curious about these tiny bits for a long time. People in the 6th century BC first thought matter was made of tiny pieces. In the 1800s, John Dalton said every element had its own unique particle. Later, scientists found that atoms are actually made of even smaller things like electrons. In 1939, Lise Meitner and Otto Hahn studied nuclear fission. Hans Bethe discovered nuclear fusion in that same year.

Rutherford Scattering.svg
Rutherford Scattering.svg
By the 1950s, scientists found so many new particles they called it a "particle zoo."

Today, we use the Standard Model to organize what we know. This model explains 61 different elementary particles. It describes how quarks and leptons make up all matter. Quarks can join to form hadrons, like the proton and neutron. These are called baryons because they have three quarks. Some particles also have an opposite twin called an antiparticle. An electron is negative, but its twin, the positron, is positive.

Quark structure proton.svg
Quark structure proton.svg
When a particle and its antiparticle meet, they vanish and turn into new things.

We find these tiny particles using giant machines called particle accelerators. One of the most famous is the Large Hadron Collider at CERN. Scientists use it to search for particles like the Higgs boson.

View inside detector at the CMS cavern LHC CERN.jpg
View inside detector at the CMS cavern LHC CERN.jpg
This boson was predicted by theory before it was actually found. Even with all we know, many scientists think the Standard Model is not the whole story. They are still looking for a single theory that explains everything in nature.

419 words

Particle physics, also known as high-energy physics, is the study of the fundamental particles and forces that create matter and radiation. This field explores the most basic building blocks of our universe. It also investigates how these particles combine to form larger structures like protons and neutrons. While nuclear physics focuses on the combinations of protons and neutrons, particle physics looks deeper at the elementary parts themselves. Scientists use two main approaches to study this realm. Experimental particle physics uses machines to observe particles during radioactive processes or high-speed collisions. Theoretical particle physics uses math and quantum theory to understand the cosmos.

To understand how matter works, scientists use a framework called the Standard Model. This model describes how 61 elementary particles interact through different forces. These particles are divided into two main groups: fermions and bosons. Fermions are the matter particles that build everything we see. There are three generations of fermions, though ordinary matter only uses the first generation. This first generation includes up and down quarks, which form protons and neutrons, as well as electrons and electron neutrinos. Bosons are the force-carrying particles, or mediators, that allow these matter particles to interact.

Beta Negative Decay.svg
Beta Negative Decay.svg

The Standard Model explains three fundamental interactions mediated by specific bosons. Electromagnetism is carried by the photon, which is the quantum of light. The weak interaction, which is responsible for certain types of decay, is mediated by the W and Z bosons. The strong interaction is carried by gluons, which link quarks together. Because of a process called color confinement, gluons and quarks cannot be observed on their own. Quarks possess a property called color charge, labeled as red, green, or blue. When quarks combine to form particles called hadrons, their color charges must combine to become neutral, or "white."

Quark structure proton.svg
Quark structure proton.svg

Hadrons are composite particles made of quarks. There are two main types of hadrons: baryons and mesons. Baryons are particles that contain an odd number of quarks, such as the proton and the neutron. Protons consist of two up quarks and one down quark. Neutrons consist of two down quarks and one up quark. Mesons are particles that contain an even number of quarks, specifically one quark and one antiquark. Mesons are very unstable and short-lived. The longest-lived mesons last for only a few hundredths of a microsecond. These are often produced during high-energy collisions in particle accelerators.

View inside detector at the CMS cavern LHC CERN.jpg
View inside detector at the CMS cavern LHC CERN.jpg

Every particle also has a corresponding antiparticle. An antiparticle has the same mass as its particle twin but carries the opposite electric charge. For example, the electron has a negative charge, while its antiparticle, the positron, has a positive charge. If a particle and its antiparticle meet, they undergo annihilation. This process converts their mass into other particles. Some particles, like the photon or the gluon, are their own antiparticles. These particles are actually excitations of underlying quantum fields. These fields govern both the particles and how they interact with one another.

The history of this science shows how our understanding has grown. The idea that matter is made of tiny pieces dates back to at least the 6th century BC. In the 19th century, John Dalton concluded that each element was made of a unique type of particle. Later, physicists discovered that atoms are actually made of smaller parts like electrons. In 1939, Lise Meitner and Otto Hahn proved nuclear fission, while Hans Bethe discovered nuclear fusion. By the 1950s and 1960s, scientists discovered so many new particles that they called it a "particle zoo." The Standard Model was eventually formulated in the 1970s to explain this variety.

Rutherford Scattering.svg
Rutherford Scattering.svg

Modern research continues to test the limits of the Standard Model. One major success was the discovery of the Higgs boson. This particle was predicted by theory before it was confirmed by experiments at the Large Hadron Collider at CERN in 2012. The Higgs boson is important because it gives mass to the W and Z bosons through the Higgs mechanism. However, the Standard Model may still be incomplete. For instance, it does not currently include gravity, which remains a major challenge for physicists. Recent measurements of neutrino mass have also shown deviations from the model. Scientists are now looking for a more fundamental theory, sometimes called a "Theory of Everything."

723 words
🖼️ Images & Media (5)
File:Rutherford_Scattering.svg
Rutherford_Scattering.svg
File:Beta_Negative_Decay.svg
Beta_Negative_Decay.svg
File:Quark_structure_proton.svg
Quark_structure_proton.svg
File:02 Fermilab - Fermi National Accelerator Laboratory - American particle accelerator Fermilab near Chicago Illinois.jpg
02 Fermilab - Fermi National Accelerator...
File:View inside detector at the CMS cavern LHC CERN.jpg
View inside detector at the CMS cavern...
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