Rank the effective nuclear charge Z* experienced by a valence electron in each of these atoms:
Question
Rank the effective nuclear charge Z* experienced by a valence electron in each of these atoms:
Solution
Sure, I can help with that. To rank the effective nuclear charge experienced by a valence electron in each of these atoms, follow these steps:
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Identify the Atomic Number (Z): Determine the number of protons in the nucleus for each atom. This is the atomic number (Z).
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Determine the Number of Core Electrons (S): Identify the number of electrons that are not in the valence shell. These are the core electrons.
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Calculate the Effective Nuclear Charge (Z):* Use the formula , where is the atomic number and is the number of core electrons.
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Compare the Effective Nuclear Charges: Rank the atoms based on the calculated values.
Let's apply these steps to a set of example atoms: Sodium (Na), Magnesium (Mg), and Aluminum (Al).
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Identify the Atomic Number (Z):
- Sodium (Na):
- Magnesium (Mg):
- Aluminum (Al):
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Determine the Number of Core Electrons (S):
- Sodium (Na): Core electrons = 10 (1s² 2s² 2p⁶)
- Magnesium (Mg): Core electrons = 10 (1s² 2s² 2p⁶)
- Aluminum (Al): Core electrons = 10 (1s² 2s² 2p⁶)
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Calculate the Effective Nuclear Charge (Z):*
- Sodium (Na):
- Magnesium (Mg):
- Aluminum (Al):
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Compare the Effective Nuclear Charges:
- Sodium (Na):
- Magnesium (Mg):
- Aluminum (Al):
Ranking:
- Aluminum (Al) > Magnesium (Mg) > Sodium (Na)
So, the effective nuclear charge experienced by a valence electron is highest in Aluminum (Al), followed by Magnesium (Mg), and lowest in Sodium (Na).
Similar Questions
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Learning goal 2: Recall how many valence electrons are possessed by all of the elements in Group 2 of the periodic table, 01236
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