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2. the valence electrons in atoms are shielded from the attractive pull…

Question

  1. the valence electrons in atoms are shielded from the attractive pull of the nucleus by inner shells of electrons. this is called the shielding effect. do you think the reactivity of the halogens relates to the shielding effect? explain your reasoning.

Explanation:

Brief Explanations

As we move down the halogen group, the number of electron shells increases. This leads to a greater shielding effect. The valence electrons are less strongly attracted to the nucleus. Halogens react by gaining an electron. With more shielding, it is harder for the nucleus to attract an additional electron. So, reactivity decreases down the group due to the shielding effect.

Answer:

Yes, the reactivity of halogens relates to the shielding effect. As we go down the halogen group (F, Cl, Br, I), the number of electron shells (and thus the shielding effect) increases. Halogens react by gaining an electron. The greater the shielding, the less the nuclear pull on the incoming electron. So, reactivity decreases down the group as shielding increases. For example, fluorine (with least shielding) is the most reactive halogen as its nucleus can strongly attract an electron compared to iodine (with more shielding).