EBK COLLEGE PHYSICS
EBK COLLEGE PHYSICS
11th Edition
ISBN: 8220103600385
Author: Vuille
Publisher: Cengage Learning US
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Chapter 29, Problem 51AP

(a)

To determine

The number of moles of C11.

(a)

Expert Solution
Check Mark

Answer to Problem 51AP

The number of moles of C11 is 3.18×107mol.

Explanation of Solution

Given Info: The sample contains 3.5μg of C11. Half-life of C11 is 20.4 min.

Formula to calculate the number of moles of C11 is,

n=mmCNA

  • m is the mass of the sample.
  • mC is the mass of C11.
  • NA is the Avogadro number.

Substitute 3.5μg for m, 11.011 u for mC and 6.022×1023atoms/mol for NA.

n=3.5μg(11.011u)(6.022×1023atoms/mol)=3.5×106g(11.011u)(1.661×1027kg/u)(6.022×1023atoms/mol)=3.18×107mol

Conclusion:

The number of moles of C11 is 3.18×107mol.

(b)

To determine

The initial number of nuclei.

(b)

Expert Solution
Check Mark

Answer to Problem 51AP

The initial number of nuclei is 1.91×1017.

Explanation of Solution

Given Info: The sample contains 3.5μg of C11. Half-life of C11 is 20.4 min.

Formula to calculate the initial number of nuclei is,

N0=nNA

Substitute 3.18×107mol for n and 6.022×1023atoms/mol for NA.

N0=(3.18×107mol)(6.022×1023atoms/mol)=1.91×1017

Conclusion:

The initial number of nuclei is 1.91×1017.

(c)

To determine

The initial activity.

(c)

Expert Solution
Check Mark

Answer to Problem 51AP

The initial activity is 1.08×1014Bq.

Explanation of Solution

Given Info: The sample contains 3.5μg of C11. Half-life of C11 is 20.4 min.

Formula to calculate the initial activity is,

R0=N0ln2t1/2

  • t1/2 is the half-life.

Substitute 1.91×1017 for N0 and 20.4 min for t1/2

R0=(1.91×1017)ln220.4min=(1.91×1017)ln2(20.4min)(60s1min)=1.08×1014Bq

Conclusion:

The initial activity is 1.08×1014Bq.

(d)

To determine

The activity after 8.0 h.

(d)

Expert Solution
Check Mark

Answer to Problem 51AP

The activity after 8.0 h is 8.92×106Bq.

Explanation of Solution

Given Info: The sample contains 3.5μg of C11. Half-life of C11 is 20.4 min.

Formula to calculate the activity after 8.0 h is,

R=R0exp[(tt1/2)ln2]

  • t1/2 is the half-life.

Substitute 1.08×1014Bq for R0, 8.0 h for t and 20.4 min for t1/2

R=(1.08×1014Bq)exp[(8.0h20.4min)ln2]=(1.08×1014Bq)exp[(8.0h(20.4min)(1h60min))ln2]=8.92×106Bq

Conclusion:

The activity after 8.0 h is 8.92×106Bq

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Chapter 29 Solutions

EBK COLLEGE PHYSICS

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