QUESTION IMAGE
Question
complete the following table for isotopes.
symbol # protons # neutrons atomic number mass number
28 32
21 40
$_{29}^{63}cu$
- a.) uranium has two isotopes that can be found in nature; u - 235 (235.044 amu) and u - 238 (238.051 amu). calculate the percentage of naturally - occurring uranium that is u - 235.
b.) state the number of protons, neutrons, and electrons in u - 235, and give the symbol in standard isotope notation.
c.) in order to use uranium as a fuel in a nuclear reactor or nuclear weapon, it must be enriched, which means increasing the percentage of u - 235 in the sample. in commercial nuclear reactors, uranium is enriched to 3 - 5% u - 235. if a sample of nuclear fuel is enriched to 4.0% u - 235, what is the atomic mass of the sample of enriched uranium?
- hypothetical element, \hy\, is comprised of two isotopes. one isotope is measured and found to have a natural abundance of 25.55% and a mass of 43.0025 amu. calculate the mass of the other isotope, given that the atomic mass of hy is 44.9005 amu.
- silicon has three stable isotopes. the major isotope is si - 28, with a mass of 27.9769 amu and percent abundance of 92.223%. the other two isotopes are si - 29 (28.9765 amu) and si - 30 (29.9738 amu). what are their percent abundances?
4.
Step1: First row
The atomic number is equal to the number of protons. So atomic number $Z = 28$. The mass number $A$ is the sum of protons and neutrons, $A=28 + 32=60$. The element with atomic number 28 is nickel, symbol $Ni$. So the isotope is $^{60}_{28}Ni$.
Step2: Second row
The mass number $A = 40$ and number of neutrons $n = 21$. The number of protons $p=A - n=40 - 21 = 19$. The element with atomic number 19 is potassium, symbol $K$. So the isotope is $^{40}_{19}K$.
Step3: Third row
For $^{63}_{29}Cu$, the number of protons $p = 29$, the number of neutrons $n=63 - 29 = 34$, the atomic number $Z = 29$ and the mass number $A = 63$.
5. a.
Step1: Set up equation
Use the average - atomic - mass formula based on the abundances of U - 235 and U - 238.
Step2: Expand and simplify
Expand the equation and combine like terms to solve for $x$ (the percentage of U - 235).
5. b.
Step1: Determine protons
The atomic number gives the number of protons for uranium.
Step2: Determine neutrons
Subtract the atomic number from the mass number to get the number of neutrons.
Step3: Determine electrons
For a neutral atom, the number of electrons equals the number of protons.
5. c.
Step1: Use weighted - average formula
Multiply the mass of each isotope by its percentage (in decimal form) and sum them up.
6.
Step1: Set up equation
Use the average - atomic - mass formula with the known abundance and mass of one isotope and the unknown mass of the other isotope.
Step2: Solve for $m$
Isolate the variable $m$ to find the mass of the other isotope.
7.
Step1: Set up relationships
Set up the relationship between the abundances of Si - 29 and Si - 30 and use the average - atomic - mass formula.
Step2: Substitute and solve
Substitute $y = 0.07777 - x$ into the average - atomic - mass equation and solve for $x$ (abundance of Si - 29), then find $y$ (abundance of Si - 30).
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4.
| Symbol | # Protons | # Neutrons | Atomic Number | Mass Number |
|---|---|---|---|---|
| $^{40}_{19}K$ | 19 | 21 | 19 | 40 |
| $^{63}_{29}Cu$ | 29 | 34 | 29 | 63 |
5. a.
Let the percentage of U - 235 be $x$, then the percentage of U - 238 is $(1 - x)$. The average atomic mass of uranium is approximately 238.0289 amu.
We use the formula for average atomic mass: $235.044x+238.051(1 - x)=238.0289$
$235.044x+238.051 - 238.051x=238.0289$
$- 3.007x=238.0289 - 238.051$
$-3.007x=- 0.0221$
$x=\frac{0.0221}{3.007}\approx0.74\%$
5. b.
For U - 235, the atomic number of uranium is 92. So the number of protons $p = 92$, the number of neutrons $n=235 - 92 = 143$, and for a neutral atom, the number of electrons $e = 92$. The symbol in standard isotope notation is $^{235}_{92}U$.
5. c.
If the sample is 4.0% U - 235 and 96.0% U - 238, the average atomic mass of the enriched uranium is:
$0.04\times235.044+0.96\times238.051$
$=9.40176+228.52896$
$=237.93072$ amu
6.
Let the mass of the other isotope be $m$. The natural abundance of the first isotope is $25.55\%=0.2555$, so the natural abundance of the second isotope is $1 - 0.2555 = 0.7445$.
Using the formula for average atomic mass: $43.0025\times0.2555+m\times0.7445 = 44.9005$
$10.98713875+0.7445m=44.9005$
$0.7445m=44.9005 - 10.98713875$
$0.7445m=33.91336125$
$m=\frac{33.91336125}{0.7445}\approx45.55$ amu
7.
Let the percent abundance of Si - 29 be $x$ and the percent abundance of Si - 30 be $y$.
We know that $x + y=100 - 92.223=7.777\%$ or $x + y = 0.07777$ in decimal form.
The average atomic mass of silicon is 28.0855 amu. Using the formula for average atomic mass:
$27.9769\times0.92223+28.9765x + 29.9738y=28.0855$
Substitute $y = 0.07777 - x$ into the above - equation:
$27.9769\times0.92223+28.9765x+29.9738(0.07777 - x)=28.0855$
$25.8069+28.9765x+2.3341 - 29.9738x=28.0855$
$28.141 - 0.9973x=28.0855$
$-0.9973x=28.0855 - 28.141$
$-0.9973x=-0.0555$
$x=\frac{0.0555}{0.9973}\approx0.0557 = 5.57\%$
$y=7.777 - 5.57 = 2.207\approx2.21\%$