Skip to main content
Ch.7 - Periodic Properties of the Elements
Brown - Chemistry: The Central Science 14th Edition
Brown14th EditionChemistry: The Central ScienceISBN: 9780134414232당신이 사용하는 게 아니라요?교과서 변경
7장, 문제 35

Provide a brief explanation for each of the following: (a) Cl- is larger than Ar. (b) P3- is larger than S2-. (c) K+ is larger than Na+. (d) F- is larger than F.

검증된 단계별 안내
1
Consider the position of K and Na in the periodic table. K (potassium) is located in period 4, while Na (sodium) is in period 3.
Understand that as you move down a group in the periodic table, the number of electron shells increases. This means K has more electron shells than Na.
Recognize that both K+ and Na+ ions have lost one electron compared to their neutral atoms, resulting in the same electron configuration as the noble gas preceding them.
Despite having the same electron configuration, K+ has more electron shells than Na+, making it larger in size.
Conclude that the increase in the number of electron shells as you move down a group results in a larger ionic radius for K+ compared to Na+.

비슷한 문제에 대한 검증된 영상 답변:

이 영상 해법은 위 문제에 도움이 된다고 튜터들이 추천한 것입니다.
영상 길이:
2m

주요 개념

질문에 올바르게 답하기 위해 반드시 이해해야 하는 핵심 개념들은 다음과 같습니다.

Ionic Radius

Ionic radius refers to the size of an ion in a crystal lattice. Cations, like K<sup>+</sup> and Na<sup>+</sup>, are formed when atoms lose electrons, resulting in a decrease in size due to reduced electron-electron repulsion and increased effective nuclear charge. The ionic radius can vary based on the ion's charge and the number of electron shells.
추천 영상:

Periodic Trends

Periodic trends are patterns observed in the properties of elements across the periodic table. As you move down a group, the ionic radius increases due to the addition of electron shells, which outweighs the increase in nuclear charge. This explains why K<sup>+</sup>, located below Na<sup>+</sup> in Group 1, is larger.
추천 영상:
가이드 코스
00:38
Periodic Trends

Effective Nuclear Charge

Effective nuclear charge (Z<sub>eff</sub>) is the net positive charge experienced by an electron in a multi-electron atom. It accounts for the shielding effect of inner electrons. In the case of K<sup>+</sup> and Na<sup>+</sup>, although both are cations, K<sup>+</sup> has more electron shells, leading to a larger ionic radius despite a similar Z<sub>eff</sub>.
추천 영상:
가이드 코스
01:51
Effective Nuclear Charge