Chemistry: Atoms First
Chemistry: Atoms First
3rd Edition
ISBN: 9781259638138
Author: Julia Burdge, Jason Overby Professor
Publisher: McGraw-Hill Education
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Chapter 3, Problem 3.7QP

(a)

Interpretation Introduction

Interpretation:

The velocity, the mass and identity of the given atoms should be calculated in the given statement by using the equation of kinetic energy

Concept Introduction:

Energy is the capacity to do work or transfer heat where work is the movement of a body using some force.  The SI unit of energy is joule (J).  Energy is in the form of kinetic energy or potential energyKinetic energy is the energy associated with motion.  Kinetic energy (in joule) is calculated using the formula:

Ek = 12mu2

where m ‒ mass in kilograms; u – velocity in meters per second.

(a)

Expert Solution
Check Mark

Explanation of Solution

To find: Determine the velocity of Ne atom that has Ek= 1.86 × 1020 J

Kinetic energy (in joule) is calculated using the formula: Ek = 12mu2

where m ‒ mass in kilograms; u – velocity in meters per second.  From this equation, velocity in meters per second is calculated using the formula:

= 2Ekm

By considering the given problem, the mass of Ne atom = 20.18 amu; Ek= 1.86 × 1020 J.

The mass of Ne atom in kilograms is

= 20.18 amu × 1.661 × 1024 g1 amu × 1 kg1 × 103 g= 3.352 × 1026 kg

Ek value in 1.86 × 1020 J is equal to Ek value in 1.86 × 1020 kgm2/s2 which is used for the purpose of making the unit cancellation. Substitute the given values in the formula,

= 2 × (1.86 × 1020 kgm2/s2)3.352 × 1026 kg= 1.05 × 103 m/s

Therefore, the velocity of Ne atom that has Ek= 1.86 × 1020 J is 1.05 × 103 m/s (a).

(b)

Interpretation Introduction

Interpretation:

The velocity, the mass and identity of the given atoms should be calculated in the given statement by using the equation of kinetic energy

Concept Introduction:

Energy is the capacity to do work or transfer heat where work is the movement of a body using some force.  The SI unit of energy is joule (J).  Energy is in the form of kinetic energy or potential energyKinetic energy is the energy associated with motion.  Kinetic energy (in joule) is calculated using the formula:

Ek = 12mu2

where m ‒ mass in kilograms; u – velocity in meters per second.

(b)

Expert Solution
Check Mark

Explanation of Solution

To find: Determine the velocity of Kr atom that has Ek= 7.50 × 1021 J

Kinetic energy (in joule) is calculated using the formula: Ek = 12mu2

where m ‒ mass in kilograms; u – velocity in meters per second.  From this equation, velocity in meters per second is calculated using the formula:

= 2Ekm

By considering the given problem, the mass of Kr atom = 83.80 amu; Ek= 7.50 × 1021 J.

The mass of Kr atom in kilograms is

= 83.80 amu × 1.661 × 1024 g1 amu × 1 kg1 × 103 g= 1.392 × 1025 kg

Ek value in 7.50 × 1021 J is equal to Ek value in 7.50 × 1021 kgm2/s2 which is used for the purpose of making the unit cancellation. Substitute the given values in the formula,

= 2 × (7.50 × 1021 kgm2/s2)1.392 × 1025 kg= 328 m/s

Therefore, the velocity of Kr atom that has Ek= 7.50 × 1021 J is 328 m/s (b).

(c)

Interpretation Introduction

Interpretation:

The velocity, the mass and identity of the given atoms should be calculated in the given statement by using the equation of kinetic energy

Concept Introduction:

Energy is the capacity to do work or transfer heat where work is the movement of a body using some force.  The SI unit of energy is joule (J).  Energy is in the form of kinetic energy or potential energyKinetic energy is the energy associated with motion.  Kinetic energy (in joule) is calculated using the formula:

Ek = 12mu2

where m ‒ mass in kilograms; u – velocity in meters per second.

(c)

Expert Solution
Check Mark

Explanation of Solution

To find: Determine the mass and identity of an atom moving at 385 m/s that has Ek= 4.812 × 1021 J

Kinetic energy (in joule) is calculated using the formula: Ek = 12mu2

where m ‒ mass in kilograms; u – velocity in meters per second.  From this equation, mass in kilograms is calculated using the formula:

= 2Eku2

By considering the given problem, the mass of a Kr atom = 83.80 amu; Ek= 4.812 × 1021 JEk value in 4.812 × 1021 J is equal to Ek value in 4.812 × 1021 kgm2/s2 which is used for the purpose of making the unit cancellation.

The mass of an atom in kilograms is

= 2 × (4.812 × 1021 kgm2/s2)(385 m/s)2= 6.493 × 1026 kg

If the mass in kg is converted into the mass in amu, the identity of the atom will be determined.  The factor for conversion of kg  amu is given as follows:

1 × 103 g1 kg × 1 amu1.661 × 1024 g

By substituting the mass value in the above expression, the identity of the atom will be determined as follows:

6.493 × 1026 kg × 1 × 103 g1 kg × 1 amu1.661 × 1024 g39.1 amu

The atom with a mass of 39.1 amu is potassium.  Therefore, the mass and identity of an atom moving at 385 m/s that has Ek= 4.812 × 1021 J are 6.493 × 1026 kg and potassium (c).

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Chapter 3 Solutions

Chemistry: Atoms First

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