Electromagnetism is the physics of the electromagnetic field. This is a field, encompassing all of
space, composed of mutually dependent time varying electric and magnetic fields. The
term ”electromagnetism” comes from the fact that the electric and magnetic fields are
closely intertwined, and, under most circumstances, it is impossible to consider the two
separately.
Overview
The electric field can be produced by stationary Electric Charges, and gives rise to the electric
force described by Coulomb’s law, which causes static electricity and drives the flow of electric
charge in Electrical Conductors. The magnetic field can be produced by the motion of electric
charges, such as an electric current flowing along a wire, and gives rise to the magnetic force one
associates with magnets. A changing magnetic field gives rise to an electric field; this is the
phenomenon of electromagnetic induction, which underlies the operation of electrical
generators, induction motors, and transformers. The term electrodynamics is sometimes
used to refer to the combination of electromagnetism with mechanics and deals with
the effects of the electromagnetic field on the dynamic behavior of electrically charged
particles.
Electromagnetic force
The force that the electromagnetic field exerts on electrically charged particles, called the
electromagnetic force, is one of the four fundamental forces. The other fundamental forces are the
strong nuclear force (which holds atomic nuclei together), the weak nuclear force (which causes
certain forms of radioactive decay), and the gravitational force. All other forces are ultimately
derived from these fundamental forces. However, it turns out that the electromagnetic force
is the one responsible for practically all the phenomena one encounters in daily life,
with the exception of gravity. Roughly speaking, all the forces involved in interactions
between atoms can be traced to the electromagnetic force acting on the electrically
charged protons and electrons inside the atoms. This includes the forces we experience in
”pushing” or ”pulling” ordinary material objects, which come from the intermolecular
forces between the individual molecules in our bodies and those in the objects. It also
includes all forms of chemical phenomena, which arise from interactions between electron
orbitals.
History
The scientist William Gilbert proposed, in his De Magnete (1600), that electricity and magnetism,
while both capable of causing attraction and repulsion of objects, were distinct effects. Mariners
had noticed that lightning strikes had the ability to disturb a compass needle, but the link between
lightning and electricity was not confirmed until Franklin’s proposed experiments (performed
initially by others) in 1752. One of the first to discover and publish a link between man-made
electric current and magnetism was Romagnosi, who in 1802 noticed that connecting a wire across
a Voltaic pile deflected a nearby compass needle. However, the effect did not become widely known
until 1820, when Ørsted performed a similar experiment. Ørsted’s work influenced
Ampère to produce a theory of electromagnetism that set the subject on a mathematical
foundation.
An accurate theory of electromagnetism, known as classical electromagnetism, was developed by
various physicists over the course of the 19th century, culminating in the work of James Clerk
Maxwell, who unified the preceding developments into a single theory and discovered the
electromagnetic nature of light. In classical electromagnetism, the electromagnetic field obeys a set
of equations known as Maxwell’s equations, and the electromagnetic force is given by the Lorentz
force law.
One of the peculiarities of classical electromagnetism is that it is difficult to reconcile with classical
mechanics, but it is compatible with special relativity. According to Maxwell’s equations, the
speed of light is a universal constant, dependent only on the electrical permittivity and
magnetic permeability of the vacuum. This violates Galilean invariance, a long-standing
cornerstone of classical mechanics. One way to reconcile the two theories is to assume
the existence of a luminiferous aether through which the light propagates. However,
subsequent experiments efforts failed to detect the presence of the aether. In 1905, Albert
Einstein solved the problem with the introduction of special relativity, which replaces
classical kinematics with a new theory of kinematics that is compatible with classical
electromagnetism.
In another paper published in that same year, Einstein undermined the very foundations of
classical electromagnetism. His theory of the photoelectric effect (for which he won the Nobel prize
for physics) posited that light could exist in discrete particle-like quantities, which later came to be
known as photons. Einstein’s theory of the photoelectric effect extended the insights that appeared
in the solution of the ultraviolet catastrophe presented by Max Planck in 1900. In his work, Planck
showed that hot objects emit electromagnetic radiation in discrete packets, which leads to a finite
total energy emitted as black body radiation. Both of these results were in direct contradiction
with the classical view of light as a continuous wave. Planck’s and Einstein’s theories were
progenitors of quantum mechanics, which, when formulated in 1925, necessitated the invention of a
quantum theory of electromagnetism. This theory, completed in the 1940s, is known as
quantum electrodynamics (or ”QED”), and is one of the most accurate theories known to
physics.
References
[1] Tipler, Paul (1998) Physics for Scientists and Engineers: Vol. 2: Light, Electricity and
Magnetism (4th ed.), W. H. Freeman. ISBN 1572594926
[2] Griffiths, David J. (1998) Introduction to Electrodynamics (3rd ed.), Prentice Hall. ISBN
013805326X
[3] Jackson, John D. (1998) Classical Electrodynamics (3rd ed.), Wiley. ISBN 047130932X
[4] Rothwell, Edward J., Cloud, Michael J. (2001) Electromagnetics, CRC Press. ISBN
084931397X
This entry is a derivative of the Electromagnetism article from Wikipedia, the Free Encyclopedia.
Authors of the orginial article include: Light current, Salsb, Ranveig, Robbot and Scottfisher.
History page of the original is here