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radioactive decay practice. one of each type of question will appear on…

Question

radioactive decay practice. one of each type of question will appear on the test. add the atomic number in the line beneath the atomic symbol.
alpha decay
$_{86}^{222}\text{rn} \
ightarrow \\, _2^4\text{he} + \underline{\quad\quad}$
$_{90}^{238}\text{th} \
ightarrow \underline{\quad\quad} + \\, _{88}^{226}\text{ra}$
$_{92}^{235}\text{u} \
ightarrow \\, _2^4\text{he} + \underline{\quad\quad}$
$_{94}^{239}\text{pu} \
ightarrow \underline{\quad\quad} + \underline{\quad\quad}$
beta decay
$_{14}^{32}\text{si} \
ightarrow \\, _{-1}^0\text{e} + \underline{\quad\quad}$
$_{38}^{89}\text{sr} \
ightarrow \underline{\quad\quad} + \underline{\quad\quad}$
$_{79}^{198}\text{au} \
ightarrow \\, _{-1}^0\text{e} + \underline{\quad\quad}$
$_{53}^{131}\text{i} \
ightarrow \underline{\quad\quad} + \underline{\quad\quad}$
electron capture
$_{27}^{57}\text{co} + \\, _{-1}^0\text{e} \
ightarrow \underline{\quad\quad}$
$_{31}^{68}\text{ga} + \underline{\quad\quad} \
ightarrow \underline{\quad\quad}$
$_{77}^{192}\text{co} + \\, _{-1}^0\text{e} \
ightarrow \underline{\quad\quad}$
$_{56}^{133}\text{ba} + \underline{\quad\quad} \
ightarrow \underline{\quad\quad}$
working backwards
$\underline{\quad\quad} \
ightarrow \\, _{56}^{140}\text{ba} + \\, _{-1}^0\text{e}$
$\underline{\quad\quad} \
ightarrow \\, _{90}^{230}\text{th} + \\, _2^4\text{he}$
$_{10}^{23}\text{ne} \
ightarrow \\, _{11}^{23}\text{na} + \underline{\quad\quad}$
$\underline{\quad\quad} + \\, _{-1}^0\text{e} \
ightarrow \\, _{79}^{200}\text{au}$

Explanation:

Step1: Recall Alpha Decay Rules

In alpha decay, the parent nucleus emits an alpha particle ($\ce{_2^4He}$). The mass number (top number) decreases by 4, and the atomic number (bottom number) decreases by 2. For $\ce{_{92}^{235}U \to _2^4He + ?}$:

  • Mass number: $235 - 4 = 231$
  • Atomic number: $92 - 2 = 90$

So the daughter nucleus is $\ce{_{90}^{231}Th}$.

Step2: Recall Beta Decay Rules

In beta decay (β⁻ decay), a neutron turns into a proton, emitting an electron ($\ce{_{-1}^0e}$). Mass number stays the same, atomic number increases by 1. For $\ce{_{14}^{32}Si \to _{-1}^0e + ?}$:

  • Mass number: $32$ (unchanged)
  • Atomic number: $14 + 1 = 15$

So the daughter nucleus is $\ce{_{15}^{32}P}$.

Step3: Recall Electron Capture Rules

In electron capture, a proton captures an electron ($\ce{_{-1}^0e}$), turning into a neutron. Mass number stays the same, atomic number decreases by 1. For $\ce{_{27}^{57}Co + _{-1}^0e \to ?}$:

  • Mass number: $57$ (unchanged)
  • Atomic number: $27 - 1 = 26$

So the daughter nucleus is $\ce{_{26}^{57}Fe}$.

Step4: Working Backwards (Beta Decay Example)

For $\ce{? \to _{56}^{140}Ba + _{-1}^0e}$ (beta decay, so parent has mass number 140, atomic number $56 - 1 = 55$). So the parent is $\ce{_{55}^{140}Cs}$.

Answer:

(Examples of filled answers:
Alpha decay: $\ce{_{92}^{235}U \to _2^4He + \ce{_{90}^{231}Th}}$;
Beta decay: $\ce{_{14}^{32}Si \to _{-1}^0e + \ce{_{15}^{32}P}}$;
Electron capture: $\ce{_{27}^{57}Co + _{-1}^0e \to \ce{_{26}^{57}Fe}}$;
Working backwards: $\ce{_{55}^{140}Cs \to _{56}^{140}Ba + _{-1}^0e}$)

(Note: Each blank follows the respective decay rules for mass/atomic number conservation.)