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Exercises · 5.25

Q.Explain the violet colour of the complex [Ti(H2O)6]3+[Ti(H_2O)_6]^{3+} on the basis of crystal field theory.

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The violet colour of [Ti(H2O)6]3+[Ti(H_2O)_6]^{3+} arises from a single d-d electronic transition in the t2g1t_{2g}^1 configuration, where the lone electron absorbs blue-green light (≈ 20,300 cm⁻¹, ~498 nm) and the complementary transmitted colour is violet.

Why Crystal Field Theory Explains Colour

Transition metal complexes appear coloured because electrons in partially filled d-orbitals can absorb visible light and jump to a higher energy level. The key is that in an octahedral field, the five degenerate d-orbitals split into two sets: the lower-energy t2gt_{2g} (three orbitals) and the higher-energy ege_g (two orbitals). The energy gap between them, denoted Δo\Delta_o or 10Dq10Dq, determines which wavelength of light gets absorbed.

For [Ti(H2O)6]3+[Ti(H_2O)_6]^{3+}, titanium is in the +3 oxidation state. Ti has atomic number 22, so Ti³⁺ has the electronic configuration [Ar] 3d1[Ar]\,3d^1. This single d-electron is the entire story — there are no other d-electrons to complicate things with electron-electron repulsion or multiple transitions.

Octahedral crystal field splitting: Δo=E(eg)−E(t2g)\Delta_o = E(e_g) - E(t_{2g})

Step-by-Step Reasoning

  1. Identify the metal ion and its d-electron count.

    Ti in [Ti(H2O)6]3+[Ti(H_2O)_6]^{3+} is Ti³⁺. The ground state configuration is 3d13d^1. In an octahedral field, this single electron occupies the lower-energy t2gt_{2g} set. The ege_g orbitals are empty.

  2. Determine the possible electronic transition.

    The only allowed d-d transition is from t2gt_{2g} to ege_g: the electron absorbs a photon of energy exactly equal to Δo\Delta_o and jumps up. No other transitions are possible because there is only one electron.

  3. Find the magnitude of Δo\Delta_o for this complex.

    Experimentally, the absorption spectrum of [Ti(H2O)6]3+[Ti(H_2O)_6]^{3+} shows a single broad peak centred at about 20,300 cm⁻¹ (which corresponds to a wavelength of roughly 490–500 nm). This is the energy of the t2g→egt_{2g} \rightarrow e_g transition.

    Tip

    The wavenumber ν~=20,300 cm−1\tilde{\nu} = 20,300\ \text{cm}^{-1} corresponds to λ=1ν~≈4.93×10−5 cm=493 nm\lambda = \frac{1}{\tilde{\nu}} \approx 4.93 \times 10^{-5}\ \text{cm} = 493\ \text{nm}, which lies in the blue-green region of the visible spectrum.

  4. Relate absorbed colour to observed colour. …

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