Synchrotron: Structure, Working Principle, & Applications

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A Synchrotron is a type of cyclic particle accelerator that descends from the cyclotron, and in which the particle beam is accelerated around a fixed closed loop.

  • Synchrotron is a modified version of a cyclotron, that was designed to cover the limitation of the cyclotron.
  • Cyclotron does not operate when charged particles reach relativistic speed and are unable to accelerate those particles any further.
  • Therefore, the synchrotron can accelerate the charged particles beyond the relativistic speed. 
  • The basic principles of a synchrotron design were proposed independently by Vladimir Veksler in 1944.
  • The first electron synchrotron was constructed by Edwin McMillan in 1945.
  • Sir Marcus Oliphant designed the first proton synchrotron and it was built in 1952.
  • And now this machine, which is a size of a football field is used to conduct various research.

Key Terms: Synchrotron, Cyclotron, Charged Particles, Magnetic Field, Accelerator, Synchrotron radiation, electrons, protons, electric field, Ion, Speed


What is Synchrotron? 

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A synchrotron is a cyclic particle accelerator in which a charged particle such as an electron or a proton, or a heavy-ion particle is accelerated to very high energies in the presence of an alternating electric field and a constant magnetic field.

  • The magnetic field bends or deflects the path of the charged particles.
  • The magnetic field must gradually increase in strength as the momentum of the particle increases, to maintain a constant trajectory within the cyclic accelerator.
  • The frequency of the varying electric field must be adjusted as necessary to be synchronous with the orbital frequency of the charged particles.
  • The Synchrotron that accelerates electrons is called an electron synchrotron and the one that accelerated a proton is called a proton synchrotron.
  • To produce synchrotron radiation, electron synchrotrons were used. In nuclear physics research, Heavy-ion synchrotrons are primarily used.
  • A special type of synchrotron, known as a storage ring, in which the kinetic energy of the particles is kept constant.
  • Synchrotron light sources are composed of different electron accelerators, including a storage ring where electromagnetic radiation is generated known as synchrotron radiation.
  • It is a source of brilliant light that scientists can use to gather information about the structural and chemical properties of materials at the molecular level.
  • The basic difference between a synchrotron and a cyclotron is that the synchrotron mode is used in most of the large-scale projects such as the large hadron collider (LHC) at CERN, but the cyclotron is used mostly in small-scale projects.

Synchrotron

Cyclotron


Structure of Synchrotron 

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Some of the principles structures of a synchrotron are mentioned below:

Storage Ring - It is a polygon tube made of straight sections angles together with bending magnets. It is where the circling of electrons takes place, close to the speed of light, by providing a magnetic field. The tube is maintained at a very low temperature around 10-9 bar.

Booster Synchrotron - It is a pre-accelerator around 300 meters long. Here the acceleration of electrons takes place before their injection into the storage ring.

Electronic Gun - It is a device similar to the old television or computer screen. Here the electrons are produced for injection into the booster synchrotron.

Beamlines - The storage ring is surrounded by the beamlines, where the X-ray beams, emitted by the electrons are directed. The beamlines have been designed in a way that they can be used for specific types of research.

Also Read:


Working of Synchrotron

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  • Synchrotron works on the principle that, when a moving electron changes its direction, then it emits energy. If put simply, when charged particles are accelerated, they give off electromagnetic radiation. 
  • So, the work of a synchrotron is simply to accelerate electrons to extremely high energy and then make them change direction periodically.
  • The work starts with the generation of electron particles in an electron gun.
  • Then these particles are ejected to the booster synchrotron, where they get accelerated and start to move in circles in the storage ring.
  • Now the bending magnets in the storage ring are used to steer the electrons around the ring.
  • As the electrons go through each magnet, it loses energy in the form of light.
  • This light can be then channeled out of the storage ring wall and into the experimental stations called beamlines.

Read More: Magnetic properties of materials


Application of Synchrotron

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  • Synchrotron radiations are electromagnetic waves that are used by scientists to study subatomic particles in high-energy particle physics research. 
  • Electron synchrotrons are used to produce synchrotron radiation.
  • Heavy-ion synchrotrons are used in nuclear physics research.
  • Synchrotron light helps to carry out many types of measurement.
  • Synchrotrons are useful in semiconductor material analysis and structural studies
  • Synchrotrons are helpful in particle therapy to treat some forms of cancer
  • Synchrotron has applications in many branches of science such as material engineering, pharmacology, biology, geology, chemistry, physics, nanotechnology, medicine, etc.

Things to Remember

  • A synchrotron is a particle accelerator that is used to accelerate the particles and change their direction to provide X-rays.
  • The synchrotron is a modification of a cyclotron as a cyclotron cannot accelerate the particles after they reach a relative speed.
  • The structure of a synchrotron includes a storage ring, booster synchrotron, electronic gun, beamlines, and bending magnets.
  • The synchrotron light is used to gather information about the structural and chemical properties of materials at the molecular level and many other types of research.

Also Read:


Sample Questions

Ques. What is Synchrotron radiation? (1 Marks)

Ans. The electromagnetic radiation that is emitted when the charged particles are accelerated is called synchrotron radiation. 

Ques. Where is synchrotron used? (4 Marks)

Ans. Synchrotron has various applications in various fields:

  • Analyzing chemicals to determine their composition.
  • Medical Imaging
  • Drug discovery and research
  • Observing how living cells react to drugs
  • Geographical material analysis
  • X-ray lithography
  • Particle therapy for treating cancer cells

Ques. How synchrotron is different from a cyclotron? (2 Marks)

Ans. Cyclotron and synchrotron both are particle accelerators but the difference between them is that cyclotron is unable to accelerate particles when they reach a relativistic speed, whereas synchrotron can accelerate particles beyond relativistic speed.

Ques. What is a principal structure of a synchrotron? (1 Marks)

Ans. The structure of a synchrotron consists of an electron gun, booster ring, storage ring, linear accelerator, beamline, and end station.

Ques. How are the particles accelerated in the synchrotron? (2 Marks)

Ans. The linear acceleration is used for the preliminary acceleration of particles. Then these accelerated particles are ejected to the booster ring, where the particles accelerate and move in circles in the presence of the magnetic field.

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