Cosmic neutrino background

From Wikipedia, the free encyclopedia
Jump to navigation Jump to search

Template:Short description Script error: No such module "sidebar". Script error: No such module "Unsubst". The cosmic neutrino background is a proposed background particle radiation composed of neutrinos. They are sometimes known as relic neutrinos or sometimes abbreviated CNB or CνScript error: No such module "Check for unknown parameters".B, where the symbol νScript error: No such module "Check for unknown parameters". is the Greek letter nu, standard particle physics symbol for a neutrino.

The CνScript error: No such module "Check for unknown parameters".B is a relic of the Big Bang; while the cosmic microwave background radiation (CMB) dates from when the universe was 379,000 years old, the CνScript error: No such module "Check for unknown parameters".B decoupled (separated) from matter when the universe was just one second old. It is estimated that today, the CνScript error: No such module "Check for unknown parameters".B has a temperature of roughly Script error: No such module "val"..

As neutrinos rarely interact with matter, these neutrinos still exist today. They have a very low energy, around 10−4 to 10−6 eV.[1]Template:Refn Even high energy neutrinos are notoriously difficult to detect, and the CνScript error: No such module "Check for unknown parameters".B has energies around 1010 times smaller, so the CνScript error: No such module "Check for unknown parameters".B may not be directly observed in detail for many years, if at all.[1]Template:Refn However, Big Bang cosmology makes many predictions about the CνScript error: No such module "Check for unknown parameters".B, and there is very strong indirect evidence that the CνScript error: No such module "Check for unknown parameters".B exists.[1]Template:Refn

Origin

The early universe consisted of a very hot dense plasma which was expanding and thus cooling. Particles in the plasma collided and reacted, maintaining an equilibrium according to the possible reactions. Around 1 s after the Big Bang, the equilibrium among electrons, positrons, and neutrinos was disrupted. Several annihilation reactions like e+e+νe+ν¯e stopped because expansion left the neutrinos too far apart on average to find each other.[2]Template:Rp The neutrinos are said to be decoupled. Rather than colliding and reacting, they kept going, a state known as free streaming. Since the universe was almost perfectly homogeneous plasma, this decoupling happened throughout the universe at the same time. These neutrinos have been traveling in an ever expanding universe for over 13 billion years. Although vast in number their characteristic temperature is very low.

Temperature estimation

While the temperature of the cosmic neutrino background (CνScript error: No such module "Check for unknown parameters".B) cannot be directly measured, it can be estimated from the measured temperature of the cosmic microwave background (CMB) and physics of the early universe. The neutrinos and the photons were once at thermal equilibrium. The neutrinos decoupled first but before the photons decoupled, electrons and positrons in the hot plasma annihilated, meaning they combined, producing more photons and raising the temperature. Conservation of entropy allows the heating of the photons by the annihilation event to be estimated.[3]Template:Rp

The entropy of each particle in an equilibrium mixture is proportional to its effective number of degrees of freedom, Template:Mvar:

sigiT3,

where and Template:Mvar is the plasma or photon temperature. The factor gi for the particle species engaged in the original equilibrium reaction:

+ 2 for each photon (or other massless bosons, if any),[4]
+ 7/4 for each electron, positron, or other fermion.[4]

The sum of all particle entropies, ΣigiT3 is conserved. Annihilation converts the entropy of photons, electrons, and positrons into entropy of photons alone: sγ+se+se+sγ=(2+74+742)=11/4 Consequently the photons will be hotter than the neutrinos by the cube root of this ratio:[3]Template:Rp

TγTν=(114)1/3

Since the cosmic photon background temperature at present has cooled to Tγ=2.725K,[5] it follows that the neutrino background temperature is currently

Tν1.95K.

The above discussion is technically valid for massless neutrinos, which are always relativistic. For neutrinos with a non-zero rest mass, at low temperature where the neutrinos become non-relativistic, a description in terms of a temperature is not appropriate. In other words, when the neutrinos' thermal energy 32kTν (Template:Mvar is the Boltzmann constant) falls below the rest mass energy mνc2; in a low-temperature case one should instead speak of the neutrinos' collective energy density, which remains both relevant and well-defined.Script error: No such module "Unsubst".

Indirect evidence

Relativistic neutrinos contribute to the radiation energy density of the universe Template:MvarR, typically parameterized in terms of the effective number of neutrino species Template:MvarνScript error: No such module "Check for unknown parameters".:

ρR=π215Tγ4(1+z)4[1+78Nν(411)4/3],

where Template:Mvar denotes the redshift. The first term in the square brackets is due to the CMB, the second comes from the CνScript error: No such module "Check for unknown parameters".B. The Standard Model with its three neutrino species predicts a value of Template:MvarνScript error: No such module "Check for unknown parameters".Script error: No such module "val".,[6] including a small correction caused by a non-thermal distortion of the spectra during e+e annihilation. The radiation density had a major impact on various physical processes in the early universe, leaving potentially detectable imprints on measurable quantities, thus allowing us to infer the value of Template:MvarνScript error: No such module "Check for unknown parameters". from observations.

Big Bang nucleosynthesis

Due to its effect on the expansion rate of the universe during Big Bang nucleosynthesis (BBN), the theoretical expectations for the primordial abundances of light elements depend on Template:Mvarν.Script error: No such module "Check for unknown parameters". Astrophysical measurements of the primordial Script error: No such module "Su".He and Script error: No such module "Su".D abundances lead to a value of Template:Mvarν Script error: No such module "Check for unknown parameters". = Script error: No such module "val". at 68% c.l.,[7] in very good agreement with the Standard Model expectation.

From the cosmic microwave background

Anisotropies and structure formation

The presence of the CνScript error: No such module "Check for unknown parameters".B affects the evolution of CMB anisotropies as well as the growth of matter perturbations in two ways: Due to its contribution to the radiation density of the universe (which determines for instance the time of matter–radiation equality), and due to the neutrinos' anisotropic stress which dampens the acoustic oscillations of the spectra. Additionally, free-streaming massive neutrinos suppress the growth of structure on small scales. The WMAP spacecraft's five-year data combined with type Ia supernova data and information about the baryon acoustic oscillation scale yielded Template:Mvarν Script error: No such module "Check for unknown parameters". = Script error: No such module "val". at 68% c.l.,[8] providing an independent confirmation of the BBN constraints. The Planck spacecraft collaboration has published the tightest bound to date on the effective number of neutrino species, at Template:Mvarν Script error: No such module "Check for unknown parameters". = Script error: No such module "val"..[9]

Phase changes

Big Bang cosmology makes many predictions about the CνScript error: No such module "Check for unknown parameters".B, and there is very strong indirect evidence that the cosmic neutrino background exists, both from Big Bang nucleosynthesis predictions of the helium abundance, and from anisotropies in the cosmic microwave background. One of these predictions is that neutrinos will have left a subtle imprint on the cosmic microwave background (CMB). It is well known that the CMB has irregularities. Some of the CMB fluctuations were roughly regularly spaced, because of the effect of baryon acoustic oscillation. In theory, the decoupled neutrinos should have had a very slight effect on the phase of the various CMB fluctuations.[1]Template:Refn

In 2015, it was reported that such shifts had been detected in the CMB. Moreover, the fluctuations corresponded to neutrinos of almost exactly the temperature predicted by Big Bang theory (1.96 ± 0.02 K compared to a prediction of 1.95 K), and exactly three types of neutrino, the same number of neutrino flavours currently predicted by the Standard Model.[1]Template:Refn

Prospects for the direct detection

Confirmation of the existence of these relic neutrinos may only be possible by directly detecting them using experiments on Earth. This will be difficult as the neutrinos which make up the CνScript error: No such module "Check for unknown parameters".B are non-relativistic, in addition to interacting only weakly with normal matter, and so any effect they have in a detector will be hard to identify. The neutrino interactions that are measured in current particle detectors are all with neutrinos newly created in the Sun, nuclear reactors, weapons, particle accelerators, cosmic ray collisions, and supernovas. Even among those, only the neutrinos with the highest kinetic energies are feasibly detectable. It is something of a "lose-lose" situation: The lower a neutrino's kinetic energy, the lower its probability of interacting with matter, and the even slighter, less noticeable, the matter's response will be even if some rare event were to occur.

One proposed method of direct detection of the CνScript error: No such module "Check for unknown parameters".B is to use the capture of cosmic relic neutrinos on tritium i.e. 3H, leading to an induced form of beta decay.[10]

The neutrinos of the CνScript error: No such module "Check for unknown parameters".B would lead to the production of electrons via the reaction

ν+3H3He+e,

while the main background comes from electrons produced via natural beta decay

3H3He+e+ν¯.

These electrons would be detected by the experimental apparatus in order to measure the size of the CνScript error: No such module "Check for unknown parameters".B. The latter source of electrons is far more numerous, however, their maximum energy is smaller than the average energy of the CνScript error: No such module "Check for unknown parameters".B-electrons by twice the average neutrino mass. Since this mass is tiny, of the order of a few electronvolts or less, such a detector must have an excellent energy resolution in order to separate the signal from the background. One such proposed experiment is called PTOLEMY, which will be made up of 100 g of tritium target.[11] The detector demonstrator (with about 0.2 g of tritium) should be ready by 2025.[12]

See also

Notes

Template:Notelist

References

<templatestyles src="Reflist/styles.css" />

  1. a b c d e Script error: No such module "Citation/CS1".
  2. Script error: No such module "citation/CS1".
  3. a b Script error: No such module "citation/CS1".
  4. a b Script error: No such module "citation/CS1".
  5. Script error: No such module "Citation/CS1".
  6. Script error: No such module "Citation/CS1".
  7. Script error: No such module "Citation/CS1".
  8. Script error: No such module "Citation/CS1".
  9. Script error: No such module "Citation/CS1".
  10. Script error: No such module "Citation/CS1".
  11. Script error: No such module "citation/CS1".
  12. Script error: No such module "Citation/CS1".

Script error: No such module "Check for unknown parameters".

Template:Cosmology topics