
Worksheet 13 - Chemical Bonding The concept of electron configurations allowed chemists to explain why chemical molecules are formed from the elements. In 1916 the American chemist Gilbert Lewis proposed.
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- Begin by filling in the section for Lewis dot symbols. For each provided element, draw the corresponding Lewis dot symbol in the designated field to represent the valence electrons.
- Next, complete the shorthand electron configuration for sodium (Na) and chlorine (Cl) by filling in the appropriate configuration based on their positions in the periodic table.
- Proceed to indicate how each atom achieves its octet by noting which atom loses electrons and which gains. Write the resultant shorthand electron configurations and charges for sodium and chlorine ions.
- Use Lewis dot symbols again to illustrate the transfer of electrons for the pairs of atoms provided, such as potassium (K) and sulfur (S), as well as oxygen (O) and barium (Ba). Fill out the corresponding fields accordingly.
- In the following section, balance the provided reactions by ensuring that the number of atoms on both sides is equal. Include the Lewis dot symbols for all reactants and products.
- For the section on covalent bonding, analyze the given molecules by determining the total valence electrons available and how they are shared or paired to form bonds. Complete this section as per the guidance provided.
- Finally, review all filled sections, then save your changes, download the completed form, print it if needed, or share it with others.
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