Physics#High energy/particle physics

{{Short description|Scientific field of study}}

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File:CMB_Timeline300_no_WMAP.jpg theory in physics]]

{{TopicTOC-Physics}}

Physics is the scientific study of matter, its fundamental constituents, its motion and behavior through space and time, and the related entities of energy and force.{{harvnb|Maxwell|1878|p=9}} "Physical science is that department of knowledge which relates to the order of nature, or, in other words, to the regular succession of events." It is one of the most fundamental scientific disciplines.{{harvnb |Young|Freedman|2014|p=1}} "Physics is one of the most fundamental of the sciences. Scientists of all disciplines use the ideas of physics, including chemists who study the structure of molecules, paleontologists who try to reconstruct how dinosaurs walked, and climatologists who study how human activities affect the atmosphere and oceans. Physics is also the foundation of all engineering and technology. No engineer could design a flat-screen TV, an interplanetary spacecraft, or even a better mousetrap without first understanding the basic laws of physics. (...) You will come to see physics as a towering achievement of the human intellect in its quest to understand our world and ourselves."{{harvnb |Young|Freedman|2014|p=2}} "Physics is an experimental science. Physicists observe the phenomena of nature and try to find patterns that relate these phenomena."{{harvnb|Holzner|2006|p=7}} "Physics is the study of your world and the world and universe around you." A scientist who specializes in the field of physics is called a physicist.

Physics is one of the oldest academic disciplines.{{harvnb |Krupp|2003}} Over much of the past two millennia, physics, chemistry, biology, and certain branches of mathematics were a part of natural philosophy, but during the Scientific Revolution in the 17th century, these natural sciences branched into separate research endeavors. Physics intersects with many interdisciplinary areas of research, such as biophysics and quantum chemistry, and the boundaries of physics are not rigidly defined. New ideas in physics often explain the fundamental mechanisms studied by other sciences and suggest new avenues of research in these and other academic disciplines such as mathematics and philosophy.

Advances in physics often enable new technologies. For example, advances in the understanding of electromagnetism, solid-state physics, and nuclear physics led directly to the development of technologies that have transformed modern society, such as television, computers, domestic appliances, and nuclear weapons; advances in thermodynamics led to the development of industrialization; and advances in mechanics inspired the development of calculus.

History

{{Main|History of physics}}

The word physics comes from the Latin {{lang|la|physica}} ('study of nature'), which itself is a borrowing of the Greek {{lang|grc|φυσική}} ({{transliteration|grc|phusikḗ}} 'natural science'), a term derived from {{lang|grc|φύσις}} ({{transliteration|grc|phúsis}} 'origin, nature, property').{{cite web |title=physics |website=Online Etymology Dictionary |url=http://www.etymonline.com/index.php?term=physics&allowed_in_frame=0|access-date=1 November 2016 |archive-url= https://web.archive.org/web/20161224191507/http://www.etymonline.com/index.php?term=physics&allowed_in_frame=0 |archive-date=24 December 2016 |url-status=live}}{{cite web |title=physic |website=Online Etymology Dictionary |url=http://www.etymonline.com/index.php?term=physic&allowed_in_frame=0 |access-date=1 November 2016 |archive-url= https://web.archive.org/web/20161224173651/http://www.etymonline.com/index.php?term=physic&allowed_in_frame=0 |archive-date=24 December 2016 |url-status=live}}{{LSJ|fu/sis|φύσις}}, {{LSJ|fusiko/s|φυσική}}, {{LSJ|e)pisth/mh|ἐπιστήμη|ref}}

= Ancient astronomy =

{{Main|History of astronomy}}

File:Senenmut-Grab.JPG is evident in monuments like the ceiling of Senemut's tomb from the Eighteenth Dynasty of Egypt.]]

Astronomy is one of the oldest natural sciences. Early civilizations dating before 3000 BCE, such as the Sumerians, ancient Egyptians, and the Indus Valley Civilisation, had a predictive knowledge and a basic awareness of the motions of the Sun, Moon, and stars. The stars and planets, believed to represent gods, were often worshipped. While the explanations for the observed positions of the stars were often unscientific and lacking in evidence, these early observations laid the foundation for later astronomy, as the stars were found to traverse great circles across the sky, which could not explain the positions of the planets.

According to Asger Aaboe, the origins of Western astronomy can be found in Mesopotamia, and all Western efforts in the exact sciences are descended from late Babylonian astronomy.{{harvnb |Aaboe|1991}} Egyptian astronomers left monuments showing knowledge of the constellations and the motions of the celestial bodies,{{harvnb |Clagett|1995}} while Greek poet Homer wrote of various celestial objects in his Iliad and Odyssey; later Greek astronomers provided names, which are still used today, for most constellations visible from the Northern Hemisphere.{{harvnb |Thurston|1994}}

= Natural philosophy =

{{main|Natural philosophy}}

Natural philosophy has its origins in Greece during the Archaic period (650 BCE – 480 BCE), when pre-Socratic philosophers like Thales rejected non-naturalistic explanations for natural phenomena and proclaimed that every event had a natural cause.{{harvnb |Singer|2008|p=35}} They proposed ideas verified by reason and observation, and many of their hypotheses proved successful in experiment;{{harvnb |Lloyd|1970|pp=108–109}} for example, atomism was found to be correct approximately 2000 years after it was proposed by Leucippus and his pupil Democritus.

{{cite web |last=Gill |first=N. S. |title=Atomism – Pre-Socratic Philosophy of Atomism |url=http://ancienthistory.about.com/od/presocraticphiloso/p/Atomism.htm |url-status=live |archive-url=https://web.archive.org/web/20140710140657/http://ancienthistory.about.com/od/presocraticphiloso/p/Atomism.htm |archive-date=10 July 2014 |access-date=1 April 2014 |publisher=About Education }}

= Aristotle and Hellenistic physics =

File:Aristotle Altemps Inv8575.jpg
(384–322 BCE)]]

During the classical period in Greece (6th, 5th and 4th centuries BCE) and in Hellenistic times, natural philosophy developed along many lines of inquiry. Aristotle ({{langx|el|Ἀριστοτέλης}}, Aristotélēs) (384–322 BCE), a student of Plato,

wrote on many subjects, including a substantial treatise on "Physics" – in the 4th century BC. Aristotelian physics was influential for about two millennia. His approach mixed some limited observation with logical deductive arguments, but did not rely on experimental verification of deduced statements. Aristotle's foundational work in Physics, though very imperfect, formed a framework against which later thinkers further developed the field. His approach is entirely superseded today.

He explained ideas such as motion (and gravity) with the theory of four elements.

Aristotle believed that each of the four classical elements (air, fire, water, earth) had its own natural place.{{Cite web |title=Daily 40 no. 2 – Aristotle and the Four Simple Bodies and Elements |website=Cal State LA |url=https://www.calstatela.edu/sites/default/files/dept/chem/09summer/158/daily40-aristotle.pdf |access-date=27 September 2023 |archive-url=https://web.archive.org/web/20230106231001/https://www.calstatela.edu/sites/default/files/dept/chem/09summer/158/daily40-aristotle.pdf |archive-date=6 January 2023 }} Because of their differing densities, each element will revert to its own specific place in the atmosphere.{{Cite web |last=tbcaldwe |title=Natural Philosophy: Aristotle {{!}} Physics 139 |date=14 October 2012 |url=https://blogs.umass.edu/p139ell/2012/10/14/natural-philosophy-aristotle/ |access-date=17 December 2022 |language=en-US}} So, because of their weights, fire would be at the top, air underneath fire, then water, then lastly earth. He also stated that when a small amount of one element enters the natural place of another, the less abundant element will automatically go towards its own natural place. For example, if there is a fire on the ground, the flames go up into the air in an attempt to go back into its natural place where it belongs. His laws of motion included: that heavier objects will fall faster, the speed being proportional to the weight and the speed of the object that is falling depends inversely on the density object it is falling through (e.g. density of air).{{Cite web |title=Aristotle |url=https://galileoandeinstein.phys.virginia.edu/lectures/aristot2.html |access-date=17 December 2022 |website=galileoandeinstein.phys.virginia.edu}} He also stated that, when it comes to violent motion (motion of an object when a force is applied to it by a second object) that the speed that object moves, will only be as fast or strong as the measure of force applied to it. The problem of motion and its causes was studied carefully, leading to the philosophical notion of a "prime mover" as the ultimate source of all motion in the world (Book 8 of his treatise Physics).

= Medieval European and Islamic =

{{main|European science in the Middle Ages|Physics in the medieval Islamic world}}

File:Hazan.png ({{Circa|965|1040}}) wrote of his camera obscura experiments in the Book of Optics.{{sfn|Smith|2001|loc=Book I [6.85], [6.86], p. 379; Book II, [3.80], p. 453}}|alt=Ibn Al-Haytham (Alhazen) drawing]]

The Western Roman Empire fell to invaders and internal decay in the fifth century, resulting in a decline in intellectual pursuits in western Europe. By contrast, the Eastern Roman Empire (usually known as the Byzantine Empire) resisted the attacks from invaders and continued to advance various fields of learning, including physics.{{sfn|Lindberg|1992|page=363}} In the sixth century, John Philoponus challenged the dominant Aristotelian approach to science although much of his work was focused on Christian theology.{{Cite web |last=Wildberg |first=Christian |date=2021 |editor-last=Zalta |editor-first=Edward N. |title=John Philoponus |url=https://plato.stanford.edu/entries/philoponus/ |access-date=2025-02-06 |publisher=Metaphysics Research Lab, Stanford University}}

In the sixth century, Isidore of Miletus created an important compilation of Archimedes' works that are copied in the Archimedes Palimpsest.

Islamic scholarship inherited Aristotelian physics from the Greeks and during the Islamic Golden Age developed it further, especially placing emphasis on observation and a priori reasoning, developing early forms of the scientific method.

The most notable innovations under Islamic scholarship were in the field of optics and vision,{{cite book |last= Dallal|first=Ahmad |author-link= |date= 2010|title=Islam, Science, and the Challenge of History |url= |location=New Haven |publisher= Yale University Press|page=38 |isbn=|quote = Within two centuries, the field of optics was radically transformed}} which came from the works of many scientists like Ibn Sahl, Al-Kindi, Ibn al-Haytham, Al-Farisi and Avicenna. The most notable work was The Book of Optics (also known as Kitāb al-Manāẓir), written by Ibn al-Haytham, in which he presented the alternative to the ancient Greek idea about vision.{{Cite journal |last1=Tbakhi |first1=Abdelghani |last2=Amr |first2=Samir S. |date=2007 |title=Ibn Al-Haytham: Father of Modern Optics |journal=Annals of Saudi Medicine |volume=27 |issue=6 |pages=464–467 |doi=10.5144/0256-4947.2007.464 |issn=0256-4947 |pmc=6074172 |pmid=18059131}} His discussed his experiments with camera obscura, showing that light moved in a straight line; he encouraged readers to reproduce his experiments making him one of the originators of the scientific method{{Cite journal |last=Al-Khalili |first=Jim |date=February 2015 |title=In retrospect: Book of Optics |url=https://www.nature.com/articles/518164a |journal=Nature |language=en |volume=518 |issue=7538 |pages=164–165 |doi=10.1038/518164a |bibcode=2015Natur.518..164A |issn=1476-4687}}{{harvnb |Howard|Rogers|1995|pp=6–7}}

File:Pinhole-camera.svg

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= Scientific Revolution =

{{further|History_of_physics#Scientific_Revolution}}

Physics became a separate science when early modern Europeans used experimental and quantitative methods to discover what are now considered to be the laws of physics.{{harvnb |Ben-Chaim|2004}}{{Page needed|date=November 2016}}

Major developments in this period include the replacement of the geocentric model of the Solar System with the heliocentric Copernican model, the laws governing the motion of planetary bodies (determined by Johannes Kepler between 1609 and 1619), Galileo's pioneering work on telescopes and observational astronomy in the 16th and 17th centuries, and Isaac Newton's discovery and unification of the laws of motion and universal gravitation (that would come to bear his name).{{harvnb |Guicciardini|1999}} Newton, and separately Gottfried Wilhelm Leibniz, developed calculus, See also Leibniz–Newton calculus controversy. {{cite journal | last = Blank| first =Brian E. |date=May 2009 | title = The Calculus Wars reviewed by Brian E. Blank | journal = Notices of the American Mathematical Society | volume = 56 | issue = 5 | pages = 602–610 | url = https://www.ams.org/notices/200905/rtx090500602p.pdf }} the mathematical study of continuous change, and Newton applied it to solve physical problems.{{harvnb |Allen|1997}}

Justus Sustermans - Portrait of Galileo Galilei, 1636.jpg|Galileo Galilei (1564–1642) related mathematics, theoretical physics, and experimental physics.

JKepler.jpg|Johannes Kepler (1571–1630) explained planetary motions, formulating the first "natural laws" in the modern sense{{cite web |last1=Gould |first1=Alan |title=Johannes Kepler: His Life, His Laws and Times |url=https://www.nasa.gov/kepler/education/johannes/ |website=NASA |date=24 September 2016 |access-date=25 February 2025 |archive-url=https://web.archive.org/web/20210624003856/https://www.nasa.gov/kepler/education/johannes |archive-date=24 June 2021}}

GodfreyKneller-IsaacNewton-1689.jpg|Isaac Newton discovered the laws of motion and universal gravitation

= 19th century =

{{further|History_of_physics#19th_century}}

The discovery of laws in thermodynamics, chemistry, and electromagnetics resulted from research efforts during the Industrial Revolution as energy needs increased.{{cite web

|title = The Industrial Revolution

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}} By the end of the 19th century, theories of thermodynamics, mechanics, and electromagnetics matched a wide variety of observations. Taken together these theories became the basis for what would later be called classical physics.{{Cite book |last=Krane |first=Kenneth S. |title=Modern physics |date=2020 |publisher=John Wiley & Sons, Inc |isbn=978-1-119-49548-2 |edition=4 |location=Hoboken, New Jersey}}{{rp|2}}

A few experimental results remained inexplicable. Classical electromagnetism presumed a medium, an luminiferous aether to support the propagation of waves, but this medium could not be detected. The intensity of light from hot glowing blackbody objects did not match the predictions of thermodynamics and electromagnetism. The character of electron emission of illuminated metals differed from predictions. These failures, seemingly insignificant in the big picture would upset the physics world in first two decades of the 20th century.

= 20th century =

{{see also|History of special relativity|History of quantum mechanics}}

{{further|History of physics#20th century: birth of modern physics}}

File:Max Planck Nobel 1918.jpg (1858–1947), proposed quanta to explain the blackbody spectrum,{{cite web |url=https://www.esa.int/Science_Exploration/Space_Science/Planck/Max_Planck_Originator_of_quantum_theory |title=Max Planck: Originator of quantum theory |date=2012-08-12 |quote="He renounced previous physics and introduced the concept of ‘quanta’ of energy."|work=esa.int |access-date=2025-03-04}} originating quantum theory.https://www.esa.int/Science_Exploration/Space_Science/Planck/Max_Planck_Originator_of_quantum_theoryhttps://www.britannica.com/biography/Max-Planck]]

File:Einstein1921 by F Schmutzer 2.jpg (1879–1955), discovered the photoelectric effect and theory of relativity.]]

Modern physics began in the early 20th century with the work of Max Planck in quantum theory and Albert Einstein's theory of relativity. Both of these theories came about due to inaccuracies in classical mechanics in certain situations. Classical mechanics predicted that the speed of light depends on the motion of the observer, which could not be resolved with the constant speed predicted by Maxwell's equations of electromagnetism. This discrepancy was corrected by Einstein's theory of special relativity, which replaced classical mechanics for fast-moving bodies and allowed for a constant speed of light.{{harvnb |O'Connor|Robertson|1996a}} Black-body radiation provided another problem for classical physics, which was corrected when Planck proposed that the excitation of material oscillators is possible only in discrete steps proportional to their frequency. This, along with the photoelectric effect and a complete theory predicting discrete energy levels of electron orbitals, led to the theory of quantum mechanics improving on classical physics at very small scales.{{harvnb |O'Connor|Robertson|1996b}}

Quantum mechanics would come to be pioneered by Werner Heisenberg, Erwin Schrödinger and Paul Dirac. From this early work, and work in related fields, the Standard Model of particle physics was derived.{{cite web |website=DONUT |title=The Standard Model |publisher=Fermilab |date=29 June 2001 |url=http://www-donut.fnal.gov/web_pages/standardmodelpg/TheStandardModel.html |access-date=1 April 2014 |archive-date=31 May 2014 |archive-url=https://web.archive.org/web/20140531012204/http://www-donut.fnal.gov/web_pages/standardmodelpg/TheStandardModel.html |url-status=live }} Following the discovery of a particle with properties consistent with the Higgs boson at CERN in 2012,{{harvnb |Cho|2012}} all fundamental particles predicted by the standard model, and no others, appear to exist; however, physics beyond the Standard Model, with theories such as supersymmetry, is an active area of research.{{cite magazine |last=Womersley |first=J. |url=http://www.symmetrymagazine.org/sites/default/files/legacy/pdfs/200502/beyond_the_standard_model.pdf |date=February 2005 |title=Beyond the Standard Model |magazine= Symmetry |volume=2 |issue=1 |pages=22–25 |archive-url=https://web.archive.org/web/20150924114111/http://www.symmetrymagazine.org/sites/default/files/legacy/pdfs/200502/beyond_the_standard_model.pdf |archive-date=24 September 2015 |url-status=live}} Areas of mathematics in general are important to this field, such as the study of probabilities and groups.

Core theories

{{further|Outline of physics}}

Physics deals with a wide variety of systems, although certain theories are used by all physicists. Each of these theories was experimentally tested numerous times and found to be an adequate approximation of nature.

These central theories are important tools for research into more specialized topics, and any physicist, regardless of their specialization, is expected to be literate in them. These include classical mechanics, quantum mechanics, thermodynamics and statistical mechanics, electromagnetism, and special relativity.

=Distinction between classical and modern physics=

{{merge|section=yes|Classical and modern physics|discuss=Wikipedia_talk:WikiProject_Physics#Classical_and_modern_physics|date=February 2025}}

{{further|History_of_physics#Division_into_classical_and_modern}}

File:Modernphysicsfields.svg

In the first decades of the 20th century physics was revolutionized by the discoveries of quantum mechanics and relativity. The changes were so fundamental that these new concepts became the foundation of "modern physics", with other topics becoming "classical physics". The majority of applications of physics are essentially classical.{{Cite book |last1=Thorne |first1=Kip S. |author-link1=Kip Thorne |title=Modern Classical Physics Optics, Fluids, Plasmas, Elasticity, Relativity, and Statistical Physics |last2=Blandford |first2=R.D. |publisher=Princeton University Press. |year=2017 |location=United States}}{{rp|xxxi|q=The resulting quantum mechanics and relativity occupied physicists for much of the succeeding century and today are viewed very differently from each other. Quantum mechanics is perceived as an abrupt departure from the tacit assumptions of the past, while relativity-though no less radical conceptually-is seen as a logical continuation of the physics of Galileo, Newton, and Maxwell.}}

The laws of classical physics accurately describe systems whose important length scales are greater than the atomic scale and whose motions are much slower than the speed of light.{{rp|xxxii}} Outside of this domain, observations do not match predictions provided by classical mechanics.{{rp|6}}

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=Classical theory=

{{Main|Classical physics}}

Classical physics includes the traditional branches and topics that were recognized and well-developed before the beginning of the 20th century—classical mechanics, thermodynamics, and electromagnetism.{{rp|2|q=These three successful theories-mechanics, electromagnetism, and thermodynamics-form the basis for what we call "classical physics."}} Classical mechanics is concerned with bodies acted on by forces and bodies in motion and may be divided into statics (study of the forces on a body or bodies not subject to an acceleration), kinematics (study of motion without regard to its causes), and dynamics (study of motion and the forces that affect it); mechanics may also be divided into solid mechanics and fluid mechanics (known together as continuum mechanics), the latter include such branches as hydrostatics, hydrodynamics and pneumatics. Acoustics is the study of how sound is produced, controlled, transmitted and received.{{cite encyclopedia |title=acoustics |url=http://www.britannica.com/EBchecked/topic/4044/acoustics |encyclopedia=Encyclopædia Britannica |access-date=14 June 2013 |url-status=live |archive-url=https://web.archive.org/web/20130618235952/http://www.britannica.com/EBchecked/topic/4044/acoustics |archive-date=18 June 2013 }} Important modern branches of acoustics include ultrasonics, the study of sound waves of very high frequency beyond the range of human hearing; bioacoustics, the physics of animal calls and hearing,{{cite web |url=http://www.bioacoustics.info/ |title=Bioacoustics – the International Journal of Animal Sound and its Recording |publisher=Taylor & Francis |access-date=31 July 2012 |url-status=live |archive-url=https://web.archive.org/web/20120905120546/http://www.bioacoustics.info/ |archive-date=5 September 2012 }} and electroacoustics, the manipulation of audible sound waves using electronics.{{cite web |publisher=Acoustical Society of America |title=Acoustics and You (A Career in Acoustics?) |url=http://asaweb.devcloud.acquia-sites.com/education_outreach/careers_in_acoustics |archive-url=https://web.archive.org/web/20150904010934/http://asaweb.devcloud.acquia-sites.com/education_outreach/careers_in_acoustics |url-status=dead |archive-date=4 September 2015 |access-date=21 May 2013 }}

Optics, the study of light, is concerned not only with visible light but also with infrared and ultraviolet radiation, which exhibit all of the phenomena of visible light except visibility, e.g., reflection, refraction, interference, diffraction, dispersion, and polarization of light. Heat is a form of energy, the internal energy possessed by the particles of which a substance is composed; thermodynamics deals with the relationships between heat and other forms of energy. Electricity and magnetism have been studied as a single branch of physics since the intimate connection between them was discovered in the early 19th century; an electric current gives rise to a magnetic field, and a changing magnetic field induces an electric current. Electrostatics deals with electric charges at rest, electrodynamics with moving charges, and magnetostatics with magnetic poles at rest.

=Modern theory=

{{Main|Modern physics}}

The discovery of relativity and of quantum mechanics in the first decades of the 20th century transformed the conceptual basis of physics without reducing the practical value of most of the physical theories developed up to that time. Consequently the topics of physics have come to be divided into "classical physics" and "modern physics", with the latter category including effects related to quantum mechanics and relativity.{{rp|2|q=The designation modern physics usually refers to the developments that began in about 1900 and led to the relativity and quantum theories, including the applications of those theories to understanding the atom, the atomic nucleus and the particles of which it is composed, collections of atoms in molecules and solids, and, on a cosmic scale, the origin and evolution of the universe.}}

Classical physics is generally concerned with matter and energy on the normal scale of observation, while much of modern physics is concerned with the behavior of matter and energy under extreme conditions or on a very large or very small scale. For example, atomic and nuclear physics study matter on the smallest scale at which chemical elements can be identified. The physics of elementary particles is on an even smaller scale since it is concerned with the most basic units of matter; this branch of physics is also known as high-energy physics because of the extremely high energies necessary to produce many types of particles in particle accelerators. On this scale, ordinary, commonsensical notions of space, time, matter, and energy are no longer valid.{{harvnb |Tipler|Llewellyn|2003|pp=269, 477, 561}}

The two chief theories of modern physics present a different picture of the concepts of space, time, and matter from that presented by classical physics. Classical mechanics approximates nature as continuous, while quantum theory is concerned with the discrete nature of many phenomena at the atomic and subatomic level and with the complementary aspects of particles and waves in the description of such phenomena. The theory of relativity is concerned with the description of phenomena that take place in a frame of reference that is in motion with respect to an observer; the special theory of relativity is concerned with motion in the absence of gravitational fields and the general theory of relativity with motion and its connection with gravitation. Both quantum theory and the theory of relativity find applications in many areas of modern physics.{{harvnb |Tipler|Llewellyn|2003|pp=1–4, 115, 185–187}}

Fundamental concepts in modern physics include:

Research

=Scientific method=

Physicists use the scientific method to test the validity of a physical theory. By using a methodical approach to compare the implications of a theory with the conclusions drawn from its related experiments and observations, physicists are better able to test the validity of a theory in a logical, unbiased, and repeatable way. To that end, experiments are performed and observations are made in order to determine the validity or invalidity of a theory.{{cite journal |last1=Ellis |first1=G. |last2=Silk |first2=J. |title=Scientific method: Defend the integrity of physics |journal=Nature |date=16 December 2014 |volume=516 |issue=7531 |pages=321–323 |doi=10.1038/516321a |bibcode=2014Natur.516..321E |pmid=25519115 |doi-access=free }}

A scientific law is a concise verbal or mathematical statement of a relation that expresses a fundamental principle of some theory, such as Newton's law of universal gravitation.{{harvnb |Honderich|1995|pp=474–476}}

=Theory and experiment=

{{Main|Theoretical physics|Experimental physics}}

File:Bruce McCandless II during EVA in 1984.jpg and Earth are both in free fall. (Pictured: Astronaut Bruce McCandless.) ]]

File:Lightning in Arlington.jpg is an electric current.]]

Theorists seek to develop mathematical models that both agree with existing experiments and successfully predict future experimental results, while experimentalists devise and perform experiments to test theoretical predictions and explore new phenomena. Although theory and experiment are developed separately, they strongly affect and depend upon each other. Progress in physics frequently comes about when experimental results defy explanation by existing theories, prompting intense focus on applicable modelling, and when new theories generate experimentally testable predictions, which inspire the development of new experiments (and often related equipment).{{cite web |date=June 2015 |title=Has theoretical physics moved too far away from experiments? Is the field entering a crisis and, if so, what should we do about it? |url=https://www.perimeterinstitute.ca/research/conferences/convergence/roundtable-discussion-questions/has-theoretical-physics-moved-too |publisher=Perimeter Institute for Theoretical Physics |archive-url=https://web.archive.org/web/20160421064320/http://www.perimeterinstitute.ca/research/conferences/convergence/roundtable-discussion-questions/has-theoretical-physics-moved-too |archive-date=21 April 2016 }}

Physicists who work at the interplay of theory and experiment are called phenomenologists, who study complex phenomena observed in experiment and work to relate them to a fundamental theory.{{cite web |title=Phenomenology |url=https://www.mpp.mpg.de/english/research/theory/phenomenologie/index.html |publisher=Max Planck Institute for Physics |access-date=22 October 2016 |archive-url=https://web.archive.org/web/20160307105406/https://www.mpp.mpg.de/english/research/theory/phenomenologie/index.html |archive-date=7 March 2016 }}

Theoretical physics has historically taken inspiration from philosophy; electromagnetism was unified this way.{{efn|See, for example, the influence of Kant and Ritter on Ørsted.}} Beyond the known universe, the field of theoretical physics also deals with hypothetical issues,{{efn|Concepts which are denoted hypothetical can change with time. For example, the atom of nineteenth-century physics was denigrated by some, including Ernst Mach's critique of Ludwig Boltzmann's formulation of statistical mechanics. By the end of World War II, the atom was no longer deemed hypothetical.}} such as parallel universes, a multiverse, and higher dimensions. Theorists invoke these ideas in hopes of solving particular problems with existing theories; they then explore the consequences of these ideas and work toward making testable predictions.

Experimental physics expands, and is expanded by, engineering and technology. Experimental physicists who are involved in basic research design and perform experiments with equipment such as particle accelerators and lasers, whereas those involved in applied research often work in industry, developing technologies such as magnetic resonance imaging (MRI) and transistors. Feynman has noted that experimentalists may seek areas that have not been explored well by theorists.{{harvnb|Feynman|1965|p=157}} "In fact experimenters have a certain individual character. They ... very often do their experiments in a region in which people know the theorist has not made any guesses."

=Scope and aims=

File:Acceleration components.JPG to explain its behavior: the purview of the branch of physics known as mechanics.]]

Physics covers a wide range of phenomena, from elementary particles (such as quarks, neutrinos, and electrons) to the largest superclusters of galaxies. Included in these phenomena are the most basic objects composing all other things. Therefore, physics is sometimes called the "fundamental science". Physics aims to describe the various phenomena that occur in nature in terms of simpler phenomena. Thus, physics aims to both connect the things observable to humans to root causes, and then connect these causes together.

For example, the ancient Chinese observed that certain rocks (lodestone and magnetite) were attracted to one another by an invisible force. This effect was later called magnetism, which was first rigorously studied in the 17th century. But even before the Chinese discovered magnetism, the ancient Greeks knew of other objects such as amber, that when rubbed with fur would cause a similar invisible attraction between the two.{{cite book |last=Stewart |first=J. |year=2001 |title=Intermediate Electromagnetic Theory |page=50 |publisher=World Scientific |isbn=978-981-02-4471-2}} This was also first studied rigorously in the 17th century and came to be called electricity. Thus, physics had come to understand two observations of nature in terms of some root cause (electricity and magnetism). However, further work in the 19th century revealed that these two forces were just two different aspects of one force—electromagnetism. This process of "unifying" forces continues today, and electromagnetism and the weak nuclear force are now considered to be two aspects of the electroweak interaction. Physics hopes to find an ultimate reason (theory of everything) for why nature is as it is (see section Current research below for more information).{{cite book |last=Weinberg |first=S. |year=1993 |title=Dreams of a Final Theory: The Search for the Fundamental Laws of Nature |publisher=Hutchinson Radius |isbn=978-0-09-177395-3}}

=Current research=

{{further|List of unsolved problems in physics}}

File:Feynman'sDiagram.JPG signed by R. P. Feynman]]

File:Meissner effect p1390048.jpg levitating above a superconductor demonstrates the Meissner effect.]]

Research in physics is continually progressing on a large number of fronts.

In condensed matter physics, an important unsolved theoretical problem is that of high-temperature superconductivity.{{cite journal |last1=Leggett |first1=A. J. |year=2006 |title=What DO we know about high Tc? |url=http://leopard.physics.ucdavis.edu/rts/p242/nphys254.pdf |url-status=dead |journal=Nature Physics |volume=2 |issue=3 |pages=134–136 |bibcode=2006NatPh...2..134L |doi=10.1038/nphys254 |s2cid=122055331 |archive-url=https://web.archive.org/web/20100610183622/http://leopard.physics.ucdavis.edu/rts/p242/nphys254.pdf |archive-date=10 June 2010}} Many condensed matter experiments are aiming to fabricate workable spintronics and quantum computers.{{Cite journal |last1=Wolf |first1=S. A. |last2=Chtchelkanova |first2=A. Y. |last3=Treger |first3=D. M. |year=2006 |title=Spintronics – A retrospective and perspective |url=http://pdfs.semanticscholar.org/10b1/d4e488fabf429cb0630d96687548aa14158f.pdf |url-status=dead |journal=IBM Journal of Research and Development |volume=50 |pages=101–110 |doi=10.1147/rd.501.0101 |s2cid=41178069 |archive-url=https://web.archive.org/web/20200924021923/http://pdfs.semanticscholar.org/10b1/d4e488fabf429cb0630d96687548aa14158f.pdf |archive-date=24 September 2020}}

In particle physics, the first pieces of experimental evidence for physics beyond the Standard Model have begun to appear. Foremost among these are indications that neutrinos have non-zero mass. These experimental results appear to have solved the long-standing solar neutrino problem, and the physics of massive neutrinos remains an area of active theoretical and experimental research. The Large Hadron Collider has already found the Higgs boson, but future research aims to prove or disprove the supersymmetry, which extends the Standard Model of particle physics. Research on the nature of the major mysteries of dark matter and dark energy is also currently ongoing.{{cite journal |last1=Gibney |first1=E. |year=2015 |title=LHC 2.0: A new view of the Universe |journal=Nature |volume=519 |issue=7542 |pages=142–143 |doi=10.1038/519142a |bibcode=2015Natur.519..142G |pmid=25762263 |doi-access=free }}

Although much progress has been made in high-energy, quantum, and astronomical physics, many everyday phenomena involving complexity,{{harvnb|National Research Council|Committee on Technology for Future Naval Forces|1997|p=161}} chaos,{{harvnb|Kellert|1993|p=32}} or turbulence{{cite journal |last1=Eames |first1=I. |last2=Flor |first2=J. B. |year=2011 |title=New developments in understanding interfacial processes in turbulent flows |journal=Philosophical Transactions of the Royal Society A |volume=369 |issue=1937 |pages=702–705 |bibcode=2011RSPTA.369..702E |doi=10.1098/rsta.2010.0332 |pmid=21242127 |quote=Richard Feynman said that 'Turbulence is the most important unsolved problem of classical physics' |doi-access=free}} are still poorly understood. Complex problems that seem like they could be solved by a clever application of dynamics and mechanics remain unsolved; examples include the formation of sandpiles, nodes in trickling water, the shape of water droplets, mechanisms of surface tension catastrophes, and self-sorting in shaken heterogeneous collections.{{efn |See the work of Ilya Prigogine, on 'systems far from equilibrium', and others.}}{{Cite book |author1=National Research Council |chapter=What happens far from equilibrium and why |chapter-url= https://www.nap.edu/read/11967/chapter/7 |title=Condensed-Matter and Materials Physics: the science of the world around us |year=2007 |pages=91–110 |doi=10.17226/11967 |isbn=978-0-309-10969-7 |url-status=live |archive-url= https://web.archive.org/web/20161104001321/https://www.nap.edu/read/11967/chapter/7 |archive-date=4 November 2016}}
– {{cite arXiv |last1=Jaeger |first1=Heinrich M. |last2=Liu |first2=Andrea J. |author2-link=Andrea Liu|year=2010 |title=Far-From-Equilibrium Physics: An Overview |class=cond-mat.soft |eprint=1009.4874}}

These complex phenomena have received growing attention since the 1970s for several reasons, including the availability of modern mathematical methods and computers, which enabled complex systems to be modeled in new ways. Complex physics has become part of increasingly interdisciplinary research, as exemplified by the study of turbulence in aerodynamics and the observation of pattern formation in biological systems. In the 1932 Annual Review of Fluid Mechanics, Horace Lamb said:{{harvnb|Goldstein|1969}}

{{blockquote|I am an old man now, and when I die and go to heaven there are two matters on which I hope for enlightenment. One is quantum electrodynamics, and the other is the turbulent motion of fluids. And about the former I am rather optimistic.}}

Branches and fields

{{excerpt|Branches of physics|files=0}}

=Fields=

The major fields of physics, along with their subfields and the theories and concepts they employ, are shown in the following table.

{{Subfields of physics}}

Since the 20th century, the individual fields of physics have become increasingly specialised, and today most physicists work in a single field for their entire careers. "Universalists" such as Einstein (1879–1955) and Lev Landau (1908–1968), who worked in multiple fields of physics, are now very rare.{{efn|Yet, universalism is encouraged in the culture of physics. For example, the World Wide Web, which was innovated at CERN by Tim Berners-Lee, was created in service to the computer infrastructure of CERN, and was/is intended for use by physicists worldwide. The same might be said for arXiv.org}}

Contemporary research in physics can be broadly divided into nuclear and particle physics; condensed matter physics; atomic, molecular, and optical physics; astrophysics; and applied physics. Some physics departments also support physics education research and physics outreach.{{cite web |last=Redish |first=E. |title=Science and Physics Education Homepages |url=https://www.physics.umd.edu/perg/homepages.htm |publisher=University of Maryland Physics Education Research Group |url-status=live |archive-url=https://web.archive.org/web/20160728005227/http://www.physics.umd.edu/perg/homepages.htm |archive-date=28 July 2016 }}

==Nuclear and particle==

{{Main|Particle physics|Nuclear physics}}

File:CMS Higgs-event.jpg, featuring a possible appearance of the Higgs boson]]

Particle physics is the study of the elementary constituents of matter and energy and the interactions between them.{{cite web|title=Division of Particles & Fields |url=http://www.aps.org/units/dpf/index.cfm |publisher=American Physical Society |access-date=18 October 2012 |url-status=dead |archive-url=https://web.archive.org/web/20160829105655/http://www.aps.org/units/dpf/index.cfm |archive-date=29 August 2016 }} In addition, particle physicists design and develop the high-energy accelerators,{{harvnb|Halpern|2010}} detectors,{{harvnb|Grupen|1999}} and computer programs{{harvnb|Walsh|2012}} necessary for this research. The field is also called "high-energy physics" because many elementary particles do not occur naturally but are created only during high-energy collisions of other particles.{{cite web|title=High Energy Particle Physics Group|url=http://www.iop.org/activity/groups/subject/hepp/index.html|publisher=Institute of Physics|access-date=18 October 2012|archive-date=29 May 2019|archive-url=https://web.archive.org/web/20190529024813/http://www.iop.org/activity/groups/subject/hepp/index.html|url-status=live}}

Currently, the interactions of elementary particles and fields are described by the Standard Model.{{harvnb|Oerter|2006}} The model accounts for the 12 known particles of matter (quarks and leptons) that interact via the strong, weak, and electromagnetic fundamental forces. Dynamics are described in terms of matter particles exchanging gauge bosons (gluons, W and Z bosons, and photons, respectively).{{harvnb|Gribbin|Gribbin|Gribbin|1998}} The Standard Model also predicts a particle known as the Higgs boson. In July 2012 CERN, the European laboratory for particle physics, announced the detection of a particle consistent with the Higgs boson,{{cite web |title=CERN experiments observe particle consistent with long-sought Higgs boson |url=http://press-archived.web.cern.ch/press-archived/PressReleases/Releases2012/PR17.12E.html |publisher=CERN |access-date=18 October 2012 |date=4 July 2012 |url-status=dead |archive-url=https://web.archive.org/web/20121114084952/http://press-archived.web.cern.ch/press-archived/PressReleases/Releases2012/PR17.12E.html |archive-date=14 November 2012 }} an integral part of the Higgs mechanism.

Nuclear physics is the field of physics that studies the constituents and interactions of atomic nuclei. The most commonly known applications of nuclear physics are nuclear power generation and nuclear weapons technology, but the research has provided application in many fields, including those in nuclear medicine and magnetic resonance imaging, ion implantation in materials engineering, and radiocarbon dating in geology and archaeology.

==Atomic, molecular, and optical==

{{Main|Atomic, molecular, and optical physics}}

Atomic, molecular, and optical physics (AMO) is the study of matter—matter and light—matter interactions on the scale of single atoms and molecules. The three areas are grouped together because of their interrelationships, the similarity of methods used, and the commonality of their relevant energy scales. All three areas include both classical, semi-classical and quantum treatments; they can treat their subject from a microscopic view (in contrast to a macroscopic view).

Atomic physics studies the electron shells of atoms. Current research focuses on activities in quantum control, cooling and trapping of atoms and ions,{{cite web |title=Atomic, Molecular, and Optical Physics |website=MIT Department of Physics |url=http://web.mit.edu/physics/research/abcp/areas.html#amo |access-date=21 February 2014 |archive-url= https://web.archive.org/web/20140227043906/http://web.mit.edu/physics/research/abcp/areas.html#amo |archive-date=27 February 2014 |url-status=live }}{{cite web |title=Korea University, Physics AMO Group |url=http://physics.korea.ac.kr/research/research_amo.php |access-date=21 February 2014 |archive-url=https://web.archive.org/web/20140301112653/http://physics.korea.ac.kr/research/research_amo.php |archive-date=1 March 2014 |url-status=dead }}{{cite web |title=Aarhus Universitet, AMO Group |url=http://phys.au.dk/forskning/forskningsomraader/amo/ |access-date=21 February 2014 |url-status=live |archive-url=https://web.archive.org/web/20140307062146/http://phys.au.dk/forskning/forskningsomraader/amo/ |archive-date=7 March 2014 }} low-temperature collision dynamics and the effects of electron correlation on structure and dynamics. Atomic physics is influenced by the nucleus (see hyperfine splitting), but intra-nuclear phenomena such as fission and fusion are considered part of nuclear physics.

Molecular physics focuses on multi-atomic structures and their internal and external interactions with matter and light. Optical physics is distinct from optics in that it tends to focus not on the control of classical light fields by macroscopic objects but on the fundamental properties of optical fields and their interactions with matter in the microscopic realm.

==Condensed matter==

{{Main|Condensed matter physics}}

File:Bose Einstein condensate.png atoms, confirming the discovery of a new phase of matter, the Bose–Einstein condensate]]

Condensed matter physics is the field of physics that deals with the macroscopic physical properties of matter.{{harvnb|Taylor|Heinonen|2002}}{{Cite book|last1=Girvin|first1=Steven M.|url=https://books.google.com/books?id=2ESIDwAAQBAJ|title=Modern Condensed Matter Physics|last2=Yang|first2=Kun|date=28 February 2019|publisher=Cambridge University Press|isbn=978-1-108-57347-4|language=en|access-date=23 August 2020|archive-date=25 February 2021|archive-url=https://web.archive.org/web/20210225152053/https://books.google.com/books?id=2ESIDwAAQBAJ|url-status=live}} In particular, it is concerned with the "condensed" phases that appear whenever the number of particles in a system is extremely large and the interactions between them are strong.{{harvnb|Cohen|2008}}

The most familiar examples of condensed phases are solids and liquids, which arise from the bonding by way of the electromagnetic force between atoms.{{harvnb |Moore|2011|pp=255–258}} More exotic condensed phases include the superfluid{{harvnb |Leggett|1999}} and the Bose–Einstein condensate{{harvnb |Levy|2001}} found in certain atomic systems at very low temperature, the superconducting phase exhibited by conduction electrons in certain materials,{{harvnb |Stajic|Coontz|Osborne|2011}} and the ferromagnetic and antiferromagnetic phases of spins on atomic lattices.{{harvnb|Mattis|2006}}

Condensed matter physics is the largest field of contemporary physics. Historically, condensed matter physics grew out of solid-state physics, which is now considered one of its main subfields.{{cite web |url=http://www.aps.org/units/dcmp/history.cfm |title=History of Condensed Matter Physics |publisher=American Physical Society |access-date=31 March 2014 |url-status=live |archive-url=https://web.archive.org/web/20110912081611/http://www.aps.org/units/dcmp/history.cfm |archive-date=12 September 2011 }} The term condensed matter physics was apparently coined by Philip Anderson when he renamed his research group—previously solid-state theory—in 1967.{{cite web |title=Philip Anderson |url=http://www.princeton.edu/physics/people/display_person.xml?netid=pwa&display=faculty |publisher=Princeton University, Department of Physics |access-date=15 October 2012 |url-status=live |archive-url=https://web.archive.org/web/20111008123438/http://www.princeton.edu/physics/people/display_person.xml?netid=pwa&display=faculty |archive-date=8 October 2011 }} In 1978, the Division of Solid State Physics of the American Physical Society was renamed as the Division of Condensed Matter Physics. Condensed matter physics has a large overlap with chemistry, materials science, nanotechnology and engineering.

==Astrophysics==

{{Main|Astrophysics|Physical cosmology}}

File:Hubble ultra deep field high rez edit1.jpg, the Hubble Ultra-Deep Field. The vast majority of objects seen above are distant galaxies.]]

Astrophysics and astronomy are the application of the theories and methods of physics to the study of stellar structure, stellar evolution, the origin of the Solar System, and related problems of cosmology. Because astrophysics is a broad subject, astrophysicists typically apply many disciplines of physics, including mechanics, electromagnetism, statistical mechanics, thermodynamics, quantum mechanics, relativity, nuclear and particle physics, and atomic and molecular physics.{{cite web |url=http://manoa.hawaii.edu/astronomy/bs-in-astrophysics/ |title=BS in Astrophysics |publisher=University of Hawaii at Manoa |access-date=14 October 2016 |archive-url=https://web.archive.org/web/20160404195943/http://manoa.hawaii.edu/astronomy/bs-in-astrophysics/ |archive-date=4 April 2016 }}

The discovery by Karl Jansky in 1931 that radio signals were emitted by celestial bodies initiated the science of radio astronomy. Most recently, the frontiers of astronomy have been expanded by space exploration. Perturbations and interference from the Earth's atmosphere make space-based observations necessary for infrared, ultraviolet, gamma-ray, and X-ray astronomy.

Physical cosmology is the study of the formation and evolution of the universe on its largest scales. Albert Einstein's theory of relativity plays a central role in all modern cosmological theories. In the early 20th century, Hubble's discovery that the universe is expanding, as shown by the Hubble diagram, prompted rival explanations known as the steady state universe and the Big Bang.

The Big Bang was confirmed by the success of Big Bang nucleosynthesis and the discovery of the cosmic microwave background in 1964. The Big Bang model rests on two theoretical pillars: Albert Einstein's general relativity and the cosmological principle. Cosmologists have recently established the ΛCDM model of the evolution of the universe, which includes cosmic inflation, dark energy, and dark matter.

Other aspects

=Education=

{{excerpt|Physics education}}

=Careers=

{{excerpt|Physicist|paragraphs=1,2|files=no}}

=Philosophy=

{{Main|Philosophy of physics}}

Physics, as with the rest of science, relies on the philosophy of science and its "scientific method" to advance knowledge of the physical world.{{harvnb |Rosenberg|2006|loc=Chapter 1}} The scientific method employs a priori and a posteriori reasoning as well as the use of Bayesian inference to measure the validity of a given theory.{{harvnb |Godfrey-Smith|2003|loc=Chapter 14: "Bayesianism and Modern Theories of Evidence"}}

Study of the philosophical issues surrounding physics, the philosophy of physics, involves issues such as the nature of space and time, determinism, and metaphysical outlooks such as empiricism, naturalism, and realism.{{harvnb |Godfrey-Smith|2003|loc=Chapter 15: "Empiricism, Naturalism, and Scientific Realism?"}}

Many physicists have written about the philosophical implications of their work, for instance Laplace, who championed causal determinism,{{harvnb |Laplace|1951}} and Erwin Schrödinger, who wrote on quantum mechanics.{{harvnb |Schrödinger|1983}}{{harvnb |Schrödinger|1995}} The mathematical physicist Roger Penrose has been called a Platonist by Stephen Hawking,{{harvnb|Hawking|Penrose|1996|p=4}}. "I think that Roger is a Platonist at heart but he must answer for himself." a view Penrose discusses in his book, The Road to Reality.{{harvnb |Penrose|2004}} Hawking referred to himself as an "unashamed reductionist" and took issue with Penrose's views.{{harvnb |Penrose|Shimony|Cartwright|Hawking|1997}}

File:Pahoeoe fountain original.jpg-shaped lava flow illustrates an application of mathematics in physics — in this case, Galileo's law of falling bodies.]]

File:Physics and other sciences.png.]]

Mathematics provides a compact and exact language used to describe the order in nature. This was noted and advocated by Pythagoras,{{harvnb|Dijksterhuis|1986}} Plato,{{harvnb|Mastin|2010}} "Although usually remembered today as a philosopher, Plato was also one of ancient Greece's most important patrons of mathematics. Inspired by Pythagoras, he founded his Academy in Athens in 387 BC, where he stressed mathematics as a way of understanding more about reality. In particular, he was convinced that geometry was the key to unlocking the secrets of the universe. The sign above the Academy entrance read: 'Let no-one ignorant of geometry enter here.{{'"}} Galileo,{{harvnb|Toraldo Di Francia|1976|p=10}} 'Philosophy is written in that great book which ever lies before our eyes. I mean the universe, but we cannot understand it if we do not first learn the language and grasp the symbols in which it is written. This book is written in the mathematical language, and the symbols are triangles, circles, and other geometrical figures, without whose help it is humanly impossible to comprehend a single word of it, and without which one wanders in vain through a dark labyrinth.' – Galileo (1623), The Assayer" and Newton. Some theorists, like Hilary Putnam and Penelope Maddy, hold that logical truths, and therefore mathematical reasoning, depend on the empirical world. This is usually combined with the claim that the laws of logic express universal regularities found in the structural features of the world, which may explain the peculiar relation between these fields.

Physics uses mathematics{{cite web |url=http://www.math.niu.edu/~rusin/known-math/index/tour_sci.html |title=Applications of Mathematics to the Sciences |date=25 January 2000 |access-date=30 January 2012 |archive-url=https://web.archive.org/web/20150510112012/http://www.math.niu.edu/~rusin/known-math/index/tour_sci.html |archive-date=10 May 2015 |url-status=dead}} to organise and formulate experimental results. From those results, precise or estimated solutions are obtained, or quantitative results, from which new predictions can be made and experimentally confirmed or negated. The results from physics experiments are numerical data, with their units of measure and estimates of the errors in the measurements. Technologies based on mathematics, like computation have made computational physics an active area of research.

File:Mathematical Physics and other sciences.png

Ontology is a prerequisite for physics, but not for mathematics. It means physics is ultimately concerned with descriptions of the real world, while mathematics is concerned with abstract patterns, even beyond the real world. Thus physics statements are synthetic, while mathematical statements are analytic. Mathematics contains hypotheses, while physics contains theories. Mathematics statements have to be only logically true, while predictions of physics statements must match observed and experimental data.

The distinction is clear-cut, but not always obvious. For example, mathematical physics is the application of mathematics in physics. Its methods are mathematical, but its subject is physical.{{cite web | url=https://www.researchgate.net/journal/0022-2488_Journal_of_Mathematical_Physics | title=Journal of Mathematical Physics | access-date=31 March 2014 | quote=[Journal of Mathematical Physics] purpose is the publication of papers in mathematical physics—that is, the application of mathematics to problems in physics and the development of mathematical methods suitable for such applications and for the formulation of physical theories. | url-status=live | archive-url=https://web.archive.org/web/20140818231853/http://www.researchgate.net/journal/0022-2488_Journal_of_Mathematical_Physics | archive-date=18 August 2014 | df=dmy-all }} The problems in this field start with a "mathematical model of a physical situation" (system) and a "mathematical description of a physical law" that will be applied to that system. Every mathematical statement used for solving has a hard-to-find physical meaning. The final mathematical solution has an easier-to-find meaning, because it is what the solver is looking for.{{clarify|date=August 2015}}

=Fundamental vs. applied physics=

{{Main|Applied physics}}

Physics is a branch of fundamental science (also called basic science). Physics is also called "the fundamental science" because all branches of natural science including chemistry, astronomy, geology, and biology are constrained by laws of physics.[https://feynmanlectures.caltech.edu/I_03.html The Feynman Lectures on Physics Vol. I Ch. 3: The Relation of Physics to Other Sciences]; see also reductionism and special sciences Similarly, chemistry is often called the central science because of its role in linking the physical sciences. For example, chemistry studies properties, structures, and reactions of matter (chemistry's focus on the molecular and atomic scale distinguishes it from physics). Structures are formed because particles exert electrical forces on each other, properties include physical characteristics of given substances, and reactions are bound by laws of physics, like conservation of energy, mass, and charge. Fundamental physics seeks to better explain and understand phenomena in all spheres, without a specific practical application as a goal, other than the deeper insight into the phenomema themselves.

File:Prediction of sound scattering from Schroeder Diffuser.jpg model of sound reflecting from an acoustic diffuser, implemented with classical physics]]

File:Archimedes-screw one-screw-threads with-ball 3D-view animated small.gif, a simple machine for lifting]]

Applied physics is a general term for physics research and development that is intended for a particular use. An applied physics curriculum usually contains a few classes in an applied discipline, like geology or electrical engineering. It usually differs from engineering in that an applied physicist may not be designing something in particular, but rather is using physics or conducting physics research with the aim of developing new technologies or solving a problem.

The approach is similar to that of applied mathematics. Applied physicists use physics in scientific research. For instance, people working on accelerator physics might seek to build better particle detectors for research in theoretical physics.

Physics is used heavily in engineering. For example, statics, a subfield of mechanics, is used in the building of bridges and other static structures. The understanding and use of acoustics results in sound control and better concert halls; similarly, the use of optics creates better optical devices. An understanding of physics makes for more realistic flight simulators, video games, and movies, and is often critical in forensic investigations.

File:Military laser experiment.jpg]]

With the standard consensus that the laws of physics are universal and do not change with time, physics can be used to study things that would ordinarily be mired in uncertainty. For example, in the study of the origin of the Earth, a physicist can reasonably model Earth's mass, temperature, and rate of rotation, as a function of time allowing the extrapolation forward or backward in time and so predict future or prior events. It also allows for simulations in engineering that speed up the development of a new technology.

There is also considerable interdisciplinarity, so many other important fields are influenced by physics (e.g., the fields of econophysics and sociophysics).

See also

{{Portal|Physics}}

  • {{Annotated link|Earth science}}
  • {{Annotated link|Neurophysics}}
  • {{Annotated link|Psychophysics}}
  • {{Annotated link|Relationship between mathematics and physics}}
  • {{Annotated link|Science tourism}}

= Lists =

  • {{Annotated link|List of important publications in physics}}
  • {{Annotated link|List of physicists}}
  • {{Annotated link|Lists of physics equations}}

Notes

{{notelist|30em}}

References

{{Reflist}}

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{{Refend}}