Misplaced Pages

Ion

Article snapshot taken from Wikipedia with creative commons attribution-sharealike license. Give it a read and then ask your questions in the chat. We can research this topic together.

This is an old revision of this page, as edited by EyeSerene (talk | contribs) at 14:55, 9 August 2007 (Reverted to revision 149364308 by Slartibartfast1992; rv edit test. using TW). The present address (URL) is a permanent link to this revision, which may differ significantly from the current revision.

Revision as of 14:55, 9 August 2007 by EyeSerene (talk | contribs) (Reverted to revision 149364308 by Slartibartfast1992; rv edit test. using TW)(diff) ← Previous revision | Latest revision (diff) | Newer revision → (diff) For other uses, see the electrically charged particle.
An electrostatic potential map of the nitrate ion (NO3−). Areas coloured red are lower in energy than areas colored yellow

An ion is an atom or group of bonded atoms which have lost or gained one or more electrons, making them negatively or positively charged. An ion consisting of a single atom is called a monatomic ion. A negatively charged ion, which has more electrons in its electron shells than it has protons in its nuclei, is known as an anion (IPA: [ˈænaɪən]; an-eye-on) due to its attraction to anodes. A positively-charged ion, which has fewer electrons than protons, is known as a cation (IPA: [ˈkætaɪən]; cat-eye-on) due to its attraction to cathodes. A polyatomic anion that contains oxygen is sometimes known as an oxyanion.

Ions are denoted in the same way as electrically neutral atoms and molecules except for the presence of a superscript indicating the sign of the net electric charge and the number of electrons lost or gained, if more than one. For example: H, SO4. An alternate way of denoting charge is like this: SO4.


Etymology

The word ion is a name given by Michael Faraday, from greek Template:Polytonic, participle of Template:Polytonic, "to go", or Template:Polytonic , "I go"; thus "a goer". So; anion, Template:Polytonic, and cation, κTemplate:Polytonic, mean "(a thing) going up" and "(a thing) going down", respectively; and anode, Template:Polytonic, and cathode, κTemplate:Polytonic, mean "a going up" and "a going down", respectively, from Template:Polytonic, "way," or "road."

Formation

Formation of polyatomic and molecular ions

Polyatomic and molecular ions are often formed by the combination of elemental ions such as H with neutral molecules or by the loss of such elemental ions from neutral molecules. Many of these processes are acid-base reactions, as first theorized by German scientist Lauren Gaither. A simple example of this is the ammonium ion NH4 which can be formed by ammonia NH3 accepting a proton, H. Ammonia and ammonium have the same number of electrons in essentially the same electronic configuration but differ in protons. The charge has been added by the addition of a proton (H) not the addition or removal of electrons. The distinction between this and the removal of an electron from the whole molecule is important in large systems because it usually results in much more stable ions with complete electron shells. For example NH3· is not stable because of an incomplete valence shell around nitrogen and is in fact a radical ion.

Ionization potential

Main article: Ionization potential

The energy required to detach an electron in its lowest energy state from an atom or molecule of a gas with less net electric charge is called the ionization potential, or ionization energy. The nth ionization energy of an atom is the energy required to detach its nth electron after the first n − 1 electrons have already been detached.

Each successive ionization energy is markedly greater than the last. Particularly great increases occur after any given block of atomic orbitals is exhausted of electrons. For this reason, ions tend to form in ways that leave them with full orbital blocks. For example, sodium has one valence electron, in its outermost shell, so in ionized form it is commonly found with one lost electron, as Na. On the other side of the periodic table, chlorine has seven valence electrons, so in ionized form it is commonly found with one gained electron, as Cl. Francium has the lowest ionization energy of all the elements and fluorine has the greatest. The ionization energy of metals is generally much lower than the ionization energy of nonmetals, which is why metals will generally lose electrons to form positively-charged ions while nonmetals will generally gain electrons to form negatively-charged ions.

A neutral atom contains an equal number ddd of Z protons in the nucleus and Z electrons in the electron shell. The electrons' negative charges thus exactly cancel the protons' positive charges. In the simple view of the Free electron model, a passing electron is therefore not attracted to a neutral atom and cannot bind to it. In reality, however, the atomic electrons form a cloud into which the additional electron penetrates, thus being exposed to a net positive charge part of the time. Furthermore, the additional charge displaces the original electrons and all of the Z + 1 electrons rearrange into a new configuration.

Ions

  • Anions are negatively charged ions. They are negatively charged because there is one more electron in its orbits than there would be should it be stable (Eg.: A hydrogen nucleus with two electrons).
  • Cations are ions with positive charges. They are the opposite of anions, since they have one less electron than they should have when stable.
  • Radical ions: radical ions are ions that contain an odd number of electrons and are mostly very reactive and unstable.

Plasma

Main article: Plasma (physics)

A collection of non-aqueous gas-like ions, or even a gas containing a proportion of charged particles, is called a plasma, often called the fourth state of matter because its properties are quite different from solids, liquids, and gases. Astrophysical plasmas containing predominantly a mixture of electrons and protons, may make up as much as 99.9% of visible matter in the universe.

Applications

Ions are essential to life. Sodium, potassium, calcium and other ions play an important role in the cells of living organisms, particularly in cell membranes. They have many practical, everyday applications in items such as smoke detectors, and are also finding use in unconventional technologies such as ion engines. Inorganic dissolved ions are a component of total dissolved solids, an indicator of water quality in widespread use.

Furthermore, negative ions are used in ion therapy which utilizes a special electronic device that generates negatively charged particles. The purpose of this application is that there may be some health benefit to a negatively charged environment, opposed to one that is positively charged.

Ions are found in what has quickly become one of the most prevalent sources for long-lasting, hand-held energy: Lithium-Ion batteries.

Common ions

Common Cations
Common Name Formula Historic Name
Simple Cations
Aluminum Al
Barium Ba
Beryllium Be
Caesium Cs
Calcium Ca
Chromium(II) Cr Chromous
Chromium(III) Cr Chromic
Chromium(VI) Cr Chromyl
Cobalt(II) Co Cobaltous
Cobalt(III) Co Cobaltic
Copper(I) Cu Cuprous
Copper(II) Cu Cupric
Copper(III) Cu
Gallium Ga
Helium He (Alpha particle)
Hydrogen H (Proton)
Iron(II) Fe Ferrous
Iron(III) Fe Ferric
Lead(II) Pb Plumbous
Lead(IV) Pb Plumbic
Lithium Li
Magnesium Mg
Manganese(II) Mn Manganous
Manganese(III) Mn Manganic
Manganese(IV) Mn Manganyl
Manganese(VII) Mn
Mercury(II) Hg Mercuric
Nickel(II) Ni Nickelous
Nickel(III) Ni Nickelic
Potassium K
Silver Ag
Sodium Na
Strontium Sr
Tin(II) Sn Stannous
Tin(IV) Sn Stannic
Zinc Zn
Polyatomic Cations
Ammonium NH4
Hydronium H3O
Nitronium NO2
Mercury(I) Hg2 Mercurous
Common Anions
Formal Name Formula Alt. Name
Simple Anions
Arsenide As
Azide N3
Bromide Br
Chloride Cl
Fluoride F
Hydride H
Iodide I
Nitride N
Oxide O
Phosphide P
Sulphide S
Peroxide O2
Oxoanions
Arsenate AsO4
Arsenite AsO3
Borate BO3
Bromate BrO3
Hypobromite BrO
Carbonate CO3
Hydrogen Carbonate HCO3 Bicarbonate
Hydroxide OH
Chlorate ClO3
Perchlorate ClO4
Chlorite ClO2
Hypochlorite ClO
Chromate CrO4
Dichromate Cr2O7
Iodate IO3
Nitrate NO3
Nitrite NO2
Phosphate PO4
Hydrogen Phosphate HPO4
Dihydrogen Phosphate H2PO4
Permanganate MnO4
Phosphite PO3
Sulphate SO4
Thiosulphate S2O3
Hydrogen Sulphate HSO4 Bisulphate
Sulphite SO3
Hydrogen Sulphite HSO3 Bisulphite
Anions from Organic Acids
Acetate C2H3O2
Formate HCO2
Oxalate C2O4
Hydrogen Oxalate HC2O4 Bioxalate
Other Anions
Hydrogen Sulphide HS Bisulphide
Telluride Te
Amide NH2
Cyanate OCN
Thiocyanate SCN
Cyanide CN

References

  1. Plasma, Plasma, Everywere Science@NASA Headline news, Space Science n° 158, September 7, 1999.
  • This can also be known as a 'Valency table'.

External links

  • Niels Jonassen (Mr. Static) "Are Ions Good for You?" Compliance Engineering, November 2002
  • Graham P. Collins "Ion Power". A web article discussing research applications of ionic states to quantum computing.
  • Department of Education, Newfoundland and Labrador-Canada "Template:PDFlink". A Periodic table reporting ionic charges for every chemical element.
Categories:
Ion Add topic