Skip to content

Chemistry · Ch 14 — The p-Block Elements

Chemical Properties

14.10.8

Chemical Properties

Oxidation States and Trends in Chemical Reactivity

Group 16 elements display a wide range of oxidation states (Table 7.6). The stability of the −2-2 state falls steadily down the group, and polonium barely shows it at all. Because oxygen's electronegativity is so high, it is essentially restricted to the −2-2 state, with a rare exception in OF2OF_2, where fluorine — being even more electronegative — forces oxygen into a +2+2 state. The heavier members of the group can instead show +2+2, +4+4 and +6+6 states, of which +4+4 and +6+6 are the most commonly encountered: sulphur, selenium and tellurium typically show +4+4 in their oxygen compounds and +6+6 with fluorine. Down the group, the +6+6 state becomes progressively less stable while the +4+4 state becomes more stable — the familiar inert-pair effect seen elsewhere in the p-block. Bonding in both the +4+4 and +6+6 states is predominantly covalent.

Anomalous Behaviour of Oxygen

As with the first member of every p-block group, oxygen behaves anomalously compared with its heavier congeners, owing to its small size and high electronegativity. One direct consequence is the strong hydrogen bonding present in H2OH_2O — an effect essentially absent in H2SH_2S, despite the structural similarity of the two molecules.

A second consequence is oxygen's limited covalency: lacking accessible d orbitals, oxygen's covalency is capped at four and in practice rarely goes beyond two. The heavier elements of the group, which do have accessible d orbitals, can expand their valence shells and readily exceed a covalency of four.

(i) Reactivity with Hydrogen

All Group 16 elements form hydrides of the general type H2EH_2E (E = O, S, Se, Te, Po), whose properties are compared in Table 7.7:

PropertyH2OH2SH2SeH2Te
m.p/K273188208222
b.p/K373213232269
H–E distance/pm96134146169
HEH angle (°)104929190
ΔfH/kJ mol⁻¹−286−2073100
ΔdissH (H–E)/kJ mol⁻¹463347276238
Dissociation constant1.8×10⁻¹⁶1.3×10⁻⁷1.3×10⁻⁴2.3×10⁻³

Reading across the table, the acidic character of these hydrides increases from H2OH_2O to H2TeH_2Te, a trend traceable to the falling H−EH-E bond dissociation enthalpy down the group — a weaker bond ionises more readily. That same weakening bond also means thermal stability falls from H2OH_2O to H2PoH_2Po. Every hydride except water is a reducing agent, and this reducing power strengthens further from H2SH_2S to H2TeH_2Te.

(ii) Reactivity with Oxygen

The elements form oxides of two general types, EO2EO_2 and EO3EO_3 (E = S, Se, Te or Po). Ozone (O3O_3) and sulphur dioxide (SO2SO_2) are gases, while selenium dioxide (SeO2SeO_2) is a solid. The reducing power of the dioxides falls on descending the group: SO2SO_2 is a reducing agent, while TeO2TeO_2 has flipped to being an oxidising agent. Sulphur, selenium and tellurium additionally form the EO3EO_3-type trioxides (SO3SO_3, SeO3SeO_3, TeO3TeO_3). Both the dioxide and trioxide series are acidic in nature.

(iii) Reactivity towards the Halogens

Group 16 elements form an extensive series of halides of the general types EX6EX_6, EX4EX_4 and EX2EX_2. Across all of these, halide stability falls in the order F−>Cl−>Br−>I−F^- > Cl^- > Br^- > I^-.

Among the hexahalides, only the hexafluorides are stable, and all of these are gases with an octahedral structure; sulphur hexafluoride, SF6SF_6, is exceptionally stable for purely steric reasons — its six fluorine atoms pack tightly and shield the central sulphur from attack. …

Table 7.7Table 7.7: Properties of Hydrides of Group 16 Elements
PropertyH2OH2SH2SeH2Te
m.p/K273188208222
b.p/K373213232269
H–E distance/pm96134146169
HEH angle (°)104929190
ΔfH/kJ mol⁻¹−286−2073100
ΔdissH (H–E)/kJ mol⁻¹463347276238