Chapter 8: Problem 1
Explain the electronegativity trends across a row and down a column of the periodic table. Compare these trends with those of ionization energies and atomic radii. How are they related?
Chapter 8: Problem 1
Explain the electronegativity trends across a row and down a column of the periodic table. Compare these trends with those of ionization energies and atomic radii. How are they related?
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Get started for freePredict the molecular structure (including bond angles) for each of the following. a. \(\mathrm{SeO}_{3}\) b. \(\mathrm{SeO}_{2}\)
Which of the following compounds or ions exhibit resonance? a. \(\mathrm{O}_{3} \quad\) d. \(\mathrm{CO}_{3}^{2-}\) b. \(\mathrm{CNO}^{-} \quad\) e. \(\mathrm{AsF}_{3}\) c. \(\mathrm{AsI}_{3}\)
Hydrogen has an electronegativity value between boron and carbon and identical to phosphorus. With this in mind, rank the following bonds in order of decreasing polarity: \(\mathrm{P}-\mathrm{H}\) , $\mathrm{O}-\mathrm{H}, \mathrm{N}-\mathrm{H}, \mathrm{F}-\mathrm{H}, \mathrm{C}-\mathrm{H} .$
Consider the following: Li(s) \(+\frac{1}{2} \mathrm{I}_{2}(g) \rightarrow\) Liil(s) \(\Delta H=\) \(-292 \mathrm{kJ} . \mathrm{LiI}(s)\) has a lattice energy of \(-753 \mathrm{kJ} / \mathrm{mol} .\) The ionization energy of Li(g) is $520 . \mathrm{kJ} / \mathrm{mol},\( the bond energy of \)\mathrm{I}_{2}(g)$ is 151 \(\mathrm{kJ} / \mathrm{mol}\) , and the electron affinity of \(\mathrm{I}(g)\) is \(-295 \mathrm{kJ} / \mathrm{mol}\) . Use these data to determine the heat of sublimation of Li(s).
One type of exception to the octet rule are compounds with central atoms having fewer than eight electrons around them. BeH_ and \(\mathrm{BH}_{3}\) are examples of this type of exception. Draw the Lewis structures for \(\mathrm{BeH}_{2}\) and \(\mathrm{BH}_{3} .\)
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