Write a note on metal halides. Explain the reactivity of halogens with metals. Write a short note on interhalogen compounds.
(N/A) Halogens react with metals to form metal halides. For example,bromine reacts with magnesium to give magnesium bromide.
$Mg_{(s)} + Br_{2(l)} \rightarrow MgBr_{2(s)}$
The order of reactivity of halogens with metals is: $F_{2} > Cl_{2} > Br_{2} > I_{2}$.
The ionic character of the metal halides decreases in the order: $MF > MCl > MBr > MI$,where $M$ is a monovalent metal.
For example: $NaF > NaCl > NaBr > NaI$ (ionic character decreases).
If a metal exhibits more than one oxidation state,the halides in the higher oxidation state are more covalent than those in the lower oxidation state.
For example: $SnCl_{4}, PbCl_{4}, SbCl_{5}$,and $UF_{6}$ are more covalent than $SnCl_{2}, PbCl_{2}, SbCl_{3}$,and $UF_{4}$ respectively.
Halogens combine among themselves to form a number of compounds with the general formula $XX'_{n}$ (where $n = 1, 3, 5, 7$),known as interhalogen compounds.
$X'$: Smaller size halogen atom.
$X$: Larger size halogen atom.
Interhalogen compounds are formed due to the difference in electronegativities of the halogens. As the ratio between the radii of $X$ and $X'$ increases,the number of atoms per molecule also increases. Thus,iodine$(VII)$ fluoride $(IF_{7})$ has the maximum number of atoms ($8$ atoms) per molecule.
$Mg_{(s)} + Br_{2(l)} \rightarrow MgBr_{2(s)}$
The order of reactivity of halogens with metals is: $F_{2} > Cl_{2} > Br_{2} > I_{2}$.
The ionic character of the metal halides decreases in the order: $MF > MCl > MBr > MI$,where $M$ is a monovalent metal.
For example: $NaF > NaCl > NaBr > NaI$ (ionic character decreases).
If a metal exhibits more than one oxidation state,the halides in the higher oxidation state are more covalent than those in the lower oxidation state.
For example: $SnCl_{4}, PbCl_{4}, SbCl_{5}$,and $UF_{6}$ are more covalent than $SnCl_{2}, PbCl_{2}, SbCl_{3}$,and $UF_{4}$ respectively.
Halogens combine among themselves to form a number of compounds with the general formula $XX'_{n}$ (where $n = 1, 3, 5, 7$),known as interhalogen compounds.
$X'$: Smaller size halogen atom.
$X$: Larger size halogen atom.
| $X$ | $X'$ |
|---|---|
| $I, Br, Cl$ | $F, Cl, Br; F, Cl; F$ |
Interhalogen compounds are formed due to the difference in electronegativities of the halogens. As the ratio between the radii of $X$ and $X'$ increases,the number of atoms per molecule also increases. Thus,iodine$(VII)$ fluoride $(IF_{7})$ has the maximum number of atoms ($8$ atoms) per molecule.
Explore More
Similar Questions
Justify,by giving reactions,that among halogens,fluorine is the best oxidant and among hydrohalic compounds,hydroiodic acid is the best reductant.
Medium
View SolutionAlthough the electron gain enthalpy of fluorine is less negative compared to chlorine, fluorine is a stronger oxidizing agent than chlorine. Why?
Difficult
View SolutionWhich of the following halogen acids is least acidic?
Easy
View SolutionFluorine exhibits only $-1$ oxidation state whereas other halogens exhibit $+1, +3, +5$ and $+7$ oxidation states also. Explain.
Easy
View SolutionWhat is obtained upon strong heating of $H_5IO_6$?
Medium
View SolutionVedclass Products
For Students
Vedclass Test Series
Mock tests in real JEE/NEET style with performance analysis. 5-day free trial.
Start Free TrialFor Teachers
Exam Paper Generator
Generate Set A/B/C/D exam papers from 7.5L+ questions in 2 minutes. 3 chapters free.
Try FreeFor Institutes
Online Exam Module
Live online exams with unlimited students, 360° analytics & white-label branding.
See Demo