Polyhalogen ions

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Script error: No such module "Distinguish". Polyhalogen ions are a group of polyatomic cations and anions containing halogens only. The ions can be classified into two classes, isopolyhalogen ions which contain one type of halogen only, and heteropolyhalogen ions with more than one type of halogen.

Introduction

Numerous polyhalogen ions have been found, with their salts isolated in the solid state and structurally characterized. The following tables summarize the known species.[1][2][3][4][5][6]

Isopolyhalogen cations
Diatomic species *Page Module:Chem2/styles.css has no content.[Cl2]+, [Br2]+, [I2]+
Triatomic species Page Module:Chem2/styles.css has no content.[Cl3]+, [Br3]+, [I3]+
Tetraatomic species Page Module:Chem2/styles.css has no content.[Cl4]+, [I4]2+, [F4]+
Pentaatomic species Page Module:Chem2/styles.css has no content.[Br5]+, [I5]+
Heptaatomic species Page Module:Chem2/styles.css has no content.[I7]+
Higher species Page Module:Chem2/styles.css has no content.[I15]3+

Page Template:Visible anchor/styles.css has no content.* Page Module:Chem2/styles.css has no content.[Cl2]+ can only exist as Page Module:Chem2/styles.css has no content.[Cl2O2]2+ at low temperatures, a charge-transfer complex from Page Module:Chem2/styles.css has no content.O2 to Page Module:Chem2/styles.css has no content.[Cl2]+.[2] Free Page Module:Chem2/styles.css has no content.[Cl2]+ is only known from its electronic band spectrum obtained in a low-pressure discharge tube.[3]

Page Template:Visible anchor/styles.css has no content. The existence of Page Module:Chem2/styles.css has no content.[I7]+ is possible but still uncertain.[1]

Heteropolyhalogen cations
Triatomic species Page Module:Chem2/styles.css has no content.[ClF2]+, [Cl2F]+, [BrF2]+, [IF2]+, [ICl2]+, [IBrCl]+, [IBr2]+, [I2Cl]+, [I2Br]+
Pentaatomic species Page Module:Chem2/styles.css has no content.[ClF4]+, [BrF4]+, [IF4]+, [I3Cl2]+
Heptaatomic species Page Module:Chem2/styles.css has no content.[ClF6]+, [BrF6]+, [IF6]+
Isopolyhalogen anions
Triatomic species Page Module:Chem2/styles.css has no content.[Cl3], [Br3], [I3], [F3]
Tetraatomic species Page Module:Chem2/styles.css has no content.[Br4]2−, [I4]2−
Pentaatomic species Page Module:Chem2/styles.css has no content.[I5]
Heptaatomic species Page Module:Chem2/styles.css has no content.[I7]
Octaatomic species Page Module:Chem2/styles.css has no content.[Br8]2−, [I8]2−
Higher species Page Module:Chem2/styles.css has no content.[I9], [I10]2−, [I10]4−, [I11], [I12]2−, [I13]3−, [I16]2−, [I22]4−, [I26]3−, [I26]4−, [I28]4−, [I29]3−
Heteropolyhalogen anions
Triatomic species Page Module:Chem2/styles.css has no content.[ClF2], [BrF2], [BrCl2], [IF2], [ICl2], [IBrF], [IBrCl], [IBr2], [I2Cl], [I2Br], [AtBrCl], [AtBr2], [AtICl], [AtIBr], [AtI2]
Pentaatomic species Page Module:Chem2/styles.css has no content.[ClF4], [BrF4], [IF4], [ICl3F], [ICl4], [IBrCl3], [I2Cl3], [I2BrCl2], [I2Br2Cl], [I2Br3], [I4Cl], [I4Br]
Hexaatomic species Page Module:Chem2/styles.css has no content.[IF5]2−
Heptaatomic species Page Module:Chem2/styles.css has no content.[ClF6], [BrF6], [IF6], [I3Br4]
Nonaatomic species Page Module:Chem2/styles.css has no content.[IF8]

Structure

File:Structures of some isopolyhalogen cations.png
Structures of some isopolyhalogen cations
File:Solid state structures of the polyhalogen ions (BrF2)+. (ClF2)+, (ICl2)+.png
Solid state structures of the polyhalogen ions Page Module:Chem2/styles.css has no content.[BrF2]+, [ClF2]+, [ICl2]+ in their Page Module:Chem2/styles.css has no content.[SbF6] salts.
File:Solid state structure of the (I3Cl2)+ ion.png
Solid state structure of Page Module:Chem2/styles.css has no content.[I3Cl2]+ in Page Module:Chem2/styles.css has no content.[I3Cl2]+[SbCl6].
File:Structure of the (I2F12)- dimer.png
Structure of the Page Module:Chem2/styles.css has no content.[I2F12]2− dimer present in Page Module:Chem2/styles.css has no content.[Me4N]+[IF6].

Most of the structures of the ions have been determined by IR spectroscopy, Raman spectroscopy and X-ray crystallography. The polyhalogen ions always have the heaviest and least electronegative halogen present in the ion as the central atom, making the ion asymmetric in some cases. For example, Page Module:Chem2/styles.css has no content.[Cl2F]+ has a structure of Page Module:Chem2/styles.css has no content.[Cl−Cl−F]+ but not Page Module:Chem2/styles.css has no content.[Cl−F−Cl]+.

In general, the structures of most heteropolyhalogen ions and lower isopolyhalogen ions were in agreement with the VSEPR model. However, there were exceptional cases. For example, when the central atom is heavy and has seven lone pairs, such as Page Module:Chem2/styles.css has no content.[BrF6] and Page Module:Chem2/styles.css has no content.[IF6], they have a regular octahedral arrangement of fluoride ligands instead of a distorted one due to the presence of a stereochemically inert lone pair. More deviations from the ideal VSEPR model were found in the solid state structures due to strong cation-anion interactions, which also complicates interpretation of vibrational spectroscopic data. In all known structures of the polyhalogen anion salts, the anions make very close contact, via halogen bridges, with the counter-cations.[4] For example, in the solid state, Page Module:Chem2/styles.css has no content.[IF6] is not regularly octahedral, as solid state structure of Page Module:Chem2/styles.css has no content.[(CH3)4N]+[IF6] reveals loosely bound Page Module:Chem2/styles.css has no content.[I2F11]2− dimers. Significant cation-anion interactions were also found in Page Module:Chem2/styles.css has no content.[BrF2]+[SbF6], [ClF2]+[SbF6], [BrF4]+[Sb6F11].[2]

General structures of selected heteropolyhalogen ions
Linear (or almost linear) Page Module:Chem2/styles.css has no content.[ClF2], [BrF2], [BrCl2], [IF2], [ICl2], [IBr2], [I2Cl], [I2Br]
Bent Page Module:Chem2/styles.css has no content.[ClF2]+, [Cl2F]+, [BrF2]+, [IF2]+, [ICl2]+, [I2Cl]+, [IBr2]+, [I2Br]+, [IBrCl]+
Square planar Page Module:Chem2/styles.css has no content.[ClF4], [BrF4], [IF4], [ICl4]
Disphenoidal (or seesaw) Page Module:Chem2/styles.css has no content.[ClF4]+, [BrF4]+, [IF4]+
Pentagonal planar Page Module:Chem2/styles.css has no content.[IF5]2−
Octahedral Page Module:Chem2/styles.css has no content.[ClF6]+, [BrF6]+, [IF6]+, Page Module:Chem2/styles.css has no content.[ClF6], [BrF6], [IF6]
Square antiprismatic Page Module:Chem2/styles.css has no content.[IF8]

Page Template:Visible anchor/styles.css has no content. Page Module:Chem2/styles.css has no content.[IF5]2− is one of the two Page Module:Chem2/styles.css has no content.XYn-type species known to have the rare pentagonal planar geometry, the other being Page Module:Chem2/styles.css has no content.[XeF5].

Page Template:Visible anchor/styles.css has no content. Page Module:Chem2/styles.css has no content.[ClF6] is distorted octahedral as the stereochemical inert-pair effect is not significant in the chlorine atom.

The Page Module:Chem2/styles.css has no content.[I3Cl2]+ and Page Module:Chem2/styles.css has no content.[I3Br2]+ ions have a trans-Z-type structure, analogous to that of Page Module:Chem2/styles.css has no content.[I5]+.

File:Solid state structure of the (BrF4)+ ion.png
Solid state structure of Page Module:Chem2/styles.css has no content.[BrF4]+ in Page Module:Chem2/styles.css has no content.[BrF4]+[Sb2F11].

Higher polyiodides

Script error: No such module "Labelled list hatnote".

The polyiodide ions have much more complicated structures. Discrete polyiodides usually have a linear sequence of iodine atoms and iodide ions, and are described in terms of association between Page Module:Chem2/styles.css has no content.I2, Page Module:Chem2/styles.css has no content.I and Page Module:Chem2/styles.css has no content.[I3] units, which reflects the origin of the polyiodide. In the solid states, the polyiodides can interact with each other to form chains, rings, or even complicated two-dimensional and three-dimensional networks.

Bonding

The bonding in polyhalogen ions mostly invoke the predominant use of p-orbitals. Significant d-orbital participation in the bonding is improbable as much promotional energy will be required, while scant s-orbital participation is expected in iodine-containing species due to the inert-pair effect, suggested by data from Mössbauer spectroscopy. However, no bonding model has been capable of reproducing such wide range of bond lengths and angles observed so far.[3]

As expected from the fact that an electron is removed from the antibonding orbital when Page Module:Chem2/styles.css has no content.X2 is ionized to Page Module:Chem2/styles.css has no content.[X2]+, the bond order as well as the bond strength in Page Module:Chem2/styles.css has no content.[X2]+ gets higher, consequently the interatomic distances in the molecular ion is less than those in Page Module:Chem2/styles.css has no content.X2.

Linear or nearly-linear triatomic polyhalides have weaker and longer bonds compared with that in the corresponding diatomic interhalogen or halogen, consistent with the additional repulsion between atoms as the halide ion is added to the neutral molecule. Another model involving the use of resonance theory exists, for example, Page Module:Chem2/styles.css has no content.[ICl2] can be viewed as the resonance hybrid of the following canonical forms:

File:Canonical forms of (ICl2)-.png

Evidence supporting this theory comes from the bond lengths (255 pm in Page Module:Chem2/styles.css has no content.[ICl2] and 232 pm in ICl(g)) and bond stretching wavenumbers (267 and 222 cm−1 for symmetric and asymmetric stretching in Page Module:Chem2/styles.css has no content.[ICl2] compared with 384 cm−1 in ICl), which suggests a bond order of about 0.5 for each I–Cl bonds in Page Module:Chem2/styles.css has no content.[ICl2], consistent with the interpretation using the resonance theory. Other triatomic species Page Module:Chem2/styles.css has no content.[XY2] can be similarly interpreted.[2]

Even though they have a reduced bond order, all three halogen atoms are tightly bound. The fluorine–fluorine bond of trifluoride, with bond order 0.5, has a bond-strength is 30 kcal/mol, only 8 kcal/mol less than the fluorine–fluorine bond in difluorine whose bond order is 1.[7]

Synthesis

The formation of polyhalogen ions can be viewed as the self-dissociation of their parent interhalogens or halogens:

Polyhalogen cations

There are two general strategies for preparing polyhalogen cations:

  • By reacting the appropriate interhalogen with a Lewis acid (such as the halides of B, Al, P, As, Sb) either in an inert or oxidizing solvent (such as anhydrous HF) or without one, to give a heteropolyhalogen cation.
Page Module:Chem2/styles.css has no content.XYn + MYm → [XYn−1]+ + [MYm+1]
  • By an oxidative process, in which the halogen or interhalogen is reacted with an oxidizer and a Lewis acid to give the cation:
Page Module:Chem2/styles.css has no content.Cl2 + ClF + AsF5 → [Cl3]+[AsF6]

In some cases the Lewis acid (the fluoride acceptor) itself acts as an oxidant:

Page Module:Chem2/styles.css has no content.3 I2 + 3 SbF5 → 2 [I3]+[SbF6] + SbF3

Usually the first method is employed for preparing heteropolyhalogen cations, and the second one is applicable to both. The oxidative process is useful in the preparation of the cations Page Module:Chem2/styles.css has no content.[IBr2]+, [ClF6]+, [BrF6]+, as their parent interhalogens, Page Module:Chem2/styles.css has no content.IBr3, ClF7, BrF7 respectively, has never been isolated:

Page Module:Chem2/styles.css has no content.Br2 + IOSO2F → [IBr2]+[SO3F]
Page Module:Chem2/styles.css has no content.2 ClF5 + 2 PtF6 → [ClF6]+[PtF6] + [ClF4]+[PtF6]
Page Module:Chem2/styles.css has no content.BrF5 + [KrF]+[AsF6] → [BrF6]+[AsF6] + Kr

The preparation of some individual species are briefly summarized in the table below with equations:[1][2][3][4]

Synthesis of some polyhalogen cations
Species Relevant chemical equation Additional conditions required
Page Module:Chem2/styles.css has no content.[Cl2]+ (as Page Module:Chem2/styles.css has no content.[Cl2O2]+) Page Module:Chem2/styles.css has no content.Cl2 + [O2]+[SbF6] → [Cl2O2]+[SbF6] in anhydrous HF at low temperatures
Page Module:Chem2/styles.css has no content.[Br2]+ Page Module:Chem2/styles.css has no content.Br2 (in BrSO3F) + 3 SbF5 → [Br2]+[Sb3F16] (not balanced) at room temperature
Page Module:Chem2/styles.css has no content.[I2]+ Page Module:Chem2/styles.css has no content.2 I2 + S2O6F2 → 2 [I2]+[SO3F] in Page Module:Chem2/styles.css has no content.HSO3F
Page Module:Chem2/styles.css has no content.[Cl3]+ Page Module:Chem2/styles.css has no content.Cl2 + ClF + AsF5 → [Cl3]+[AsF6] at a temperature of 195 K (-78 °C)
Page Module:Chem2/styles.css has no content.[Br3]+ Page Module:Chem2/styles.css has no content.3 Br2 + 2 [O2]+[AsF6] → 2 [Br3]+[AsF6] + 2 O2
Page Module:Chem2/styles.css has no content.[I3]+ Page Module:Chem2/styles.css has no content.3 I2 + S2O6F2 → 2 [I3]+[SO3F]
Page Module:Chem2/styles.css has no content.[Cl4]+ Page Module:Chem2/styles.css has no content.2 Cl2 + IrF6 → [Cl4]+[IrF6] in anhydrous HF, at a temperature below 193 K (-80 °C)
Page Module:Chem2/styles.css has no content.[I4]2+ Page Module:Chem2/styles.css has no content.2 I2 + 3 AsF5 → [I4]2+[AsF6]2 + AsF3 in liquid Page Module:Chem2/styles.css has no content.SO2
Page Module:Chem2/styles.css has no content.[Br5]+ Page Module:Chem2/styles.css has no content.8 Br2 + 3 [XeF]+[AsF6] → 3 [Br5]+[AsF6] + 3 Xe + BrF3
Page Module:Chem2/styles.css has no content.[I5]+ Page Module:Chem2/styles.css has no content.2 I2 + ICl + AlCl3 → [I5]+[AlCl4]
Page Module:Chem2/styles.css has no content.[I7]+ Page Module:Chem2/styles.css has no content.7 I2 + S2O6F2 → 2 I7SO3F
Page Module:Chem2/styles.css has no content.[ClF2]+ Page Module:Chem2/styles.css has no content.ClF3 + AsF5 → [ClF2]+[AsF6]
Page Module:Chem2/styles.css has no content.[Cl2F]+ Page Module:Chem2/styles.css has no content.2 ClF + AsF5 → [Cl2F]+[AsF6] at a temperature below 197 K
Page Module:Chem2/styles.css has no content.[BrF2]+ Page Module:Chem2/styles.css has no content.5 BrF3 + 2 Au → 3 BrF + 2 [BrF2]+[AuF4] with excess Page Module:Chem2/styles.css has no content.BrF3 required
Page Module:Chem2/styles.css has no content.[IF2]+ Page Module:Chem2/styles.css has no content.IF3 + AsF5 → [IF2]+[AsF6]
Page Module:Chem2/styles.css has no content.[ICl2]+ Page Module:Chem2/styles.css has no content.ICl3 + SbCl5 → [ICl2]+[SbCl6]
Page Module:Chem2/styles.css has no content.[IBr2]+ Page Module:Chem2/styles.css has no content.Br2 + IOSO2F → [IBr2]+[SO3F]
Page Module:Chem2/styles.css has no content.[ClF4]+ Page Module:Chem2/styles.css has no content.ClF5 + SbF5 → [ClF4]+[SbF6]
Page Module:Chem2/styles.css has no content.[BrF4]+ Page Module:Chem2/styles.css has no content.BrF5 + AsF5 → [BrF4]+[AsF6]
Page Module:Chem2/styles.css has no content.[IF4]+ Page Module:Chem2/styles.css has no content.IF5 + 2 SbF5 → [IF4]+[Sb2F11]
Page Module:Chem2/styles.css has no content.[ClF6]+ Page Module:Chem2/styles.css has no content.Cs2[NiF6] + 5 AsF5 + ClF5 → [ClF6]+[AsF6] + Ni[AsF6]2 + 2 Cs[AsF6]
Page Module:Chem2/styles.css has no content.[BrF6]+ Page Module:Chem2/styles.css has no content.[KrF]+[AsF6] + BrF5 → [BrF6]+[AsF6] + Kr
Page Module:Chem2/styles.css has no content.[IF6]+ Page Module:Chem2/styles.css has no content.IF7 + BrF3 → [IF6]+[BrF4][dubiousdiscuss]

Page Template:Visible anchor/styles.css has no content. In this reaction, the active oxidizing species is Page Module:Chem2/styles.css has no content.[NiF3]+, which is formed in situ in the Page Module:Chem2/styles.css has no content.Cs2[NiF6]/Page Module:Chem2/styles.css has no content.AsF5/HF system. It is an even more powerful oxidizing and fluorinating agent than Page Module:Chem2/styles.css has no content.PtF6.

Polyhalogen anions

For polyhalogen anions, there are two general preparation strategies as well:

The preparation of some individual species are briefly summarized in the table below with equations:[1][2][3][4]

Synthesis of some polyhalogen anions
Species Relevant chemical equation Additional conditions required
Page Module:Chem2/styles.css has no content.[Cl3], [Br3], [I3] Page Module:Chem2/styles.css has no content.X2 + X → [X3] (X = Cl, Br, I)
Page Module:Chem2/styles.css has no content.[Br3] Page Module:Chem2/styles.css has no content.Br2 + [(CH3CH2CH2CH2)4N]+Br → [(CH3CH2CH2CH2)4N]+[Br3] in 1,2-dichloroethane or liquid sulfur dioxide. Page Module:Chem2/styles.css has no content.[Br3] does not exist in solution and is only formed when the salt crystallizes out.
Page Module:Chem2/styles.css has no content.[Br5] Page Module:Chem2/styles.css has no content.2 Br2 + [(CH3CH2CH2CH2)4N]+Br → [(CH3CH2CH2CH2)4N]+[Br5] in 1,2-dichloroethane or liquid sulfur dioxide, with excess Page Module:Chem2/styles.css has no content.Br2
Page Module:Chem2/styles.css has no content.[ClF2] Page Module:Chem2/styles.css has no content.ClF + CsF → Cs+[ClF2]
Page Module:Chem2/styles.css has no content.[BrCl2][8]Template:Rp Page Module:Chem2/styles.css has no content.Br2 + Cl2 + 2 CsCl → 2 Cs+[BrCl2]
Page Module:Chem2/styles.css has no content.[ICl2][8]Template:Rp Page Module:Chem2/styles.css has no content.KI + Cl2 → K+[ICl2]
Page Module:Chem2/styles.css has no content.[IBr2][8]Template:Rp Page Module:Chem2/styles.css has no content.CsI + Br2 → Cs+[IBr2]
Page Module:Chem2/styles.css has no content.[AtBr2], [AtICl], [AtIBr], [AtI2] Page Module:Chem2/styles.css has no content.AtY + X → [AtXY] (X = I, Br, Cl; Y = I, Br)
Page Module:Chem2/styles.css has no content.[ClF4] Page Module:Chem2/styles.css has no content.NOF + ClF3 → [NO]+[ClF4]
Page Module:Chem2/styles.css has no content.[BrF4] Page Module:Chem2/styles.css has no content.6 KCl + 8 BrF3 → 6 K+[BrF4] + 3 Cl2 + Br2 excess Page Module:Chem2/styles.css has no content.BrF3 needed
Page Module:Chem2/styles.css has no content.[IF4] Page Module:Chem2/styles.css has no content.2 XeF2 + [(CH3)4N]+I → [(CH3)4N]+[IF4] + 2 Xe the reactants were mixed at 242 K, then warmed to 298 K for the reaction to proceed
Page Module:Chem2/styles.css has no content.[ICl4][8]Template:Rp Page Module:Chem2/styles.css has no content.KI + ICl3 → K+[ICl4]
Page Module:Chem2/styles.css has no content.[IF5]2− Page Module:Chem2/styles.css has no content.IF3 + 2 [(CH3)4N]+F → [(CH3)4N+]2[IF5]2−
Page Module:Chem2/styles.css has no content.[IF6] Page Module:Chem2/styles.css has no content.IF5 + CsF → Cs+[IF6]
Page Module:Chem2/styles.css has no content.[I3Br4] Page Module:Chem2/styles.css has no content.Ph4P]+Br + 3 IBr → [Ph4P]+[I3Br4]
Page Module:Chem2/styles.css has no content.[IF8] Page Module:Chem2/styles.css has no content.IF7 + [(CH3)4N]+F → [(CH3)4N]+[IF8] in acetonitrile

The higher polyiodides were formed upon crystallization of solutions containing various concentrations of Page Module:Chem2/styles.css has no content.I and Page Module:Chem2/styles.css has no content.I2. For instance, the monohydrate of Page Module:Chem2/styles.css has no content.K+[I3] crystallizes when a saturated solution containing appropriate amounts of Page Module:Chem2/styles.css has no content.I2 and KI is cooled.[8]Template:Rp

Properties

Stability

In general, a large counter cation or anion (such as Page Module:Chem2/styles.css has no content.Cs+ and Page Module:Chem2/styles.css has no content.[SbF6]) can help stabilize the polyhalogen ions formed in the solid state from lattice energy considerations, as the packing efficiency increases.

The polyhalogen cations are strong oxidizing agents, as indicated by the fact that they can only be prepared in oxidative liquids as a solvent, such as oleum. The most oxidizing and therefore most unstable ones are the species Page Module:Chem2/styles.css has no content.[X2]+ and Page Module:Chem2/styles.css has no content.[XF6]+ (X = Cl, Br), followed by Page Module:Chem2/styles.css has no content.[X3]+ and Page Module:Chem2/styles.css has no content.[IF6]+.

The stability of the Page Module:Chem2/styles.css has no content.[X2]+ salts (X = Br, I) are thermodynamically quite stable. However, their stability in solution depends on the superacid solvent. For example, Page Module:Chem2/styles.css has no content.[I2]+ is stable in fluoroantimonic acid (HF with 0.2 N Page Module:Chem2/styles.css has no content.SbF5, H0 = −20.65), but disproportionates to Page Module:Chem2/styles.css has no content.[I3]+, Page Module:Chem2/styles.css has no content.[I5]+ and Page Module:Chem2/styles.css has no content.I2 when weaker fluoride acceptors, like Page Module:Chem2/styles.css has no content.NbF5, Page Module:Chem2/styles.css has no content.TaF5 or NaF, are added instead of Page Module:Chem2/styles.css has no content.SbF5.[4]

Page Module:Chem2/styles.css has no content.14 [I2]+ + 5 F → 9 [I3]+ + IF5

For polyhalogen anions with the same number of atoms, the more stable ones are those with a heavier halogen at the center, symmetric ions are also more stable than asymmetric ones. therefore the stability of the anions decrease in the order:

Page Module:Chem2/styles.css has no content.[I3] > [IBr2] > [ICl2] > [I2Br] > [Br3] > [BrCl2] > [Br2Cl]

Heteropolyhalogen ions with a coordination number larger than or equal to four can only exist with fluoride ligands.

Color

Most polyhalogen ions are intensely colored, with deepened color as the atomic weight of the constituent element increases. The well-known starch-iodine complex has a deep blue color due to the linear Page Module:Chem2/styles.css has no content.[I5] ions present in the amylose helix.[4] While the intensity of polyhalogen anion absorption bands in the UV–visible range are often influenced by the solvent dielectric constant, their location (determining the overall color) is relatively solvent-independent.[9] Some colors of common species are listed below:[3]

Chemical properties

The heteropolyhalogen cations are explosively reactive oxidants, and the cations often have higher reactivity than their parent interhalogens and decompose by reductive pathways. As expected from the highest oxidation state of +7 in Page Module:Chem2/styles.css has no content.[ClF6]+, Page Module:Chem2/styles.css has no content.[BrF6]+ and Page Module:Chem2/styles.css has no content.[IF6]+, these species are extremely strong oxidizing agents, demonstrated by the reactions shown below:

Page Module:Chem2/styles.css has no content.2 O2 + 2 [BrF6]+[AsF6] → 2 [O2]+[AsF6] + 2 BrF5 + F2
Page Module:Chem2/styles.css has no content.Rn + [IF6]+[SbF6] → [RnF]+[SbF6] + IF5

Polyhalogen cations with lower oxidation states tend to disproportionate. For example, Page Module:Chem2/styles.css has no content.[Cl2F]+ is unstable in solution and disproportionates completely in HF/Page Module:Chem2/styles.css has no content.SbF5 mixture even at 197 K:

Page Module:Chem2/styles.css has no content.2 [Cl2F]+ → [ClF2]+ + [Cl3]+

Page Module:Chem2/styles.css has no content.[I2]+ reversibly dimerizes at 193 K, and is observed as the blue color of paramagnetic Page Module:Chem2/styles.css has no content.[I2]+ dramatically shifts to the red-brown color of diamagnetic Page Module:Chem2/styles.css has no content.[I4]2+, together with a drop in paramagnetic susceptibility and electrical conductivity when the solution is cooled to below 193 K:[2]

Page Module:Chem2/styles.css has no content.2 [I2]+ ⇌ [I4]2+

The dimerization can be attributed to the overlapping of the half-filled π* orbitals in two Page Module:Chem2/styles.css has no content.[I2]+.

Page Module:Chem2/styles.css has no content.[Cl4]+ in Page Module:Chem2/styles.css has no content.[Cl4]+[IrF6] is structurally analogous to Page Module:Chem2/styles.css has no content.[I4]2+, but decomposes at 195 K to give Page Module:Chem2/styles.css has no content.Cl2, and salts of Page Module:Chem2/styles.css has no content.[Cl3]+ instead of Page Module:Chem2/styles.css has no content.[Cl2]+.[2]

Attempts to prepare Page Module:Chem2/styles.css has no content.ClF7 and Page Module:Chem2/styles.css has no content.BrF7 by fluorinating Page Module:Chem2/styles.css has no content.[ClF6]+ and Page Module:Chem2/styles.css has no content.[BrF6]+ using NOF have met with failure, because the following reactions occurred:[3]

Page Module:Chem2/styles.css has no content.[ClF6]+[PtF6] + NOF → [NO]+[PtF6] + ClF5 + F2
Page Module:Chem2/styles.css has no content.[BrF6]+[AsF6] + 2 NOF → [NO]+[AsF6] + [NO]+[BrF6] + F2

The anions are less reactive compared to the cations, and are generally weaker oxidants than their parent interhalogens. They are less reactive towards organic compounds, and some salts are of quite high thermal stability. Salts containing polyhalogen anions of the type Page Module:Chem2/styles.css has no content.M+[XmYnZp], where m + n + p = {3, 5, 7, 9...}, tend to dissociate into simple monohalide salts between Page Module:Chem2/styles.css has no content.M+ and the most electronegative halogen, so that the monohalide has the highest lattice energy. An interhalogen is usually formed as the other product. The salt Page Module:Chem2/styles.css has no content.[(CH3)4N]+[ClF4] decomposes at about 100 °C, and salts of Page Module:Chem2/styles.css has no content.[ClF6] are thermally unstable and can explode even at −31 °C.[4]

See also

References

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  1. ^ a b c d Page Module:Citation/CS1/styles.css has no content.King, R. Bruce (2005). "Chlorine, Bromine, Iodine, & Astatine: Inorganic Chemistry". Encyclopedia of Inorganic Chemistry (2nd ed.). Wiley. p. 747. ISBN 9780470862100.
  2. ^ a b c d e f g h i Page Module:Citation/CS1/styles.css has no content.Housecroft, Catherine E.; Sharpe, Alan G. (2008). "Chapter 17: The group 17 elements". Inorganic Chemistry (3rd ed.). Pearson. p. 547. ISBN 978-0-13-175553-6.
  3. ^ a b c d e f g Page Module:Citation/CS1/styles.css has no content.Greenwood, Norman N.; Earnshaw, Alan (1997). Chemistry of the Elements (2nd ed.). Butterworth-Heinemann. p. 843. doi:10.1016/C2009-0-30414-6. ISBN 978-0-08-037941-8.
  4. ^ a b c d e f g h Page Module:Citation/CS1/styles.css has no content.Cotton, F. Albert; Wilkinson, Geoffrey; Murillo, Carlos A.; Bochmann, Manfred (1999). Advanced Inorganic Chemistry (6th ed.). Wiley. ISBN 978-0471199571.
  5. ^ a b Page Module:Citation/CS1/styles.css has no content.Wiberg, Egon; Wiberg, Nils; Holleman, Arnold Frederick (2001). Inorganic Chemistry. Academic Press. pp. 419–420. ISBN 0-12-352651-5.
  6. ^ Page Module:Citation/CS1/styles.css has no content.Sonnenberg, Karsten; Mann, Lisa; Redeker, Frenio A.; Schmidt, Benjamin; Riedel, Sebastian (2020-02-04). "Polyhalogen and Polyinterhalogen Anions from Fluorine to Iodine". Angewandte Chemie International Edition. 59 (14): 5464–5493. Bibcode:2020ACIE...59.5464S. doi:10.1002/anie.201903197. ISSN 1433-7851. PMID 31090163. S2CID 155093006.
  7. ^ Page Module:Citation/CS1/styles.css has no content.Braïda, Benoît; Hiberty, Philippe C. (2004). "What Makes the Trifluoride Anion F3 So Special? A Breathing-Orbital Valence Bond ab Initio Study" (PDF). J. Am. Chem. Soc. 126 (45): 14890–14898. Bibcode:2004JAChS.12614890B. doi:10.1021/ja046443a. PMID 15535716. S2CID 23159174.
  8. ^ a b c d e Page Module:Citation/CS1/styles.css has no content.Brauer, G., ed. (1963). Handbook of Preparative Inorganic Chemistry (2nd ed.). New York: Academic Press.
  9. ^ Page Module:Citation/CS1/styles.css has no content.Stepin, B D; Plyushchev, V E; Fakeev, A A (30 November 1965). "Anionhalogenates of the alkali metals and ammonium". Russian Chemical Reviews. 34 (11): 811–826. Bibcode:1965RuCRv..34..811S. doi:10.1070/RC1965v034n11ABEH001566.
  10. ^ a b c d e f Page Module:Citation/CS1/styles.css has no content.Turova, Nataliya Ya. [in русский] (1997). Неорганическая химия в таблицах [Inorganic Chemistry in Tables] (in русский). Moscow: Higher Chemical College of the Russian Academy of Sciences. p. 10.
  11. ^ Page Module:Citation/CS1/styles.css has no content.Andrews, Lester (April 1976). "Optical spectra of the difluoride, dichloride, and trichloride ions in the matrix-isolated M+F2, M+Cl2, and M+Cl3 species". Journal of the American Chemical Society. 98 (8): 2147–2152. Bibcode:1976JAChS..98.2147A. doi:10.1021/ja00424a022. The strong 251-nm Cl3 band observed here is also supportive of the 230-nm aqueous solution assignments; however, the absence of absorption near 320 nm following exposure to the W lamp indicates that most of the long wavelength absorption in the aqueous solution studies was due to unreacted Cl2 in solution, which is, of course, in equilibrium with Cl3.
  12. ^ Page Module:Citation/CS1/styles.css has no content.Camarao Novo, Lauren V.; Sherman, Madison T.; Bombardier, Cayden C.; Lau, Nathanael (22 October 2025). "Spectrophotometric Exploration of the Mechanism of Dichloroiodate (ICl2) Formation from NaI, NaOCl, and HCl". ACS Omega. 10 (43) acsomega.5c07421: 51640. doi:10.1021/acsomega.5c07421. PMC 12593118. PMID 41210821.