Chemistry Principles And Practice
Chemistry Principles And Practice
3rd Edition
ISBN: 9781305295803
Author: David Reger; Scott Ball; Daniel Goode
Publisher: Cengage Learning
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Chapter 3, Problem 3.157QE

(a)

Interpretation Introduction

Interpretation:

The mass of K[PtCl3(C2H4)] that can be prepared from 45.8g K2[PtCl4] and 12.5 g ethylene has to be calculated.

(a)

Expert Solution
Check Mark

Explanation of Solution

The reaction is:

    K2[PtCl4] + C2H4 K[PtCl3(C2H4)].

Molar mass of K2[PtCl4] is 415.09g/mol.

Molar mass of C2H4 is 28.05g/mol.

Then,

  Amount K2[PtCl4]=45.8 g×(1mol K2[PtCl4](415.09)g K2[PtCl4])=0.11mol.

  Amount C2H4= 12.5 g×(1mol C2H4(28.05)g C2H4)=0.44mol

Amount K[PtCl3(C2H4)]based on K2[PtCl4]=0.11mol K2[PtCl4(1mol K[PtCl3(C2H4)]1 mol K2[PtCl4])=0.11mol K[PtCl3(C2H4)]

Amount K[PtCl3(C2H4)]based on C2H4=0.44mol C2H4×(1mol K[PtCl3(C2H4)]1 mol C2H4)=0.44mol K[PtCl3(C2H4)]

Therefore K2[PtCl4] is the limiting reagent.

Mass of K[PtCl3(C2H4)] can be prepared is:

    Mass of K[PtCl3(C2H4)]=[45.8×368.5945415.09]=40.669g

(b)

Interpretation Introduction

Interpretation:

The reactant which is present in excess has to be identified and the mass of it that remains at the end of the reaction has to be calculated.

(b)

Expert Solution
Check Mark

Explanation of Solution

The reaction is:

    K2[PtCl4] + C2H4 K[PtCl3(C2H4)].

Molar mass of K2[PtCl4] is 415.09g/mol.

Molar mass of C2H4 is 28.05g/mol.

Then,

  Amount K2[PtCl4]=45.8 g×(1mol K2[PtCl4](415.09)g K2[PtCl4])=0.11mol.

  Amount C2H4= 12.5 g×(1mol C2H4(28.05)g C2H4)=0.44mol

Ethylene is present in excess amount.

The mass of ethylene present is:

    Mass of C2H4=0.44mol×(28.05)g C2H4=12.342g

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Chapter 3 Solutions

Chemistry Principles And Practice

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