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Chemistry · Ch 7 — The p-Block Elements

Chemical Properties

7.1.7

Chemical Properties

Oxidation states and trends in chemical reactivity

The elements of Group 15 most commonly display the oxidation states −3-3, +3+3 and +5+5. Descending the group, size and metallic character both increase, and this steadily weakens the tendency to adopt the −3-3 state — by the time bismuth is reached, compounds in the −3-3 oxidation state are essentially unknown. The +5+5 state shows the opposite trend in reverse: it becomes progressively less stable down the group, so that bismuth forms only one well-characterised +5+5 compound, BiF5BiF_5. This falling stability of +5+5 alongside a rising stability of +3+3 (favoured by the inert-pair effect) is one of the defining chemical trends of the group.

Nitrogen is unusual in also showing the +1+1, +2+2 and +4+4 oxidation states when it combines with oxygen, over and above −3-3, +3+3 and +5+5. Curiously, though, it never reaches a +5+5 state with the halogens, because nitrogen has no available dd orbitals to house electrons donated by another atom while forming extra bonds. Phosphorus, similarly, adopts +1+1 and +4+4 states in a handful of its oxoacids.

For nitrogen, every intermediate oxidation state between +1+1 and +4+4 tends to disproportionate in acidic solution — for example, nitrous acid disproportionates to nitric acid and nitric oxide:

3HNO2→HNO3+H2O+2NO3HNO_2 \rightarrow HNO_3 + H_2O + 2NO

Phosphorus behaves similarly: almost all of its intermediate oxidation states disproportionate into the +5+5 and −3-3 states, whether in acid or in alkali. Moving further down the group, however, the +3+3 state of arsenic, antimony and bismuth becomes progressively more resistant to disproportionation.

Because only four orbitals — one ss and three pp — are available for bonding, nitrogen's maximum covalency is limited to four. The heavier elements of the group, in contrast, have empty dd orbitals in their outer shell that can be pressed into service for extra bonds, letting them expand their covalency beyond four, as seen in the octahedral ion PF6−PF_6^-.

Anomalous properties of nitrogen

Nitrogen stands apart from the rest of the group because of its small size, high electronegativity, high ionisation enthalpy, and the complete absence of dd orbitals in its valence shell. It has a distinctive capacity to form strong pπp\pi–pπp\pi multiple bonds, both with itself and with other small, highly electronegative atoms such as carbon and oxygen. The heavier elements cannot do this: their atomic orbitals are too large and diffuse to overlap effectively side-on. Consequently nitrogen exists as the diatomic molecule N2N_2, held together by a genuine triple bond (one σ\sigma and two π\pi), which gives it an exceptionally high bond enthalpy of 941.4 kJ mol−1^{-1}. Phosphorus, arsenic and antimony, unable to form such multiple bonds, instead settle for single PP–PP, AsAs–AsAs and SbSb–SbSb bonds in their elemental forms, while bismuth exists as a metal held together by metallic bonding.

Despite nitrogen's fondness for multiple bonding, its single NN–NN bond is actually weaker than a single PP–PP bond — the short NN–NN bond length forces the non-bonding electrons on the two nitrogen atoms unusually close together, and the resulting interelectronic repulsion destabilises the bond. This is why nitrogen shows a comparatively weak tendency towards catenation.

The missing dd orbitals also mean that nitrogen cannot form dπd\pi–pπp\pi bonds of the kind seen in the heavier elements — for instance R3P=OR_3P=O or R3P=CH2R_3P=CH_2 (where RR is an alkyl group) have no nitrogen analogue. Phosphorus and arsenic can go a step further and form dπd\pi–dπd\pi bonds with transition metals, which is why compounds such as P(C2H5)3P(C_2H_5)_3 and As(C6H5)3As(C_6H_5)_3 are able to act as ligands.

(i) Reactivity towards hydrogen. Every element of Group 15 forms a hydride of the general type EH3EH_3 (where EE = N, P, As, Sb or Bi). Some properties of these hydrides are set out in Table 7.2 below, and they show a smooth gradation down the group.

PropertyNH3NH_3PH3PH_3AsH3AsH_3SbH3SbH_3BiH3BiH_3
Melting point/K195.2139.5156.7185–
Boiling point/K238.5185.5210.6254.6290
(E(E–H)H) Distance/pm101.7141.9151.9170.7–
HH–EE–HH angle (∘^\circ)107.893.691.891.3–
ΔfH∘\Delta_fH^\circ / kJ mol−1^{-1}–46.113.466.4145.1278
ΔdissH∘(E\Delta_{diss}H^\circ(E–H)H) / kJ mol−1^{-1}389322297255–

The bond-dissociation enthalpy falls steadily from NH3NH_3 to BiH3BiH_3, which is the same trend as the falling stability of the hydrides down the group — and, as a direct consequence, their reducing character rises. Ammonia is only a mild reducing agent, while BiH3BiH_3 is the strongest reductant of the whole series. Basicity follows the order NH3>PH3>AsH3>SbH3≥BiH3NH_3 > PH_3 > AsH_3 > SbH_3 \geq BiH_3. Because nitrogen is both small and highly electronegative, NH3NH_3 engages in hydrogen bonding in both the solid and liquid states — exactly as water does — which is why its melting and boiling points are noticeably higher than its molecular mass alone would predict, and higher than those of PH3PH_3. …

Table 7.2Properties of Hydrides of Group 15 Elements
PropertyNH3PH3AsH3SbH3BiH3
Melting point/K195.2139.5156.7185–
Boiling point/K238.5185.5210.6254.6290
(E–H) Distance/pm101.7141.9151.9170.7–
HEH angle (°)107.893.691.891.3–