词条 | Plasma (physics) | ||||||||||||||||||||||
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| title = Plasma | data1 = {{nowrap| }} | data2 = {{nowrap| }} | data3 = Top: Lightning and neon lights are commonplace generators of plasma. Bottom left: A plasma globe, illustrating some of the more complex plasma phenomena, including filamentation. Bottom right: A plasma trail from the Space Shuttle Atlantis during re-entry into Earth's atmosphere, as seen from the International Space Station.}}Plasma ({{ety|grc|πλάσμα|moldable substance}}[1]) is one of the four fundamental states of matter, and was first described by chemist Irving Langmuir[2] in the 1920s.[2] Plasma can be artificially generated by heating or subjecting a neutral gas to a strong electromagnetic field to the point where an ionized gaseous substance becomes increasingly electrically conductive, and long-range electromagnetic fields dominate the behaviour of the matter.[3] Plasma and ionized gases have properties and display behaviours unlike those of the other states, and the transition between them is mostly a matter of nomenclature[2] and subject to interpretation.[4] Based on the surrounding environmental temperature and density, partially ionized or fully ionized forms of plasma may be produced. Neon signs and lightning are examples of partially ionized plasma.[5] The Earth's ionosphere is a plasma and the magnetosphere contains plasma in the Earth's surrounding space environment. The interior of the Sun is an example of fully ionized plasma,[6] along with the solar corona[7] and stars.[8] Positive charges in ions are achieved by stripping away electrons orbiting the atomic nuclei, where the total number of electrons removed is related to either increasing temperature or the local density of other ionized matter. This also can be accompanied by the dissociation of molecular bonds,[11] though this process is distinctly different from chemical processes of ion interactions in liquids or the behaviour of shared ions in metals. The response of plasma to electromagnetic fields is used in many modern technological devices, such as plasma televisions or plasma etching.[9] Plasma may be the most abundant form of ordinary matter in the universe,[10] although this hypothesis is currently tentative based on the existence and unknown properties of dark matter. Plasma is mostly associated with stars, extending to the rarefied intracluster medium and possibly the intergalactic regions.[11] HistoryThe word plasma comes {{ety|grc|πλάσμα|moldable substance}}[1] or 'jelly',[12] and describes the behaviour of the ionized atomic nuclei and the electrons within the surrounding region of the plasma. Very simply, each of these nuclei are suspended in a movable sea of electrons. Plasma was first identified in a Crookes tube, and so described by Sir William Crookes in 1879 (he called it "radiant matter").[13] The nature of this "cathode ray" matter was subsequently identified by British physicist Sir J.J. Thomson in 1897.[14] The term "plasma" was coined by Irving Langmuir in 1928.[15] Lewi Tonks and Harold Mott-Smith, both of whom worked with Irving Langmuir in the 1920s, recall that Langmuir first used the word "plasma" in analogy with blood.[16][17] Mott-Smith recalls, in particular, that the transport of electrons from thermionic filaments reminded Langmuir of "the way blood plasma carries red and white corpuscles and germs."[18] Langmuir described the plasma he observed as follows: "Except near the electrodes, where there are sheaths containing very few electrons, the ionized gas contains ions and electrons in about equal numbers so that the resultant space charge is very small. We shall use the name plasma to describe this region containing balanced charges of ions and electrons."[15]{{Continuum mechanics}} Properties and parametersDefinitionPlasma is a state of matter in which an ionized gaseous substance becomes highly electrically conductive to the point that long-range electric and magnetic fields dominate the behaviour of the matter.[20][21] The plasma state can be contrasted with the other states: solid, liquid, and gas. Plasma is an electrically neutral medium of unbound positive and negative particles (i.e. the overall charge of a plasma is roughly zero). Although these particles are unbound, they are not "free" in the sense of not experiencing forces. Moving charged particles generate an electric current within a magnetic field, and any movement of a charged plasma particle affects and is affected by the fields created by the other charges. In turn this governs collective behaviour with many degrees of variation.[22][23] Three factors define a plasma:[24][25]
TemperaturePlasma temperature is commonly measured in kelvin or electronvolts and is, informally, a measure of the thermal kinetic energy per particle. High temperatures are usually needed to sustain ionisation, which is a defining feature of a plasma. The degree of plasma ionisation is determined by the electron temperature relative to the ionization energy (and more weakly by the density), in a relationship called the Saha equation. At low temperatures, ions and electrons tend to recombine into bound states—atoms[29]—and the plasma will eventually become a gas. In most cases the electrons are close enough to thermal equilibrium that their temperature is relatively well-defined; this is true even when there is a significant deviation from a Maxwellian energy distribution function, for example, due to UV radiation, energetic particles, or strong electric fields. Because of the large difference in mass, the electrons come to thermodynamic equilibrium amongst themselves much faster than they come into equilibrium with the ions or neutral atoms. For this reason, the ion temperature may be very different from (usually lower than) the electron temperature. This is especially common in weakly ionized technological plasmas, where the ions are often near the ambient temperature. Fully vs. partially (weakly) ionized gases{{main|Degree of ionization}}{{see also|Spitzer resistivity}}For plasma to exist, ionisation is necessary. The term "plasma density" by itself usually refers to the "electron density", that is, the number of free electrons per unit volume. The degree of ionisation of a plasma is the proportion of atoms that have lost or gained electrons, and is controlled by the electron and ion temperatures and electron-ion vs electron-neutral collision frequencies. The degree of ionisation, , is defined as , where is the number density of ions and is the number density of neutral atoms. The electron density is related to this by the average charge state{{Explain|date=August 2018}} of the ions through , where is the number density of electrons. In a plasma, the electron-ion collision frequency is much greater than the electron-neutral collision frequency . Therefore, with a weak degree of ionization , the electron-ion collision frequency can equal the electron-neutral collision frequency: is the limit separating a plasma from being partially or fully ionized.
Most of "technological" (engineered) plasmas are weakly ionized gases. Thermal vs. nonthermal (cold) plasmas{{main|Nonthermal plasma}}{{see also|Anisothermal plasma}}Based on the relative temperatures of the electrons, ions and neutrals, plasmas are classified as "thermal" or "non-thermal" (also referred to as "cold plasmas").
A particular and unusual case of "inverse" nonthermal plasma is the very high temperature plasma produced by the Z machine, where ions are much hotter than electrons.[32][33] Plasma potentialSince plasmas are very good electrical conductors, electric potentials play an important role.{{clarify|what role?|date=October 2017}} The average potential in the space between charged particles, independent of how it can be measured, is called the "plasma potential", or the "space potential". If an electrode is inserted into a plasma, its potential will generally lie considerably below the plasma potential due to what is termed a Debye sheath. The good electrical conductivity of plasmas makes their electric fields very small. This results in the important concept of "quasineutrality", which says the density of negative charges is approximately equal to the density of positive charges over large volumes of the plasma (), but on the scale of the Debye length there can be charge imbalance. In the special case that double layers are formed, the charge separation can extend some tens of Debye lengths.{{citation needed|date=February 2017}} The magnitude of the potentials and electric fields must be determined by means other than simply finding the net charge density. A common example is to assume that the electrons satisfy the Boltzmann relation: Differentiating this relation provides a means to calculate the electric field from the density: It is possible to produce a plasma that is not quasineutral. An electron beam, for example, has only negative charges. The density of a non-neutral plasma must generally be very low, or it must be very small, otherwise, it will be dissipated by the repulsive electrostatic force.[35] In astrophysical plasmas, Debye screening prevents electric fields from directly affecting the plasma over large distances, i.e., greater than the Debye length. However, the existence of charged particles causes the plasma to generate, and be affected by, magnetic fields. This can and does cause extremely complex behaviour, such as the generation of plasma double layers, an object that separates charge over a few tens of Debye lengths. The dynamics of plasmas interacting with external and self-generated magnetic fields are studied in the academic discipline of magnetohydrodynamics.[36] MagnetizationPlasma with a magnetic field strong enough to influence the motion of the charged particles is said to be magnetized. A common quantitative criterion is that a particle on average completes at least one gyration around the magnetic field before making a collision, i.e., , where is the "electron gyrofrequency" and is the "electron collision rate". It is often the case that the electrons are magnetized while the ions are not. Magnetized plasmas are anisotropic, meaning that their properties in the direction parallel to the magnetic field are different from those perpendicular to it. While electric fields in plasmas are usually small due to the high conductivity, the electric field associated with a plasma moving in a magnetic field is given by (where is the electric field, is the velocity, and is the magnetic field), and is not affected by Debye shielding.[37] Comparison of plasma and gas phasesPlasma is often called the fourth state of matter after solid, liquids and gases, despite plasma typically being an ionized gas.[38][39][40] It is distinct from these and other lower-energy states of matter. Although it is closely related to the gas phase in that it also has no definite form or volume, it differs in a number of ways, including the following:
Plasmas in space science and astronomy{{further|Astrophysical plasma|Interstellar medium|Intergalactic space}}{{see also|Magnetohydrodynamics}}Plasmas are by far the most common phase of ordinary matter in the universe, both by mass and by volume.[42] Above the Earth's surface, the ionosphere is a plasma,[43] and the magnetosphere contains plasma.[44] Within our Solar System, interplanetary space is filled with the plasma expelled via the solar wind, extending from the Sun's surface out to the heliopause. Furthermore, all the distant stars, and much of interstellar space or intergalactic space is also likely filled with plasma, albeit at very low densities. Astrophysical plasmas are also observed in Accretion disks around stars or compact objects like white dwarfs, neutron stars, or black holes in close binary star systems.[45] Plasma is associated with ejection of material in astrophysical jets, which have been observed with accreting black holes[46] or in active galaxies like M87's jet that possibly extends out to 5,000 light-years.[47] Common plasmasPlasmas can appear in nature in various forms and locations, which can be usefully broadly summarised in the following Table: {{clear}}
Complex plasma phenomenaAlthough the underlying equations governing plasmas are relatively simple, plasma behaviour is extraordinarily varied and subtle: the emergence of unexpected behaviour from a simple model is a typical feature of a complex system. Such systems lie in some sense on the boundary between ordered and disordered behaviour and cannot typically be described either by simple, smooth, mathematical functions, or by pure randomness. The spontaneous formation of interesting spatial features on a wide range of length scales is one manifestation of plasma complexity. The features are interesting, for example, because they are very sharp, spatially intermittent (the distance between features is much larger than the features themselves), or have a fractal form. Many of these features were first studied in the laboratory, and have subsequently been recognized throughout the universe. Examples of complexity and complex structures in plasmas include: FilamentationStriations or string-like structures,[49] also known as Birkeland currents, are seen in many plasmas, like the plasma ball, the aurora,[50] lightning,[51] electric arcs, solar flares,[52] and supernova remnants.[53] They are sometimes associated with larger current densities, and the interaction with the magnetic field can form a magnetic rope structure.[54] High power microwave breakdown at atmospheric pressure also leads to the formation of filamentary structures.[55] (See also Plasma pinch) Filamentation also refers to the self-focusing of a high power laser pulse. At high powers, the nonlinear part of the index of refraction becomes important and causes a higher index of refraction in the center of the laser beam, where the laser is brighter than at the edges, causing a feedback that focuses the laser even more. The tighter focused laser has a higher peak brightness (irradiance) that forms a plasma. The plasma has an index of refraction lower than one, and causes a defocusing of the laser beam. The interplay of the focusing index of refraction, and the defocusing plasma makes the formation of a long filament of plasma that can be micrometers to kilometers in length.[56] One interesting aspect of the filamentation generated plasma is the relatively low ion density due to defocusing effects of the ionized electrons.[57] (See also Filament propagation) Non-neutral plasmaThe strength and range of the electric force and the good conductivity of plasmas usually ensure that the densities of positive and negative charges in any sizeable region are equal ("quasineutrality"). A plasma with a significant excess of charge density, or, in the extreme case, is composed of a single species, is called a non-neutral plasma. In such a plasma, electric fields play a dominant role. Examples are charged particle beams, an electron cloud in a Penning trap and positron plasmas.[58] Dusty plasma/grain plasmaA dusty plasma contains tiny charged particles of dust (typically found in space). The dust particles acquire high charges and interact with each other. A plasma that contains larger particles is called grain plasma. Under laboratory conditions, dusty plasmas are also called complex plasmas.[59] Impermeable plasmaImpermeable plasma is a type of thermal plasma which acts like an impermeable solid with respect to gas or cold plasma and can be physically pushed. Interaction of cold gas and thermal plasma was briefly studied by a group led by Hannes Alfvén in 1960s and 1970s for its possible applications in insulation of fusion plasma from the reactor walls.[60] However, later it was found that the external magnetic fields in this configuration could induce kink instabilities in the plasma and subsequently lead to an unexpectedly high heat loss to the walls.[61] In 2013, a group of materials scientists reported that they have successfully generated stable impermeable plasma with no magnetic confinement using only an ultrahigh-pressure blanket of cold gas. While spectroscopic data on the characteristics of plasma were claimed to be difficult to obtain due to the high pressure, the passive effect of plasma on synthesis of different nanostructures clearly suggested the effective confinement. They also showed that upon maintaining the impermeability for a few tens of seconds, screening of ions at the plasma-gas interface could give rise to a strong secondary mode of heating (known as viscous heating) leading to different kinetics of reactions and formation of complex nanomaterials.[62] Mathematical descriptions{{main|Plasma modeling}}To completely describe the state of a plasma, all of the particle locations and velocities that describe the electromagnetic field in the plasma region would need to be written down. However, it is generally not practical or necessary to keep track of all the particles in a plasma. Therefore, plasma physicists commonly use less detailed descriptions, of which there are two main types: Fluid modelFluid models describe plasmas in terms of smoothed quantities, like density and averaged velocity around each position (see Plasma parameters). One simple fluid model, magnetohydrodynamics, treats the plasma as a single fluid governed by a combination of Maxwell's equations and the Navier–Stokes equations. A more general description is the two-fluid plasma picture, where the ions and electrons are described separately. Fluid models are often accurate when collisionality is sufficiently high to keep the plasma velocity distribution close to a Maxwell–Boltzmann distribution. Because fluid models usually describe the plasma in terms of a single flow at a certain temperature at each spatial location, they can neither capture velocity space structures like beams or double layers, nor resolve wave-particle effects. Kinetic modelKinetic models describe the particle velocity distribution function at each point in the plasma and therefore do not need to assume a Maxwell–Boltzmann distribution. A kinetic description is often necessary for collisionless plasmas. There are two common approaches to kinetic description of a plasma. One is based on representing the smoothed distribution function on a grid in velocity and position. The other, known as the particle-in-cell (PIC) technique, includes kinetic information by following the trajectories of a large number of individual particles. Kinetic models are generally more computationally intensive than fluid models. The Vlasov equation may be used to describe the dynamics of a system of charged particles interacting with an electromagnetic field. In magnetized plasmas, a gyrokinetic approach can substantially reduce the computational expense of a fully kinetic simulation. Artificial plasmasMost artificial plasmas are generated by the application of electric and/or magnetic fields through a gas. Plasma generated in a laboratory setting and for industrial use can be generally categorized by:
Generation of artificial plasmaJust like the many uses of plasma, there are several means for its generation, however, one principle is common to all of them: there must be energy input to produce and sustain it.[71] For this case, plasma is generated when an electric current is applied across a dielectric gas or fluid (an electrically non-conducting material) as can be seen in the adjacent image, which shows a discharge tube as a simple example (DC used for simplicity). The potential difference and subsequent electric field pull the bound electrons (negative) toward the anode (positive electrode) while the cathode (negative electrode) pulls the nucleus.[64] As the voltage increases, the current stresses the material (by electric polarization) beyond its dielectric limit (termed strength) into a stage of electrical breakdown, marked by an electric spark, where the material transforms from being an insulator into a conductor (as it becomes increasingly ionized). The underlying process is the Townsend avalanche, where collisions between electrons and neutral gas atoms create more ions and electrons (as can be seen in the figure on the right). The first impact of an electron on an atom results in one ion and two electrons. Therefore, the number of charged particles increases rapidly (in the millions) only "after about 20 successive sets of collisions",[73] mainly due to a small mean free path (average distance travelled between collisions). Electric arcWith ample current density and ionisation, this forms a luminous electric arc (a continuous electric discharge similar to lightning) between the electrodes.{{#tag:ref|The material undergoes various "regimes" or stages (e.g. saturation, breakdown, glow, transition and thermal arc) as the voltage is increased under the voltage-current relationship. The voltage rises to its maximum value in the saturation stage, and thereafter it undergoes fluctuations of the various stages; while the current progressively increases throughout.[65]|group="Note"}} Electrical resistance along the continuous electric arc creates heat, which dissociates more gas molecules and ionises the resulting atoms (where degree of ionisation is determined by temperature), and as per the sequence: solid-liquid-gas-plasma, the gas is gradually turned into a thermal plasma.{{#tag:ref|Across literature, there appears to be no strict definition on where the boundary is between a gas and plasma. Nevertheless, it is enough to say that at 2,000°C the gas molecules become atomized, and ionized at 3,000 °C and "in this state, [the] gas has a liquid like viscosity at atmospheric pressure and the free electric charges confer relatively high electrical conductivities that can approach those of metals."[75]|group="Note"}} A thermal plasma is in thermal equilibrium, which is to say that the temperature is relatively homogeneous throughout the heavy particles (i.e. atoms, molecules and ions) and electrons. This is so because when thermal plasmas are generated, electrical energy is given to electrons, which, due to their great mobility and large numbers, are able to disperse it rapidly and by elastic collision (without energy loss) to the heavy particles.[75][66] Examples of industrial/commercial plasmaBecause of their sizable temperature and density ranges, plasmas find applications in many fields of research, technology and industry. For example, in: industrial and extractive metallurgy,[67][68] surface treatments such as plasma spraying (coating), etching in microelectronics,[69] metal cutting[70] and welding; as well as in everyday vehicle exhaust cleanup and fluorescent/luminescent lamps,[71] fuel ignition, while even playing a part in supersonic combustion engines for aerospace engineering.[72] Low-pressure discharges
Atmospheric pressure
MHD converters{{main|magnetohydrodynamic converter|magnetohydrodynamic generator|magnetohydrodynamic drive}}{{see also|Electrothermal instability}}A world effort was triggered in the 1960s to study magnetohydrodynamic converters in order to bring MHD power conversion to market with commercial power plants of a new kind, converting the kinetic energy of a high velocity plasma into electricity with no moving parts at a high efficiency. Research was also conducted in the field of supersonic and hypersonic aerodynamics to study plasma interaction with magnetic fields to eventually achieve passive and even active flow control around vehicles or projectiles, in order to soften and mitigate shock waves, lower thermal transfer and reduce drag. Such ionized gases used in "plasma technology" ("technological" or "engineered" plasmas) are usually weakly ionized gases in the sense that only a tiny fraction of the gas molecules are ionized.[82] These kinds of weakly ionized gases are also nonthermal "cold" plasmas. In the presence of magnetics fields, the study of such magnetized nonthermal weakly ionized gases involves resistive magnetohydrodynamics with low magnetic Reynolds number, a challenging field of plasma physics where calculations require dyadic tensors in a 7-dimensional phase space. When used in combination with a high Hall parameter, a critical value triggers the problematic electrothermal instability which limited these technological developments. Research{{anchor|Fields of active research}}Plasmas are the object of study of the academic field of plasma science or plasma physics,[83] including sub-disciplines such as space plasma physics. It currently involves the following fields of active research and features across many journals, whose interest includes: {{col-begin|width=auto}}{{col-break}}
PsychologicalResearch indicates that magnetic fields created by plasma during a thunderstorm can induce hallucination in the human mind.[85] A declassified Ministry of Defense report states that it is "medically proven" that magnetic fields related to plasma cause hallucinations and that "the close proximity of plasma-related fields can adversely affect a vehicle or person".[86] The report also indicated that scientists in the former Soviet Union are pursuing related technology for military purposes. Research examplesSee also{{portal|Physics}}{{colbegin|colwidth=20em}}
Notes1. ^1 πλάσμα {{webarchive|url=https://web.archive.org/web/20130618012819/http://www.perseus.tufts.edu/hopper/text?doc=Perseus%3Atext%3A1999.04.0057%3Aentry%3Dpla%2Fsma |date=18 June 2013 }}, Henry George Liddell, Robert Scott, A Greek English Lexicon, on Perseus 2. ^{{cite book |last1=Morozov |first1=A.I.|date=2012 |title=Introduction to Plasma Dynamics |page=17 |publisher=CRC Press| isbn=978-1-4398-8132-3 |url=https://books.google.com/?id=DB0L6P3TwiYC&printsec=frontcover&dq=Introduction+to+Plasma+Dynamics+morozov#v=onepage&q&f=false}} 3. ^{{cite book |last1=Morozov |first1=A.I.|date=2012 |title=Introduction to Plasma Dynamics |page=30 |publisher=CRC Press| isbn=978-1-4398-8132-3}} 4. ^{{cite book |last1=Morozov |first1=A.I.|date=2012 |title=Introduction to Plasma Dynamics |page=4−5 |publisher=CRC Press|isbn=978-1-4398-8132-3}} 5. ^{{Cite web | title = How Lightning Works | publisher = HowStuffWorks | url = http://science.howstuffworks.com/nature/natural-disasters/lightning2.htm | deadurl = no | archiveurl = https://web.archive.org/web/20140407080201/http://science.howstuffworks.com/nature/natural-disasters/lightning2.htm | archivedate = 7 April 2014 | df = dmy-all }} 6. ^{{Cite book|last=Phillips|first=K. J. H.|date=1995|title=Guide to the Sun|page=295|publisher=Cambridge University Press|url=https://books.google.com/?id=idwBChjVP0gC&printsec=frontcover&dq=Guide+to+the+Sun+phillips#v=onepage&q&f=false|isbn=978-0-521-39788-9|deadurl=no|archiveurl= https://web.archive.org/web/20180115215631/https://books.google.com/books?id=idwBChjVP0gC&printsec=frontcover&dq=Guide+to+the+Sun+phillips&hl=en&sa=X&ved=0ahUKEwiBj4Gbj5bXAhXrrVQKHfnAAKUQ6AEIKDAA#v=onepage&q&f=false|archivedate=15 January 2018|df=dmy-all}} 7. ^{{cite book|last=Aschwanden|first=M. J.|year=2004|title=Physics of the Solar Corona. An Introduction|publisher=Praxis Publishing|isbn=978-3-540-22321-4}} 8. ^{{Cite book|last =Piel|first=A.|date=2010|title= Plasma Physics: An Introduction to Laboratory, Space, and Fusion Plasmas|pages= 4–5|publisher=Springer|url=https://books.google.com/?id=9cA0DwAAQBAJ&pg=PR8#v=onepage&q&f=false|isbn=978-3-642-10491-6|deadurl= no|archiveurl=https://web.archive.org/web/20160105142523/https://books.google.com/books?hl=en#v=onepage&q&f=false|archivedate=5 January 2016 |df = dmy-all}} 9. ^{{cite book|last1=Chu|first1=P.K.|last2=Lu|first2=XinPel|date=2013|title=Low Temperature Plasma Technology: Methods and Applications|publisher=CRC Press|isbn=978-1-4665-0990-0}} 10. ^{{cite book|last1=Chu|first1=P.K.|last2=Lu|first2=XinPel|date=2013|title=Low Temperature Plasma Technology: Methods and Applications| page=3|publisher=CRC Press|isbn=978-1-4665-0990-0}} 11. ^{{cite book|last1=Chiuderi|first1=C.|last2=Velli|first2=M.|date=2015|title=Basics of Plasma Astrophysics|page=17|publisher=Springer|isbn=978-88-470-5280-2}} 12. ^1 2 {{cite book |last1=Goldston |first1=R.J. |last2=Rutherford |first2=P.H. |date=1995 |title=Introduction to Plasma Physics |page=1−2 |publisher=Taylor & Francis |isbn=978-0-7503-0183-1 |url=https://books.google.com/?id=7kM7yEFUGnAC&printsec=frontcover&dq=chen+%22introduction+to+plasma+physics%22#v=onepage&q&f=false}} 13. ^Crookes presented a lecture to the British Association for the Advancement of Science, in Sheffield, on Friday, 22 August 1879 {{cite web |url=http://www.worldcatlibraries.org/wcpa/top3mset/5dcb9349d366f8ec.html |title=Archived copy |accessdate=2006-05-24 |deadurl=no |archiveurl=https://web.archive.org/web/20060709162459/http://www.worldcatlibraries.org/wcpa/top3mset/5dcb9349d366f8ec.html |archivedate=9 July 2006 |df=dmy-all }} {{cite web |url=http://www.tfcbooks.com/mall/more/315rm.htm |title=Archived copy |accessdate=2006-05-24 |deadurl=no |archiveurl=https://web.archive.org/web/20060613212651/http://tfcbooks.com/mall/more/315rm.htm |archivedate=13 June 2006 |df=dmy-all }} 14. ^Announced in his evening lecture to the Royal Institution on Friday, 30 April 1897, and published in {{cite journal|journal=Philosophical Magazine|volume=44|issue=269|pages=293–316|title=J. J. Thomson (1856–1940)|url=http://web.lemoyne.edu/~GIUNTA/thomson1897.html|date=1897|doi=10.1080/14786449708621070|last1=Thomson|first1=J. J.|deadurl=no|archiveurl=https://web.archive.org/web/20150812112129/http://web.lemoyne.edu/%7EGIUNTA/thomson1897.html|archivedate=12 August 2015|df=dmy-all}} 15. ^1 {{Cite journal | last1 = Langmuir | first1 = I. | title = Oscillations in Ionized Gases | doi = 10.1073/pnas.14.8.627 | journal = Proceedings of the National Academy of Sciences | volume = 14 | issue = 8 | pages = 627–637 | year = 1928 | pmid = 16587379| pmc = 1085653| bibcode = 1928PNAS...14..627L | url = http://www.pnas.org/content/14/8/627 | deadurl = no | archiveurl = https://web.archive.org/web/20170707054853/http://www.pnas.org/content/14/8/627 | archivedate = 7 July 2017 | df = dmy-all }} 16. ^{{cite article |first=Lewi |last=Tonks |title=The birth of "plasma" |year=1967 |journal=American Journal of Physics |volume=35 |pages=857–858 |doi=10.1119/1.1974266|bibcode=1967AmJPh..35..857T }} 17. ^{{cite book|author=Brown, Sanborn C.|chapter=Chapter 1: A Short History of Gaseous Electronics|editors=HIRSH, Merle N. e OSKAM, H. J.|title=Gaseous Electronics|volume=1|publisher=Academic Press|date=1978|isbn=978-0-12-349701-7|chapter-url=https://books.google.com/?id=C1UmeQ_E0_AC&pg=PA1#v=onepage&q=blood&f=false|deadurl=no|archiveurl=https://web.archive.org/web/20171023230956/https://books.google.co.uk/books?hl=en&lr=&id=C1UmeQ_E0_AC&oi=fnd&pg=PA1&ots=vwabB53YqL&sig=SI8DiBRSQI_yGy_DrspkxNLR0rs#v=onepage&q=blood&f=false|archivedate=23 October 2017|df=dmy-all}} 18. ^{{cite article |first=Harold M.|last=Mott-Smith |journal=Nature |volume=233 |page=219 |year=1971 |title=History of "plasmas" |url=https://www.nature.com/nature/journal/v233/n5316/pdf/233219a0.pdf|bibcode=1971Natur.233..219M |doi=10.1038/233219a0 }} 19. ^Plasma fountain Source {{webarchive|url=https://web.archive.org/web/20080906131534/http://pwg.gsfc.nasa.gov/istp/news/9812/solar1.html |date=6 September 2008 }}, press release: Solar Wind Squeezes Some of Earth's Atmosphere into Space {{webarchive|url=https://web.archive.org/web/20090320143601/http://pwg.gsfc.nasa.gov/istp/news/9812/solarwind.html |date=20 March 2009 }} 20. ^1 {{cite book | title=Introduction to Plasma Physics and controlled fusion | author=Chen, Francis F. | year=1984 | publisher=Springer International Publishing | url=https://books.google.com/?id=WGbaBwAAQBAJ&printsec=frontcover&dq=editions:9PGss7GnX-MC#v=onepage&q&f=false | pages=2–3 | deadurl=no | archiveurl=https://web.archive.org/web/20180115215631/https://books.google.com/books?id=WGbaBwAAQBAJ&printsec=frontcover&dq=editions:9PGss7GnX-MC&hl=en&sa=X&ved=0ahUKEwimuOfm_pXXAhVrzFQKHTrOCaUQ6AEIKDAA#v=onepage&q&f=false | archivedate=15 January 2018 | df=dmy-all | isbn=9781475755954 }} 21. ^1 {{cite book | title=Plasma Physics and Fusion Energy | author=Freidberg, Jeffrey P. | year=2008 | publisher=Cambridge University Press | url=https://books.google.com/books?id=Vyoe88GEVz4C | page=121 | deadurl=no | archiveurl=https://web.archive.org/web/20161224204205/https://books.google.com/books?id=Vyoe88GEVz4C | archivedate=24 December 2016 | df=dmy-all | isbn=9781139462150 }} 22. ^1 {{cite book |title=Plasma Physics: An Introduction to the Theory of Astrophysical, Geophysical & Laboratory Plasmas |last=Sturrock |first=Peter A. |date=1994 |publisher=Cambridge University Press |isbn=978-0-521-44810-9}} 23. ^{{cite book |title=The Framework of Plasma Physics |author=Hazeltine, R.D. |author2=Waelbroeck, F.L. |date=2004 |publisher=Westview Press |isbn=978-0-7382-0047-7}} 24. ^{{cite book|author=Dendy, R. 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