SUPPORT THE WORK

GetWiki

infrared divergence

ARTICLE SUBJECTS
aesthetics  →
being  →
complexity  →
database  →
enterprise  →
ethics  →
fiction  →
history  →
internet  →
knowledge  →
language  →
licensing  →
linux  →
logic  →
method  →
news  →
perception  →
philosophy  →
policy  →
purpose  →
religion  →
science  →
sociology  →
software  →
truth  →
unix  →
wiki  →
ARTICLE TYPES
essay  →
feed  →
help  →
system  →
wiki  →
ARTICLE ORIGINS
critical  →
discussion  →
forked  →
imported  →
original  →
infrared divergence
[ temporary import ]
please note:
- the content below is remote from Wikipedia
- it has been imported raw for GetWiki
{{Short description|Type of diverging integral in physics}}{{Use American English|date=January 2019}}In physics, an infrared divergence (also IR divergence or infrared catastrophe) is a situation in which an integral, for example a Feynman diagram, diverges because of contributions of objects with very small energy approaching zero, or equivalently, because of physical phenomena at very long distances.

Overview

The infrared divergence only appears in theories with massless particles (such as photons). They represent a legitimate effect that a complete theory often implies. In fact, in the case of photons, the energy is given by E=hnu, where nu is the frequency associated to the particle and as it goes to zero, like in the case of soft photons, there will be an infinite number of particles in order to have a finite amount of energy. One way to deal with it is to impose an infrared cutoff and take the limit as the cutoff approaches zero and/or refine the question. Another way is to assign the massless particle a fictitious mass, and then take the limit as the fictitious mass vanishes.The divergence is usually in terms of particle number and not empirically troubling, in that all measurable quantities remain finite. (Unlike in the case of the UV catastrophe where the energies involved diverge.)

Bremsstrahlung example

When an electric charge is accelerated (or decelerated) it emits Bremsstrahlung radiation. Semiclassical electromagnetic theory, or the full quantum electrodynamic analysis, shows that an infinite number of soft photons are created. But only a finite number are detectable, the remainder, due to their low energy, falling below any finite energy detection threshold, which must necessarily exist.BOOK, Kaku, Michio, Quantum Field Theory: A Modern Introduction, 1993, New York, Oxford University Press, 0-19-507652-4, , pages 177-184 and appendix A6 However even though most of the photons are not detectable they can’t be ignored in the theory; quantum electrodynamic calculations show that the transition amplitude between any states with a finite number of photons vanishes. Finite transition amplitudes are obtained only by summing over states with an infinite number of soft photons.BOOK
, Claude Itzykson, Jean-Bernard Zuber
, 1980
, Quantum Field Theory
,archive.org/details/quantumfieldtheo0000itzy/page/172
, registration
, McGraw-Hill
, 0-07-032071-3
, 172/3
,
The zero-energy photons become important in analyzing the Bremsstrahlung radiation in the coaccelerated frame in which the charge experiences a thermal bath due to the Unruh effect. In this case, the static charge will only interact with these zero-energy (Rindler) photons in a sense similar to virtual photons in the coulomb interaction.JOURNAL, Higuchi, A., Matsas, G. E. A., Sudarsky, D., 1992-05-15, Bremssstrahlung and zero-energy Rindler photons,link.aps.org/doi/10.1103/PhysRevD.45.R3308, Physical Review D, 45, 10, R3308–R3311, 10.1103/PhysRevD.45.R3308, 10014292, 1992PhRvD..45.3308H, JOURNAL, Higuchi, A., Matsas, G. E. A., Sudarsky, D., 1992-10-15, Bremsstrahlung and Fulling-Davies-Unruh thermal bath,link.aps.org/doi/10.1103/PhysRevD.46.3450, Physical Review D, 46, 8, 3450–3457, 10.1103/PhysRevD.46.3450, 10015290, 1992PhRvD..46.3450H,

See also

References

{{reflist}}{{quantum-stub}}

- content above as imported from Wikipedia
- "infrared divergence" does not exist on GetWiki (yet)
- time: 4:47am EDT - Wed, May 22 2024
[ this remote article is provided by Wikipedia ]
LATEST EDITS [ see all ]
GETWIKI 21 MAY 2024
GETWIKI 09 JUL 2019
Eastern Philosophy
History of Philosophy
GETWIKI 09 MAY 2016
GETWIKI 18 OCT 2015
M.R.M. Parrott
Biographies
GETWIKI 20 AUG 2014
CONNECT