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In particle physics, the electroweak interaction or electroweak force is the unified description of two of the four known fundamental interactions of nature:
electromagnetism In physics, electromagnetism is an interaction that occurs between particles with electric charge. It is the second-strongest of the four fundamental interactions, after the strong force, and it is the dominant force in the interactions of ...
and the
weak interaction In nuclear physics and particle physics, the weak interaction, which is also often called the weak force or weak nuclear force, is one of the four known fundamental interactions, with the others being electromagnetism, the strong interaction ...
. Although these two forces appear very different at everyday low energies, the theory models them as two different aspects of the same force. Above the unification energy, on the order of 246 
GeV GEV may refer to: * ''G.E.V.'' (board game), a tabletop game by Steve Jackson Games * Ashe County Airport, in North Carolina, United States * Gällivare Lapland Airport, in Sweden * Generalized extreme value distribution * Gev Sella, Israeli-Sou ...
,The particular number 246 GeV is taken to be the
vacuum expectation value In quantum field theory the vacuum expectation value (also called condensate or simply VEV) of an operator is its average or expectation value in the vacuum. The vacuum expectation value of an operator O is usually denoted by \langle O\rangle ...
v = (G_\text \sqrt)^ of the
Higgs field The Higgs boson, sometimes called the Higgs particle, is an elementary particle in the Standard Model of particle physics produced by the quantum excitation of the Higgs field, one of the fields in particle physics theory. In the St ...
(where G_\text is the Fermi coupling constant).
they would merge into a single force. Thus, if the temperature is high enough – approximately 1015  K – then the electromagnetic force and weak force merge into a combined electroweak force. During the
quark epoch In physical cosmology, the Quark epoch was the period in the evolution of the early universe when the fundamental interactions of gravitation, electromagnetism, the strong interaction and the weak interaction had taken their present forms, but th ...
(shortly after the
Big Bang The Big Bang event is a physical theory that describes how the universe expanded from an initial state of high density and temperature. Various cosmological models of the Big Bang explain the evolution of the observable universe from the ...
), the electroweak force split into the electromagnetic and
weak force Weak may refer to: Songs * "Weak" (AJR song), 2016 * "Weak" (Melanie C song), 2011 * "Weak" (SWV song), 1993 * "Weak" (Skunk Anansie song), 1995 * "Weak", a song by Seether from '' Seether: 2002-2013'' Television episodes * "Weak" (''Fear t ...
. It is thought that the required temperature of 1015 K has not been seen widely throughout the universe since before the quark epoch, and currently the highest man-made temperature in thermal equilibrium is around 5.5x1012 K (from the
Large Hadron Collider The Large Hadron Collider (LHC) is the world's largest and highest-energy particle collider. It was built by the European Organization for Nuclear Research (CERN) between 1998 and 2008 in collaboration with over 10,000 scientists and hundre ...
). Sheldon Glashow,
Abdus Salam Mohammad Abdus Salam Salam adopted the forename "Mohammad" in 1974 in response to the anti-Ahmadiyya decrees in Pakistan, similarly he grew his beard. (; ; 29 January 192621 November 1996) was a Punjabis, Punjabi Pakistani theoretical physici ...
, and
Steven Weinberg Steven Weinberg (; May 3, 1933 – July 23, 2021) was an American theoretical physicist and Nobel laureate in physics for his contributions with Abdus Salam and Sheldon Glashow to the unification of the weak force and electromagnetic interact ...
were awarded the 1979
Nobel Prize in Physics ) , image = Nobel Prize.png , alt = A golden medallion with an embossed image of a bearded man facing left in profile. To the left of the man is the text "ALFR•" then "NOBEL", and on the right, the text (smaller) "NAT•" then " ...
for their contributions to the unification of the weak and electromagnetic interaction between elementary particles, known as the Weinberg–Salam theory. The existence of the electroweak interactions was experimentally established in two stages, the first being the discovery of
neutral current Weak neutral current interactions are one of the ways in which subatomic particles can interact by means of the weak force. These interactions are mediated by the Z boson. The discovery of weak neutral currents was a significant step towar ...
s in neutrino scattering by the
Gargamelle Gargamelle was a heavy liquid bubble chamber detector in operation at CERN between 1970 and 1979. It was designed to detect neutrinos and antineutrinos, which were produced with a beam from the Proton Synchrotron (PS) between 1970 and 1976, b ...
collaboration in 1973, and the second in 1983 by the UA1 and the UA2 collaborations that involved the discovery of the W and Z
gauge boson In particle physics, a gauge boson is a bosonic elementary particle that acts as the force carrier for elementary fermions. Elementary particles, whose interactions are described by a gauge theory, interact with each other by the exchange of gauge ...
s in proton–antiproton collisions at the converted
Super Proton Synchrotron The Super Proton Synchrotron (SPS) is a particle accelerator of the synchrotron type at CERN. It is housed in a circular tunnel, in circumference, straddling the border of France and Switzerland near Geneva, Switzerland. History The SPS was de ...
. In 1999,
Gerardus 't Hooft Gerardus (Gerard) 't Hooft (; born July 5, 1946) is a Dutch theoretical physicist and professor at Utrecht University, the Netherlands. He shared the 1999 Nobel Prize in Physics with his thesis advisor Martinus J. G. Veltman "for elucidating th ...
and
Martinus Veltman Martinus Justinus Godefriedus "Tini" Veltman (; 27 June 1931 – 4 January 2021) was a Dutch theoretical physicist. He shared the 1999 Nobel Prize in physics with his former PhD student Gerardus 't Hooft for their work on particle theory. Biog ...
were awarded the Nobel prize for showing that the electroweak theory is
renormalizable Renormalization is a collection of techniques in quantum field theory, the statistical mechanics of fields, and the theory of self-similar geometric structures, that are used to treat infinities arising in calculated quantities by altering va ...
.


History

After the
Wu experiment The Wu experiment was a particle and nuclear physics experiment conducted in 1956 by the Chinese American physicist Chien-Shiung Wu in collaboration with the Low Temperature Group of the US National Bureau of Standards. The experiment's purpose ...
in 1956 discovered
parity violation In physics, a parity transformation (also called parity inversion) is the flip in the sign of ''one'' spatial coordinate. In three dimensions, it can also refer to the simultaneous flip in the sign of all three spatial coordinates (a point refle ...
in the
weak interaction In nuclear physics and particle physics, the weak interaction, which is also often called the weak force or weak nuclear force, is one of the four known fundamental interactions, with the others being electromagnetism, the strong interaction ...
, a search began for a way to relate the weak and
electromagnetic interaction In physics, electromagnetism is an interaction that occurs between particles with electric charge. It is the second-strongest of the four fundamental interactions, after the strong force, and it is the dominant force in the interactions of a ...
s. Extending his
doctoral advisor A doctoral advisor (also dissertation director, dissertation advisor; or doctoral supervisor) is a member of a university faculty whose role is to guide graduate students who are candidates for a doctorate, helping them select coursework, as w ...
Julian Schwinger's work, Sheldon Glashow first experimented with introducing two different symmetries, one
chiral Chirality is a property of asymmetry important in several branches of science. The word ''chirality'' is derived from the Greek (''kheir''), "hand", a familiar chiral object. An object or a system is ''chiral'' if it is distinguishable from i ...
and one achiral, and combined them such that their overall symmetry was unbroken. This did not yield a
renormalizable Renormalization is a collection of techniques in quantum field theory, the statistical mechanics of fields, and the theory of self-similar geometric structures, that are used to treat infinities arising in calculated quantities by altering va ...
theory, and its gauge symmetry had to be broken by hand as no spontaneous mechanism was known, but it predicted a new particle, the
Z boson In particle physics, the W and Z bosons are vector bosons that are together known as the weak bosons or more generally as the intermediate vector bosons. These elementary particles mediate the weak interaction; the respective symbols are , , an ...
. This received little notice, as it matched no experimental finding. In 1964, Salam and
Ward Ward may refer to: Division or unit * Hospital ward, a hospital division, floor, or room set aside for a particular class or group of patients, for example the psychiatric ward * Prison ward, a division of a penal institution such as a pris ...
had the same idea, but predicted a massless photon and three massive
gauge boson In particle physics, a gauge boson is a bosonic elementary particle that acts as the force carrier for elementary fermions. Elementary particles, whose interactions are described by a gauge theory, interact with each other by the exchange of gauge ...
s with a manually broken symmetry. Later around 1967, while investigating
spontaneous symmetry breaking Spontaneous symmetry breaking is a spontaneous process of symmetry breaking, by which a physical system in a symmetric state spontaneously ends up in an asymmetric state. In particular, it can describe systems where the equations of motion or t ...
, Weinberg found a set of symmetries predicting a massless, neutral
gauge boson In particle physics, a gauge boson is a bosonic elementary particle that acts as the force carrier for elementary fermions. Elementary particles, whose interactions are described by a gauge theory, interact with each other by the exchange of gauge ...
. Initially rejecting such a particle as useless, he later realized his symmetries produced the electroweak force, and he proceeded to predict rough masses for the W and Z bosons. Significantly, he suggested this new theory was renormalizable. In 1971,
Gerard 't Hooft Gerardus (Gerard) 't Hooft (; born July 5, 1946) is a Dutch theoretical physicist and professor at Utrecht University, the Netherlands. He shared the 1999 Nobel Prize in Physics with his thesis advisor Martinus J. G. Veltman "for elucidating th ...
proved that spontaneously broken gauge symmetries are renormalizable even with massive gauge bosons.


Formulation

Mathematically, electromagnetism is unified with the weak interactions as a Yang–Mills field with an SU(2) × U(1)
gauge group In physics, a gauge theory is a type of field theory in which the Lagrangian (and hence the dynamics of the system itself) does not change (is invariant) under local transformations according to certain smooth families of operations (Lie groups ...
, which describes the formal operations that can be applied to the electroweak gauge fields without changing the dynamics of the system. These fields are the weak isospin fields , , and , and the weak hypercharge field . This invariance is known as electroweak symmetry. The generators of SU(2) and U(1) are given the name
weak isospin In particle physics, weak isospin is a quantum number relating to the weak interaction, and parallels the idea of isospin under the strong interaction. Weak isospin is usually given the symbol or , with the third component written as or . It can ...
(labeled ) and
weak hypercharge In the Standard Model of electroweak interactions of particle physics, the weak hypercharge is a quantum number relating the electric charge and the third component of weak isospin. It is frequently denoted Y_\mathsf and corresponds to the gauge ...
(labeled ) respectively. These then give rise to the gauge bosons which mediate the electroweak interactions – the three bosons of weak isospin (, , and ), and the boson of weak hypercharge, respectively, all of which are "initially" massless. These are not physical fields yet, before
spontaneous symmetry breaking Spontaneous symmetry breaking is a spontaneous process of symmetry breaking, by which a physical system in a symmetric state spontaneously ends up in an asymmetric state. In particular, it can describe systems where the equations of motion or t ...
and the associated
Higgs mechanism In the Standard Model of particle physics, the Higgs mechanism is essential to explain the generation mechanism of the property " mass" for gauge bosons. Without the Higgs mechanism, all bosons (one of the two classes of particles, the other b ...
. In the Standard Model, the and bosons, and the photon, are produced through the
spontaneous symmetry breaking Spontaneous symmetry breaking is a spontaneous process of symmetry breaking, by which a physical system in a symmetric state spontaneously ends up in an asymmetric state. In particular, it can describe systems where the equations of motion or t ...
of the electroweak symmetry SU(2) × U(1) to U(1), effected by the
Higgs mechanism In the Standard Model of particle physics, the Higgs mechanism is essential to explain the generation mechanism of the property " mass" for gauge bosons. Without the Higgs mechanism, all bosons (one of the two classes of particles, the other b ...
(see also Higgs boson), an elaborate quantum field theoretic phenomenon that "spontaneously" alters the realization of the symmetry and rearranges degrees of freedom. The electric charge arises as the particular linear combination (nontrivial) of (weak hypercharge) and the component of weak isospin ~ \left(\, Q = T_3 + \tfrac\,Y_\mathrm\,\right) ~ that does ''not'' couple to the Higgs boson. That is to say: The Higgs and the electromagnetic field have no effect on each other, at the level of the fundamental forces ("tree level"), while any ''other'' combination of the hypercharge and the weak isospin must interact with the Higgs. This causes an apparent separation between the weak force, which interacts with the Higgs, and electromagnetism, which does not. Mathematically, the electric charge is a specific combination of the hypercharge and outlined in the figure. (the symmetry group of electromagnetism only) is defined to be the group generated by this special linear combination, and the symmetry described by the group is unbroken, since it does not ''directly'' interact with the Higgs. The above spontaneous symmetry breaking makes the and bosons coalesce into two different physical bosons with different masses – the boson, and the photon (), : \begin \gamma \\ Z^0 \end = \begin \cos \theta_\text & \sin \theta_\text \\ -\sin \theta_\text & \cos \theta_\text \end \begin B \\ W_3 \end , where is the '' weak mixing angle''. The axes representing the particles have essentially just been rotated, in the (, ) plane, by the angle . This also introduces a mismatch between the mass of the and the mass of the particles (denoted as and , respectively), :m_\text = \frac ~. The and bosons, in turn, combine to produce the charged massive bosons : :W^ = \frac\,\bigl(\,W_1 \mp i W_2\,\bigr) ~.


Lagrangian


Before electroweak symmetry breaking

The Lagrangian for the electroweak interactions is divided into four parts before electroweak symmetry breaking becomes manifest, :\mathcal_ = \mathcal_g + \mathcal_f + \mathcal_h + \mathcal_y~. The \mathcal_g term describes the interaction between the three vector bosons and the vector boson, :\mathcal_g = -\tfrac W_^W_^a - \tfrac B^B_, where W^ (a=1,2,3) and B^ are the field strength tensors for the weak isospin and weak hypercharge gauge fields. \mathcal_f is the kinetic term for the Standard Model fermions. The interaction of the gauge bosons and the fermions are through the
gauge covariant derivative The gauge covariant derivative is a variation of the covariant derivative used in general relativity, quantum field theory and fluid dynamics. If a theory has gauge transformations, it means that some physical properties of certain equations are ...
, :\mathcal_f = \overline_j iD\!\!\!\!/\; Q_j+ \overline_j iD\!\!\!\!/\; u_j+ \overline_j iD\!\!\!\!/\; d_j + \overline_j iD\!\!\!\!/\; L_j + \overline_j iD\!\!\!\!/\; e_j , where the subscript sums over the three generations of fermions; , , and are the left-handed doublet, right-handed singlet up, and right handed singlet down quark fields; and and are the left-handed doublet and right-handed singlet electron fields. The Feynman slash D\!\!\!\!/ means the contraction of the 4-gradient with the
Dirac matrices In mathematical physics, the gamma matrices, \left\ , also called the Dirac matrices, are a set of conventional matrices with specific anticommutation relations that ensure they generate a matrix representation of the Clifford algebra Cl1,3(\mat ...
, defined as :D\!\!\!\!/ \equiv \gamma^\mu D_\mu and the covariant derivative (excluding the gluon gauge field for the
strong interaction The strong interaction or strong force is a fundamental interaction that confines quarks into proton, neutron, and other hadron particles. The strong interaction also binds neutrons and protons to create atomic nuclei, where it is called the ...
) is defined as : D_\mu \equiv \partial_\mu - i \frac Y \, B_\mu - i \frac T_j \, W_\mu^j Here Y is the weak hypercharge and the T_j are the components of the weak isospin. The \mathcal_h term describes the
Higgs field The Higgs boson, sometimes called the Higgs particle, is an elementary particle in the Standard Model of particle physics produced by the quantum excitation of the Higgs field, one of the fields in particle physics theory. In the St ...
h and its interactions with itself and the gauge bosons, :\mathcal_h = , D_\mu h, ^2 - \lambda \left(, h, ^2 - \frac\right)^2, where v is the vacuum expectation value. The \mathcal_y term describes the
Yukawa interaction In particle physics, Yukawa's interaction or Yukawa coupling, named after Hideki Yukawa, is an interaction between particles according to the Yukawa potential. Specifically, it is a scalar field (or pseudoscalar field) and a Dirac field of the t ...
with the fermions, :\mathcal_y = - y_ \epsilon^ \,h_b^\dagger\, \overline_ u_j^c - y_\, h\, \overline_i d^c_j - y_ \,h\, \overline_i e^c_j + h.c. ~, and generates their masses, manifest when the Higgs field acquires a nonzero vacuum expectation value, discussed next. The y_^ are matrices of Yukawa couplings.


After electroweak symmetry breaking

The Lagrangian reorganizes itself as the Higgs boson acquires a non-vanishing vacuum expectation value dictated by the potential of the previous section. As a result of this rewriting, the symmetry breaking becomes manifest. In the history of the universe, this is believed to have happened shortly after the hot big bang, when the universe was at a temperature 159.5±1.5 
GeV GEV may refer to: * ''G.E.V.'' (board game), a tabletop game by Steve Jackson Games * Ashe County Airport, in North Carolina, United States * Gällivare Lapland Airport, in Sweden * Generalized extreme value distribution * Gev Sella, Israeli-Sou ...
(assuming the Standard Model of particle physics). Due to its complexity, this Lagrangian is best described by breaking it up into several parts as follows. :\mathcal_ = \mathcal_\text + \mathcal_\text + \mathcal_\text + \mathcal_\text + \mathcal_ + \mathcal_ + \mathcal_ + \mathcal_\text. The kinetic term \mathcal_K contains all the quadratic terms of the Lagrangian, which include the dynamic terms (the partial derivatives) and the mass terms (conspicuously absent from the Lagrangian before symmetry breaking) : \begin \mathcal_\text = \sum_f \overline(i\partial\!\!\!/\!\;-m_f)f-\frac14A_A^-\frac12W^+_W^+m_W^2W^+_\mu W^ \\ \qquad -\frac14Z_Z^+\frac12m_Z^2Z_\mu Z^\mu+\frac12(\partial^\mu H)(\partial_\mu H)-\frac12m_H^2H^2 ~, \end where the sum runs over all the fermions of the theory (quarks and leptons), and the fields A_, Z_, W^-_, and W^+_ \equiv (W^-_)^\dagger are given as :X^_=\partial_\mu X^_\nu - \partial_\nu X^_\mu + g f^X^_X^_ ~, with 'X' to be replaced by the relevant field (A, Z, W^\pm), and by the structure constants of the appropriate gauge group. The neutral current \mathcal_\text and charged current \mathcal_\text components of the Lagrangian contain the interactions between the fermions and gauge bosons, :\mathcal_\text = e \, J_\mu^\text \, A^\mu + \frac\,(\,J_\mu^3 - \sin^2\theta_W \, J_\mu^\text \,) \, Z^\mu ~, where ~e = g\,\sin \theta_\text = g'\,\cos \theta_\text ~. The electromagnetic current \; J_\mu^ \; is :J_\mu^\text = \sum_f \, q_f \,\overline\,\gamma_\mu\,f~, where q_f^ is the fermions' electric charges. The neutral weak current \;J_\mu^3 \; is :J_\mu^3 = \sum_f\,I^3_f\,\overline\,\gamma_\mu\,\frac \, f ~, where I_f^3 is the fermions' weak isospin. The charged current part of the Lagrangian is given by :\mathcal_\text = -\frac\,\left ,\overline_i \,\gamma^\mu\,\frac\;M^_\,d_j + \overline_i \,\gamma^\mu\;\frac\;e_i\,\right,W_\mu^ + \text ~, where \,\nu\, is the right-handed singlet neutrino field, and the CKM matrix \,M_^\text\, determines the mixing between mass and weak eigenstates of the quarks. \mathcal_\text contains the Higgs three-point and four-point self interaction terms, :\mathcal_\text = -\frac\;H^3 - \frac\;H^4 ~. \mathcal_ contains the Higgs interactions with gauge vector bosons, :\mathcal_\text =\left(\,g\,m_\text + \frac\;H^2\,\right)\left(\,W^_\mu\,W^ + \frac\;Z_\mu\,Z^\mu\,\right)~. \mathcal_ contains the gauge three-point self interactions, :\mathcal_ = -i\,g\,\left[\; \left(\, W_^\,W^ - W^\,W^_ \,\right)\left(\, A^\nu\,\sin \theta_\text - Z^\nu \, \cos\theta_\text\,\right) + W^_\nu\, W^_\mu \,\left(\,A^\,\sin \theta_\text - Z^\,\cos \theta_\text \,\right) \;\right] ~. \,\mathcal_\, contains the gauge four-point self interactions, : \begin \mathcal_ = -\frac\,\Biggl\ ~. \end \,\mathcal_\text\, contains the Yukawa interactions between the fermions and the Higgs field, :\mathcal_\text = -\sum_f\, \frac\;\overline\,f\,H~.


See also

*
Electroweak star An electroweak star is a theoretical type of exotic star, whereby the gravitational collapse of the star is prevented by radiation pressure resulting from electroweak burning, that is, the energy released by conversion of quarks to leptons throug ...
* Fundamental forces * History of quantum field theory *
Standard Model (mathematical formulation) This article describes the mathematics of the Standard Model of particle physics, a gauge quantum field theory containing the internal symmetries of the unitary product group . The theory is commonly viewed as describing the fundamental set ...
*
Unitarity gauge In theoretical physics, the unitarity gauge or unitary gauge is a particular choice of a gauge fixing in a gauge theory with a spontaneous symmetry breaking. In this gauge, the scalar fields responsible for the Higgs mechanism are transformed in ...
*
Weinberg angle The weak mixing angle or Weinberg angle is a parameter in the Weinberg– Salam theory of the electroweak interaction, part of the Standard Model of particle physics, and is usually denoted as . It is the angle by which spontaneous symmetry bre ...
*
Yang–Mills theory In mathematical physics, Yang–Mills theory is a gauge theory based on a special unitary group SU(''N''), or more generally any compact, reductive Lie algebra. Yang–Mills theory seeks to describe the behavior of elementary particles using t ...


Notes


References


Further reading


General readers

* Conveys much of the Standard Model with no formal mathematics. Very thorough on the weak interaction.


Texts

* * *


Articles

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