Chapter 2.9, Problem 59AAP

To determine

The net potential energy for a ${\text{Ba}}^{\text{2+}}$${\text{S}}^{\text{2-}}$ ion pair.

Answer to Problem 59AAP

The net potential energy for a ${\text{Ba}}^{\text{2+}}$${\text{S}}^{\text{2-}}$ ion pair is $-2.6279\times {10}^{-18}\text{J}$.

Explanation of Solution

The net force acting between two atoms is,

  $F_{\text{net}}=F_{attraction}-F_{repulsion}$

Refer Equation (2.8),

Write the formula for repulsion force $\left(F_{repulsion}\right)$.

  $F_{repulsion}=-\frac{nb}{a^{n+1}}$        (I)

Here, the constants are $n,b$, and inter-ionic distance is $a$.

Write the formula for net potential energy $\left(E_{\text{net}}\right)$.

  $\begin{array}{c}{E}_{\text{net}}=F_{attraction}+F_{repulsion}\\ =\frac{z_1{z}_2{e}^2}{4\pi {\epsilon }_{o}a}+\frac{b}{a^n}\end{array}$        (II)

Here, the electrons removed from $\text{Ba}$ is $z_1$, the electrons added to $\text{S}$ is $z_2$, the electron charge is $e$, the permittivity of space is ${\epsilon }_o$ and the inter-ionic distance is $a$.

When, the bond is formed, the net potential energy become zero.

  $\begin{array}{l}0=F_{attraction}+F_{repulsion}\\ F_{repulsion}=-F_{attraction}\end{array}$

Write the expression for inter-ionic distance.

    $a=r_1+r_2$        (III)

Here the ionic distance of ${\text{Ba}}^{\text{2+}}$ is $r_1$ and the ionic radius of ${\text{S}}^{\text{2-}}$ is $r_2$.

Conclusion:

Substitute $0.143\text{nm}$ for $r_1$ and $0.174\text{nm}$ for $r_2$ in equation (II).

    $\begin{array}{c}a=0.143\text{nm}+0.174\text{nm}\\ =\left(\text{0}\text{.317}\text{nm}\right)\left(\frac{{10}^{-9}\text{m}}{1\text{nm}}\right)\\ =3.17\times {10}^{-10}\text{m}\end{array}$

Refer problem 2.58. The force of attraction between ${\text{Ba}}^{\text{2+}}$ and ${\text{S}}^{\text{2-}}$ ions is,

  $F_{attraction}=9.1628\times {10}^{-9}\text{N}$

Here,

  $\begin{array}{c}{F}_{repulsion}=-F_{attraction}\\ =-\left(9.1628\times {10}^{-9}\text{N}\right)\\ =-9.1628\times {10}^{-9}\text{N}\end{array}$

Substitute $-9.1628\times {10}^{-9}\text{N}$ for $F_{repulsion}$, $10.5$ for $n$, and $3.17\times {10}^{-10}\text{m}$ for $a$ in

Equation (I).

  $\begin{array}{l}-9.1628\times {10}^{-9}\text{N}=-\frac{\left(10.5\right)b}{{\left(3.17\times {10}^{-10}\text{m}\right)}^{10.5+1}}\\ b=\frac{{\left(3.17\times {10}^{-10}\text{m}\right)}^{11.5}\left(9.1628\times {10}^{-9}\text{N}\right)}{10.5}\\ b=\frac{5.2992\times {10}^{-118}}{10.5}\\ b=5.0468\times {10}^{-119}\text{N}\cdot {\text{m}}^{11.5}\end{array}$

Substitute 2 for $z_1$, $-2$ for $z_2$, $1.6\times {10}^{-19}\text{C}$ for $e$, $8.85\times {10}^{-12}{\text{C}}^2\text{/N}\cdot {\text{m}}^{\text{2}}$ for ${\epsilon }_o$, $3.17\times {10}^{-10}\text{m}$ for $a$, $5.0468\times {10}^{-119}\text{N}\cdot {\text{m}}^{11.5}$ for $b$, and $10.5$ for $n$ in Equation (III).

    $\begin{array}{c}{E}_{net}=\frac{\left(2\right)\left(-2\right){\left(1.6\times {10}^{-19}\text{C}\right)}^2}{4\pi \left(8.85\times {10}^{-12}{\text{C}}^2\text{/N}\cdot {\text{m}}^{\text{2}}\right)\left(3.17\times {10}^{-10}\text{m}\right)}+\frac{5.0468\times {10}^{-119}\text{N}\cdot {\text{m}}^{11.5}}{{\left(3.17\times {10}^{-10}\text{m}\right)}^{10.5}}\\ =-\left(2.9046\times {10}^{-18}\text{N}\cdot \text{m}\right)+\left(2.7663\times {10}^{-19}\text{N}\cdot \text{m}\right)\\ =-2.6279\times {10}^{-18}\text{N}\cdot \text{m}\\ =-2.6279\times {10}^{-18}\text{J}\end{array}$

Thus, the net potential energy for a ${\text{Ba}}^{\text{2+}}$${\text{S}}^{\text{2-}}$ ion pair is $-2.6279\times {10}^{-18}\text{J}$.