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CMS Ecal Laser Monitoring System
CMS Ecal Laser Monitoring System

... their kinematics (masses, decay angles) cannot be fully measured. Recursive Rest-frame Reconstruction is a new technique for systematically determining a basis of kinematic variables in these events. ...
Slide 1
Slide 1

CERN_detecror_4
CERN_detecror_4

Notes/All Physics IB/Fundimental Particles
Notes/All Physics IB/Fundimental Particles

... What is everything made of? Humans have asked this question for thousands of years and are still actively searching for the answer today. Ernest Rutherford began a new chapter in this pursuit over a century ago when he fired alpha particles at gold foil, uncovering the atomic nucleus. The Large Hadr ...
The secret life of quarks
The secret life of quarks

Atoms1 - Cbsephysicstutorials
Atoms1 - Cbsephysicstutorials

Simulation of motion and radiative decay and magnetic fields
Simulation of motion and radiative decay and magnetic fields

Higgs boson and EW symmetry breaking
Higgs boson and EW symmetry breaking

... What will the different accelerators provide us? Higgs boson and EW symmetry breaking Past experiments at the CERN LEP collider, the SLAC SLC and the Tevatron have constrained the SM Higgs boson to have a ...
Particles and Fields
Particles and Fields

Particles and Fields
Particles and Fields

arXiv:1501.06883v1 [nucl
arXiv:1501.06883v1 [nucl

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646_1.pdf

- Lorentz Center
- Lorentz Center

Particle Physics what do we know?
Particle Physics what do we know?

The Universe, Space, and Stars
The Universe, Space, and Stars

... supernova explosion contains so much energy that atoms fuse together to produce heavier elements such as gold, silver, and uranium. A supernova can shine as brightly as an entire galaxy for a short time. All elements with an ...
nuclear physics - Thierry Karsenti
nuclear physics - Thierry Karsenti

... (a)  -radioactivity is the process in which an electron is emitted from an unstable atom whose atomic number Z remains unchanged (b)  -radioactivity is the process in which the daughter nucleus has atomic number 1 unit more than that of the parent nucleus (c)  -radioactivity is the process in whi ...
Experimental Apparatus
Experimental Apparatus

... 2.1.2 The Main Injector and Antiproton Source Protons are extracted at 8 GeV from the booster into the main injector, which accelerates them to 150 GeV, ready for injection into the Tevatron. Antiprotons, p̄s, are produced by bombarding a Ni target with 120 GeV protons from the main injector, every ...
80, 030202(R) (2009)
80, 030202(R) (2009)

... can be prepared at ultrahigh fidelity. How can one scale this process to multiple sites and make the “switchyard” of multiplexed beams to perform the required complex operations? The scalability of this system can be achieved using scalable microelectromechanical systems 共MEMS兲 technology 关11兴. Usin ...
physics/0610030 PDF
physics/0610030 PDF

The Family Problem: Extension of Standard Model with a
The Family Problem: Extension of Standard Model with a

... similarity principle – our struggle of eighty years to describe the point-like particles such as the electron.  The “minimum Higgs hypothesis” is the other mysterious conjecture – because we are looking for Higgs particles for forty years, but so far none has been found.  So, by “induction”, we tr ...
all chapters are collected here in one set
all chapters are collected here in one set

... Since long ago people were trying to understand the Nature and its fundamental building blocks. We know several ‘theories’ which came from the ancient philosophers. More than two thousand years ago Empedocles (490-430 B.C.) suggested that all matter is made up of four elements: water, earth, air and ...
here
here

Modified Einsteinian Dynamics(MOED): Discovery of a
Modified Einsteinian Dynamics(MOED): Discovery of a

The Nobel Prize in Physics 1901-2000
The Nobel Prize in Physics 1901-2000

< 1 ... 9 10 11 12 13 14 15 16 17 ... 69 >

Antimatter

In particle physics, antimatter is material composed of antiparticles, which have the same mass as particles of ordinary matter but opposite charges, as well as other particle properties such as lepton and baryon numbers and quantum spin. Collisions between particles and antiparticles lead to the annihilation of both, giving rise to variable proportions of intense photons (gamma rays), neutrinos, and less massive particle–antiparticle pairs. The total consequence of annihilation is a release of energy available for work, proportional to the total matter and antimatter mass, in accord with the mass–energy equivalence equation, E = mc2.Antiparticles bind with each other to form antimatter, just as ordinary particles bind to form normal matter. For example, a positron (the antiparticle of the electron) and an antiproton (the antiparticle of the proton) can form an antihydrogen atom. Physical principles indicate that complex antimatter atomic nuclei are possible, as well as anti-atoms corresponding to the known chemical elements. Studies of cosmic rays have identified both positrons and antiprotons, presumably produced by collisions between particles of ordinary matter. Satellite-based searches of cosmic rays for antideuteron and antihelium particles have yielded nothing. There is considerable speculation as to why the observable universe is composed almost entirely of ordinary matter, as opposed to a more even mixture of matter and antimatter. This asymmetry of matter and antimatter in the visible universe is one of the great unsolved problems in physics. The process by which this inequality between particles and antiparticles developed is called baryogenesis.Antimatter in the form of anti-atoms is one of the most difficult materials to produce. Antimatter in the form of individual anti-particles, however, is commonly produced by particle accelerators and in some types of radioactive decay. The nuclei of antihelium (both helium-3 and helium-4) have been artificially produced with difficulty. These are the most complex anti-nuclei so far observed.
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