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Pointpartilce pp is some small mass in the translation. Smaller than an atom even! Atoms are the basic particles of every visible thingayassecort and touch. When you sit in your chair, or when you eat food, they are all made from atoms An example of this is the pp particle that encloses two protons. Protons are a special kind of charged particle, having positive charges and concentrated in the interior or nucleus of an atom. Protons are about the size and shape of little balls, and they are in the nucleus of an atom.
Since protons have a positive charge they do not typically like to associate with other protons and instead prefer pushing each other away. Consider: 2 Protons will simply refuse to get too close (but at the same time Still need positive/negative polarity together(workings)!) So you may ask - how can two protons form a pp-particle? Well, it is actually because of a thing known as the strong nuclear force. It is a force which behaves as glue for keeping the center of an atom together. Two protons near enough are being glues tightly by the strong nuclear force, they would produce a pp particle.
As it happens, the pp particle is one of the easiest particles there could be to detect - just two protons. The study of pp particles enables scientists to acquire extensive understanding about the strong nuclear force However, this is critical because it allows us understand not only known laws that all matter must follow (from tiny atoms and quarks to stars) but also how a Universe can be born from nothing.
One other important factor is the "binding energy" which holds two protons together (keeping them from repelling) as a complete pp particle, and when it forms this binding releases energy in he form of gamma rays. C Colliding particles give up this energy, and it is similar to the flicker of light that happens if they are held together by a force as strong as nuclear (the strong nuclear force). After a little while, the pp particle will revert back to two protons. Strong nuclear force can hold it but only till a limit which means nothing is rigid as if u stretch your hand rubber band to certain extant and then releases, It comes in rest position. Understanding, such as the mechanisms behind making and breaking pp particles instructs scientists about matter on a smaller scale.
This is done in two basic ways particle physicist have of dealing with very small particles, such as the pp. For one thing, you are using theoretical models to start with. And by equations, I mean algebraic expressions that describe how particles interact and behave based on our current understanding of physics and what we see happening in the universe. They are like a simulation for scientists - they use these models to predict what happens with particles in different situations, kind of as if you were trying to guess which team will win depending on who is playing and how good their stats look.
A p + p collider is a microscope these days; so what can be done with the pp particle we have learned about? So a lot of small particles are created when they collide against each other including pp particle. Analogy is like a kind of mini-explosion happens and some particles are produced inside it! The study of these particles can therefore yield insights into other roles that the strong nuclear force performs and how it behaves at “low” energy scales, beneath those levels where more visible types of particle physics operate.
Also being studied to support chemotherapy is the pp particle, an especially important type of treatment. The problem with Cellectis CANCER 9 is called super-fast particles - because of their high penetration deep within tissues compared to other types radiation these can be used to treat cancerous malignant cells located on a greater depth without destroying healthy tissue surround them. As such, scientists are examining how the pp particle can be harnessed to treat disease and improve general well-being.
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