The chemical formulae of some acids are listed in the first column of the table below, and in the second column it says whether each acid is strong or weak. Complete the table. List the chemical formula of each species present at concentrations greater than about 10-6 mol/L when about a tenth of a mole of the acid is dissolved in a liter of water. strong or weak? species present at 10-6 mol/L or greater when dissolved in water acid H,PO, weak ? HIO, strong H,S weak HC10, weak

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Chapter1: Chemical Foundations
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The chemical formulae of some acids are listed in the first column of the table below, and in the second column it says whether each acid is strong or weak.

Complete the table. List the chemical formula of each species present at concentrations greater than about \(10^{-6}\) mol/L when about a tenth of a mole of the acid is dissolved in a liter of water.

| Acid   | Strong or Weak? | Species present at \(10^{-6}\) mol/L or greater when dissolved in water |
|--------|-----------------|--------------------------------------------------------------------------|
| \( \text{H}_3\text{PO}_4 \) | weak            |                                                                                                  |
| \( \text{HIO}_3 \)       | strong          |                                                                                                  |
| \( \text{H}_2\text{S} \)  | weak            |                                                                                                  |
| \( \text{HClO}_2 \)      | weak            |                                                                                                  |

**Note for Educators:** This table helps students understand the dissociation of acids in water and distinguish between strong and weak acids, and how this affects the ionic species present in a solution. Encourage students to consider equilibrium and dissociation reactions when filling in the species column.
Transcribed Image Text:The chemical formulae of some acids are listed in the first column of the table below, and in the second column it says whether each acid is strong or weak. Complete the table. List the chemical formula of each species present at concentrations greater than about \(10^{-6}\) mol/L when about a tenth of a mole of the acid is dissolved in a liter of water. | Acid | Strong or Weak? | Species present at \(10^{-6}\) mol/L or greater when dissolved in water | |--------|-----------------|--------------------------------------------------------------------------| | \( \text{H}_3\text{PO}_4 \) | weak | | | \( \text{HIO}_3 \) | strong | | | \( \text{H}_2\text{S} \) | weak | | | \( \text{HClO}_2 \) | weak | | **Note for Educators:** This table helps students understand the dissociation of acids in water and distinguish between strong and weak acids, and how this affects the ionic species present in a solution. Encourage students to consider equilibrium and dissociation reactions when filling in the species column.
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