Chemistry
Chemistry
4th Edition
ISBN: 9780078021527
Author: Julia Burdge
Publisher: McGraw-Hill Education
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Chapter 7, Problem 61QP
Interpretation Introduction

Interpretation:

The ions with three charges that have the given electronic configuration are to be named.

Concept introduction:

Ar is a noble gas with the electronic configuration 3s23p6.

The d block elements have the electronic configuration (n1)d110ns02.

The last electron enters into any one of the five d orbitals and not in the s orbital.

Expert Solution & Answer
Check Mark

Answer to Problem 61QP

Solution:

(a) Cr3+

(b) Sc3+

(c) Rh3+

(d) Ir3+

Explanation of Solution

a) [Ar]3d3

Theoretically, the metal ion M3+ having three electrons in the 3d subshell should have a total of sixvalence electrons and the element with that number should lie in group 6B. The transition metals tend to lose electrons from the ns valence subshell before the (n− 1) d subshell. There are only sixvalence electrons for a neutral atom. Group 6B elements have their ground state electronic configuration as (n1)d5ns1, that is, ground state electronic configuration of the given atom should be 3d54s1. The element Cr has this configuration and the M3+ state as Cr3+.

Hence, the metal ion M3+ with the electronic configuration [Ar]3d3 is Cr3+.

b) [Ar]

Ar is a noble gas with the electronic configuration 3s23p6. The metal ion M3+ should have a total of threevalence electrons so as to attain Ar configuration. The element with that number should lie in group 3B. The transition metals tend to lose electrons from the ns valence subshell before the (n− 1) d subshell. There are only threevalence electrons for a neutral atom. Group 3B elements have their ground state electronic configuration as (n1)d1ns2, that is, ground state electronic configuration of the given atom should be 3d14s2. The element Sc has this configuration and the M3+ state having 18 electrons (as in Ar18) is Sc3+.

Hence, the metal ion Sc3+ has the same electronic configuration as that of [Ar].

c) [Kr] 4d6

Kr is a noble gas with the electronic configuration 4s24p6. The metal ion M3+ should have a total of 42electrons as Kr has. Metal element with that number should lie in group 8B. Group 8B elements have their ground state electronic configuration as: (n1)d7/8/10ns01. As per the question, the ground state electronic configuration of the given atom should be 4d85s1. The element Rh45 has this configuration and the M3+(i.e., 42 electrons) state as Rh3+.

Hence, the metal ion Rh3+ has the same electronic configuration as that of [Kr] 4d6.

d) [Xe] 4f145d6

Xe is a noble gas with the electronic configuration 5s25p6. The metal ion M3+ should have a total of 77 electrons. Metal element with that number should lie in group 8B. Group 8B elements have their ground state electronic configuration as: (n1)d7/8/10ns01. As per the question, the ground state electronic configuration of the given atom should be 5d76s1. The element Ir77 has this configuration and the M3+(i.e.74 electrons) state as Ir3+.

Hence, the metal ion Ir3+ has the same electronic configuration as that of [Xe] 4f145d6.

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Chapter 7 Solutions

Chemistry

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