Bundle: Chemistry for Engineering Students, 3rd, Loose-Leaf + OWLv2 with QuickPrep 24-Months Printed Access Card
Bundle: Chemistry for Engineering Students, 3rd, Loose-Leaf + OWLv2 with QuickPrep 24-Months Printed Access Card
3rd Edition
ISBN: 9781305367388
Author: Lawrence S. Brown, Tom Holme
Publisher: Cengage Learning
bartleby

Concept explainers

Writing and Balancing Nuclear Equations
A nuclear equation is a symbolic representation of a nuclear reaction using certain symbols. It is studied in nuclear chemistry and nuclear physics.
Question
Book Icon
Chapter 14, Problem 14.12PAE

(a)

Interpretation Introduction

To determine:

The complete equation for the given radioactive decay and identify the missing particle

B49e+?L36i+H24e

(a)

Expert Solution
Check Mark

Explanation of Solution

Because this is an alpha decay, the helium nucleus is ejected with decrease in mass number by 4 and atomic number by 2 of the parent nucleus. By balancing the mass numbers of products with that of parent nuclei, the mass number of missing particle is 6+49=1. Similarly, atomic number of the missing particle is 3+24=1. The nucleus of atomic number 1 is Hydrogen. Hence, the equation is:

B49e+H11L36i+H24e

(b)

Interpretation Introduction

To determine:

The complete equation for the given radioactive decay and identify the missing particle

?+n01N1124a+H24e

(b)

Expert Solution
Check Mark

Explanation of Solution

In case of alpha decay, the helium nucleus is ejected. By balancing the mass numbers of products with that of a parent nuclei, the mass number of missing particle is 24+41=27. Similarly, atomic number of the missing particle is 11+20=13. The nucleus of atomic number 13 is Aluminum. Hence, the equation is:

A1327l+n01N1124a+H24e

(c)

Interpretation Introduction

To determine:

The complete equation for the given radioactive decay and identify the missing particle:

C2040a+?K1940+H11

(c)

Expert Solution
Check Mark

Explanation of Solution

In the given equation, balancing the mass number and atomic number of the product and reactant sides, we get, the mass number of missing particle is 40+140=1. Similarly, atomic number of the missing particle is 19+120=0. The particle with atomic number 0 and mass number 1 is Neutron. Hence, the equation is:

C2040a+n01K1940+H11

(d)

Interpretation Introduction

To determine:

The complete equation for the given radioactive decay and identify the missing particle

A95241m+H24eB97243k+?

(d)

Expert Solution
Check Mark

Explanation of Solution

By balancing the mass numbers of products with that of parent nuclei, the mass number of missing particle is 241+4243=2. Similarly, atomic number of the missing particle is 95+297=0. The particle with 0 mass number is neutron. Hence, the equation is:

A95241m+H24eB97243k+2n01

(e)

Interpretation Introduction

To determine:

The complete equation for the given radioactive decay and identify the missing particle

C96246m+C6124n01+?

(e)

Expert Solution
Check Mark

Explanation of Solution

In case of neutron decay, the mass number gets reduced. By balancing the mass numbers of products with that of parent nuclei, the mass number of missing particle is 246+124×1=254. Similarly, atomic number of the missing particle is 96+64×0=102. The nucleus of atomic number 102 is Nobelium. Hence, the equation is:

C96246m+C6124n01+N102254o

(f)

Interpretation Introduction

To determine:

The complete equation for the given radioactive decay and identify the missing particle:

U92238+?F100249m+5n01

(f)

Expert Solution
Check Mark

Explanation of Solution

In the given equation, balancing the mass number and atomic number of the product and reactant sides, we get, the mass number of missing particle is 249+5×1238=16. Similarly, atomic number of the missing particle is 100+5×092=8. The nucleus with atomic number 8 is Oxygen. Hence, the equation is:

U92238+O816F100249m+5n01

Conclusion

Therefore, if one of the species from the radioactive decay equation is missing, it can be determined by balancing atomic numbers and atomic mass numbers.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Previous
Chapter 14, Problem 14.11PAE
Next
Chapter 14, Problem 14.13PAE
Students have asked these similar questions
Do the Lone Pairs get added bc its valence e's are a total of 6 for oxygen and that completes it or due to other reasons. How do we know the particular indication of such.
NGLISH b) Identify the bonds present in the molecule drawn (s) above. (break) State the function of the following equipments found in laboratory. Omka) a) Gas mask b) Fire extinguisher c) Safety glasses 4. 60cm³ of oxygen gas diffused through a porous hole in 50 seconds. How long w 80cm³ of sulphur(IV) oxide to diffuse through the same hole under the same conditions (S-32.0.0-16.0) (3 m 5. In an experiment, a piece of magnesium ribbon was cleaned with steel w clean magnesium ribbon was placed in a crucible and completely burnt in oxy cooling the product weighed 4.0g a) Explain why it is necessary to clean magnesium ribbon. Masterclass Holiday assignmen PB 2
Hi!! Please provide a solution that is handwritten. Ensure all figures, reaction mechanisms (with arrows and lone pairs please!!), and structures are clearly drawn to illustrate the synthesis of the product as per the standards of a third year organic chemistry course. ****the solution must include all steps, mechanisms, and intermediate structures as required. Please hand-draw the mechanisms and structures to support your explanation. Don’t give me AI-generated diagrams or text-based explanations, no wordy explanations on how to draw the structures I need help with the exact mechanism hand drawn by you!!!    I am reposting this—ensure all parts of the question are straightforward and clear or please let another expert handle it thanks!!

Chapter 14 Solutions

Bundle: Chemistry for Engineering Students, 3rd, Loose-Leaf + OWLv2 with QuickPrep 24-Months Printed Access Card

Ch. 14 - Prob. 1COCh. 14 - Prob. 2COCh. 14 - Prob. 3COCh. 14 - Prob. 4COCh. 14 - Prob. 5COCh. 14 - Prob. 6COCh. 14 - Prob. 7COCh. 14 - Prob. 8COCh. 14 - Prob. 9COCh. 14 - Prob. 10CO
Ch. 14 - Prob. 14.1PAECh. 14 - Prob. 14.2PAECh. 14 - Prob. 14.3PAECh. 14 - Prob. 14.4PAECh. 14 - (a) How does 14C enter a living plant? (b) Write...Ch. 14 - Prob. 14.6PAECh. 14 - Prob. 14.7PAECh. 14 - Prob. 14.8PAECh. 14 - Prob. 14.9PAECh. 14 - Prob. 14.10PAECh. 14 - Prob. 14.11PAECh. 14 - Prob. 14.12PAECh. 14 - Prob. 14.13PAECh. 14 - Prob. 14.14PAECh. 14 - Prob. 14.15PAECh. 14 - Prob. 14.16PAECh. 14 - Prob. 14.17PAECh. 14 - Prob. 14.18PAECh. 14 - Prob. 14.19PAECh. 14 - Prob. 14.20PAECh. 14 - Prob. 14.21PAECh. 14 - Prob. 14.22PAECh. 14 - Prob. 14.23PAECh. 14 - Prob. 14.24PAECh. 14 - Prob. 14.25PAECh. 14 - Prob. 14.26PAECh. 14 - Prob. 14.27PAECh. 14 - Prob. 14.28PAECh. 14 - Prob. 14.29PAECh. 14 - Prob. 14.30PAECh. 14 - Prob. 14.31PAECh. 14 - Prob. 14.32PAECh. 14 - Prob. 14.33PAECh. 14 - Prob. 14.34PAECh. 14 - Prob. 14.35PAECh. 14 - Prob. 14.36PAECh. 14 - Prob. 14.37PAECh. 14 - Prob. 14.38PAECh. 14 - Prob. 14.39PAECh. 14 - Prob. 14.40PAECh. 14 - Prob. 14.41PAECh. 14 - Prob. 14.42PAECh. 14 - Prob. 14.43PAECh. 14 - Prob. 14.44PAECh. 14 - Prob. 14.45PAECh. 14 - Prob. 14.46PAECh. 14 - Prob. 14.47PAECh. 14 - Prob. 14.48PAECh. 14 - Prob. 14.49PAECh. 14 - Prob. 14.50PAECh. 14 - Prob. 14.51PAECh. 14 - Prob. 14.52PAECh. 14 - Prob. 14.53PAECh. 14 - Prob. 14.54PAECh. 14 - Prob. 14.55PAECh. 14 - Prob. 14.56PAECh. 14 - Prob. 14.57PAECh. 14 - Prob. 14.58PAECh. 14 - Prob. 14.59PAECh. 14 - Prob. 14.60PAECh. 14 - Prob. 14.61PAECh. 14 - Prob. 14.62PAECh. 14 - Prob. 14.63PAECh. 14 - Prob. 14.64PAECh. 14 - Prob. 14.65PAECh. 14 - Prob. 14.66PAECh. 14 - Prob. 14.67PAECh. 14 - Prob. 14.68PAECh. 14 - Prob. 14.69PAECh. 14 - Prob. 14.70PAECh. 14 - Prob. 14.71PAECh. 14 - Prob. 14.72PAECh. 14 - Prob. 14.73PAECh. 14 - Prob. 14.74PAECh. 14 - Prob. 14.75PAECh. 14 - Prob. 14.76PAECh. 14 - Prob. 14.77PAECh. 14 - Prob. 14.78PAECh. 14 - Prob. 14.79PAECh. 14 - Prob. 14.80PAECh. 14 - Prob. 14.81PAECh. 14 - Prob. 14.82PAECh. 14 - Prob. 14.83PAECh. 14 - Prob. 14.84PAECh. 14 - Prob. 14.85PAECh. 14 - Prob. 14.86PAECh. 14 - Prob. 14.87PAECh. 14 - Prob. 14.88PAECh. 14 - Prob. 14.89PAECh. 14 - Prob. 14.90PAECh. 14 - Prob. 14.91PAECh. 14 - Prob. 14.92PAECh. 14 - Prob. 14.93PAECh. 14 - Prob. 14.94PAECh. 14 - Prob. 14.95PAECh. 14 - Prob. 14.96PAECh. 14 - Prob. 14.97PAECh. 14 - Prob. 14.98PAECh. 14 - Prob. 14.99PAECh. 14 - Prob. 14.100PAECh. 14 - Prob. 14.101PAECh. 14 - Prob. 14.102PAECh. 14 - Prob. 14.103PAE
Knowledge Booster
Background pattern image
Chemistry
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Introductory Chemistry: A Foundation
Chemistry
ISBN:9781337399425
Author:Steven S. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Text book image
World of Chemistry, 3rd edition
Chemistry
ISBN:9781133109655
Author:Steven S. Zumdahl, Susan L. Zumdahl, Donald J. DeCoste
Publisher:Brooks / Cole / Cengage Learning
Text book image
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Text book image
Chemistry: Principles and Practice
Chemistry
ISBN:9780534420123
Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher:Cengage Learning
Text book image
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781337399074
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
Text book image
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781133949640
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning
SEE MORE TEXTBOOKS